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GENETIC
CONSIDERATIONS IN BIOLOGICAL
PEST CONTROL
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The
Natural Population at its Origin
Improving Fitness of Natural
Enemies
Improving
Tolerance to Pesticides
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Detailed
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Overview According to past records, about 80% of the natural enemies
introduced into a new environment for biological control in the United States
have failed (Clausen 1956); 42% of the Canadian projects have failed between
1929-1955 (Turnbull & Chant 1961); and 90% have failed worldwide
(Turnbull 1967). There is an apparent modern trend toward more failures (Hall
& Ehler 1979, Ehler & Andres 1983). Many of these failures involved
natural enemies that were poorly adapted to the host species against which they
were introduced, or were handled inefficiently, released in inadequate
numbers and under improper circumstances. Adverse environmental conditions at
the time of liberation are cited as principal causes for failure. These
include unavailable hosts or host plants, scarcity of food, water or shelter,
severe competition with analogous organisms, adverse toxic effects of
chemicals; adverse cultural practices; diapause problems (Legner 1979b ); and host-parasitoid asynchrony. Researchers
are often able to minimize most of these obstacles or at least recognize
their presence so that establishment trials may be repeated during favorable
intervals; but the genetic make-up of the colonized natural enemies is
usually unknown (Hoy 1976; Mackauer 1972, 1976; Messenger & van den Bosch
1971; Myers & Sabath 1980; Rousch 1979). In a recent review, Whitten & Hoy (1996) emphasized that
biological control should be favored in terms of cost effectiveness,
environmental acceptability and the safety record which is overwhelming. They
based their conclusion on the numerous examples of pest reduction with this
method. However they reported that biological control has been attempted for
less than 5% of the 5000 or so arthropod pests (Rosen 1985) and probably for
an even smaller percentage of nematodes (van Gunday 1985), weeds (Charudattan
1985, Bernays 1985), and plant pathogens (Baker 1985, Schroth & hancock
1985, Lindow 1985, Martin et al. 1985). Genetic
studies of beneficial arthropods reveal great complexities, which cause
hesitation to experiment with improvement at the applied level. However,
researchers overlook probable field examples of genetic improvement, and
there is a tendency to devote an inordinate amount of time viewing limited
genetic diversity through electrophoretic analysis. Genetic
considerations are important to biological control by suggesting improved
strategies for the acquisition of new natural enemies from abroad, in their
breeding for introduction programs, and in their mass release for direct
control (Levins 1969, Lucan 1969, Mackauer 1976, 1980; Myers & Sabath
1980; Remington 1968, Whitten 1970). Biological
control traditionally involves the permanent transfer of natural enemies from
one geographic area to another. These natural enemies, or colonizers, after
leaving their source population, are faced with problems not encountered
previously. While searching in the new environment, they invariably confront
situations completely different from those prevailing at their points of
origin. Due to the comparatively small numbers of individuals in the
colonizing flock with respect to the point of origin, intraspecific
competition is relaxed, enabling less fit genotypes to survive, reproduce and
interact. Thus, a high genetic variability develops which may eventually give
rise to a new genotype. Such a process was apparently recorded in England by
Ford & Ford (1930) with the colonial checker-spot butterfly, Euphydryas aurinia (Rottenburg). Furthermore, if the colonizer
originates from a marginal population, it may more successfully exploit its
genetic opportunity because of a smaller genetic load and a possible lower
inversion heterozygosity (Force 1967, Remington 1968). A group of
colonizers is an atypical isolate of the source population. In the new area
to which it is introduced it no longer is subjected to the diluting effect of
gene flow from the main body of the population. A change in gene frequencies
occurs which is called the Founder Principle. However, relaxation from intraspecific competition may be
accompanied by an increased interspecific competition to which the colonizer
may not be preadapted; and new environmental conditions may make such
competition impossible. When the environmental resistance is in the form of
already established natural enemies, the introduction of superior species may
be difficult or impossible (Ehler & Andres 1983). When a
colonizer encounters related species in the new environment, the outcome of
such encounters depends on the perfection of the prezygotic barriers to
hybridization and upon the relative fitness of the hybrid and the parental
species (Remington 1968). Callan (1969) offered a list of three major genetic groups of
entomophagous colonizers: (1) colonizers with built-in success, which become
rapidly established, (2) colonizers with delayed success and (3) colonizers
which are predestined to fail. Remington (1968) and Lucas (1969) presented
opposite views of the genetic make-up of populations and what should be
sought in biological control. However, Myers & Sabbath (1980) suggest
that Lucas failed to distinguish between probable marginal and central
populations. The Natural Population at its Origin.--The size of
the population at its origin determines its genetic variability due to
mutation (including chromosomal aberrations), outcrossing (the larger the
population the higher the outcrossing rate), and genetic drift, which
endangers very small populations by the loss of genes. The original
population may be either continuous and numerous, continuous and rare,
subdivided into semi-isolated segments or demes, and subdivided into wholly
isolated demes (Remington 1968). The central
portion of the source population dwells in the ecologically optimal region of
the species, while marginal portions are found near the ecological boundaries
of the species. Data for central and marginal insect populations comes
principally from Drosophila
studies conducted in the Western Hemisphere by Carson (1955, 1959, 1965),
Dobshansky (1956), Prakash (1973), and Townsend (1952), and for insects and
vertebrates (Nevo 1978). Compared to
marginal populations, central populations are subjected to greater
heteroselection, they are larger and outbreeding, they have increased
concealed genetic variability and carry a higher genetic load. They may show
increased inversion heterozygosity and, therefore, may not be as
evolutionarily plastic. Central populations are adapted to the average environment. Marginal
populations may be subjected to greater homoselection and are small and
inbreeding. They have less alleles per locus and increased homozygosity in Drosophila. There is a lesser
genetic load, but they may be endangered by genetic drift. They may show less
heterozygosity for inversions and, therefore, higher evolutionary plasticity.
Marginal populations are adapted to narrower niches. Remington (1968) and
Messenger & van den Bosch (1971) discussed in greater detail the characteristics
of these two major types of populations. Nevo (1978) showed electrophoretic
data which suggest opposite allelic characteristics from those described by
Remington (1969) from a study of both vertebrates and invertebrates. Myers
& Sabath (1980) concluded that generalizations about central and marginal
populations are not valid and cannot be used as a basis for decisions on
where to collect biological control agents. But this conclusion seems to
weigh the electrophoretic data more heavily than the cytological evidence
from Drosophila. The fact
that most of the alleles marked in electrophoresis are probably neutral (99%
as believed by some), casts doubt on conclusions referring to
"expressed" hetero- or homozygosity. Futuyma (1979) discussed
further limitations of electrophoretic data, and especially emphasized the
possible role of regulator genes, which cannot be assessed biochemically. Cultured
parasitic Hymenoptera show low levels of enzyme polymorphism (Crozier 1971,
1977; Kawooya 1983, Metcalf et al. 1975), suggesting that more introductions
that involved culturing probably were also deficient in allelic variability.
Thus, such cultures may have conformed closely to the description of the
marginal population given by Remington (1968).
Natural Enemy Introductions.--The existence of races in natural enemies is widely known, but
in foreign exploration genetic variability is usually not clearly expressed.
Thus, the stress has been to introduced natural enemies from varied areas whenever
possible to gain greater genetic heterogeneity (Whitten 1970). When natural
enemies are first introduced to new environments, the pace of genetic drift
is accelerated and quick evolution anticipated. The introduced organism, by
virtue of both having been sampled
from the original population and then passed through the bottleneck of culture,
theoretically contains but a small fraction of the original gene pool. Many
of the lost alleles may have been essential for fitness, and a marked trend
for greater homozygosity exists (Legner 1979a, Unruh et al.
1983). Most natural
enemy introduction attempts fall naturally into two or three phases. The first phase involves an initial
search for natural enemies where little is known about what species exist or
their potential for biological control (Zwolfer et al. 1976). Restricted
financial support usually dictates a less than thorough sample of the
indigenous area. The second phase
is taken after repeated search has turned up a few natural enemy species, but
initial colonization has failed. Additional information is available since
the first attempt. Continued searching is carried out, or previously
discovered species are tried again in the quest for greater genetic
diversity. A final phase may
be entered by researchers cognizant of the importance of genetic make-up, and
involves the acquisition of seasonal and geographic strains of an initially
colonized species. New species are often discovered in this phase whose
activity may be confined to certain seasons. However, the numerous steps
outlined by Mackauer (1980) to assure genetic stability in laboratory stocks
can rarely be taken.
Improving Fitness of Natural Enemies.--Fitness of a
given natural enemy to a target environment may be improved generally in two
ways: (1) by artificial selection, in which a stock of the organism is
created by selection in the laboratory to enable it to cope with some
limiting environmental factor, such as temperature of insecticide treatment
(Hoy 1976, 1979), and (2) by increasing genetic diversity through
hybridization or by colonization of a greater number of individuals from the
source population. A more plastic or diverse stock is created which, after
colonization, will have an increased chance for improvement through natural
selection. A third possibility, genetic engineering, has not yet been
attempted with parasitoids and predators, but has found application with
pathogens (e.g., Bacillus thuringiensis Berliner). Examples of
artificial selection were few prior to 1970, and its practicality in
continued improved biological control was doubtful. Difficulties included a
lack of knowledge concerning the genetic basis for inheritance of the desired
characteristics. There is also usually little information about the amount of
genetic diversity on which to base selection. The possibility of
unintentional co-selection for detrimental qualities is always present
(Ashley et al. 1973). Nevertheless,
there have been numerous attempts to select adaptive features for beneficial
organisms. One of the most common efforts involves the improvement of
climatic tolerance. Wilkes (1947) attempted this with Dahlbominus fuscipennis
(Zetterstedt), and DeBach & Hagen (1964) and White et al. (1970) reported
on work with Aphytis lingnanensis Compere. Improvements
in the sex ratio to favor females were sought by Wilkes (1947) with Dahlbominus fuscipennis and Simmonds (1947)
with Aenoplex carpocapsae (Cushman). Host-finding
ability was improved in Trichogramma
minutum Riley by Urquijo
(1951); and a change of host preference was induced in Horogenes molestae
(Urchida) by Allen (1954, 1958), and Chrysopa
carnea Stephens by Meyer
& Meyer (1946). Resistance to
DDT was produced in Macrocentrus
ancylivorous Rohwer by
Pielou & Glasser (1952), while in predatory mites resistance was
developed to organophosphate insecticides (Croft 1970, croft & Brown
1975), to permethrin (Hoy & Knop 1981, Hot et al. 1982), and to sulfur
(Hoy & Standow 1982). Interspecific
crosses between two species of Spalangia
parasitoids of synanthropic flies in Australia yielded a field hybrid with
improved fecundity and longevity (Handschin 1932, 1934). Intraspecific
crosses (crosses between strains) have resulted in improved host preference
behavior in the tachinid Paratheresia
claripalpis (Box 1956), in
increased laboratory productivity in the braconid Apanteles melanoscelus
(Ratzeburg) (Hoy 1975) and in improved fecundity and longevity with Spalangia and Muscidifurax parasitoids of
synanthropic flies (Legner 1972 , 1987a.
1987b, 1988, 1989, 1993). In the latter
case, the reproductive potential was utilized, which gave a strong measure of
fitness, probably influenced by many polymorphic genes. True fitness in the
field, of course, is also influenced by other behavioral traits, such as
habitat selection (see Hoy 1976). However, the process of intraspecific
hybridization and heterosis is probably natural, causing the hybrids to be
more vigorous and better able to withstand environmental resistance, and to
extend their range in all niches a population has mastered (Carson 1959). The
selection of appropriate strains for intraspecific crosses is critical, as
detrimental outcomes due to negative heterosis (hybrid dysgenesis) may occur
(Croft 1970, Mahr & McMurtry 1979, Legner 1972). Hoy (1976)
and Whitten & Foster (1975) discuss genetic improvement further. Experimental
field demonstrations of natural enemy improvement through heterosis
apparently exist. The mite predator, Phytoseiulus
persimilis Athias-Henriot,
which was initially established in California from a culture obtained in
Chile, improved its effectiveness following the subsequent introduction of
another strain from Italy (McMurtry et al. 1978). A triple hybrid of Apanteles melanoscelus gave good inundative release effects,
although the final degree of host parasitism was not higher than that
rendered by nonhybrids (Hoy 1975). Nevertheless, field establishment might
not have been successful with either of the single strains available at the
time. Fitness of
parasitic insects can also be improved physiologically without any apparent
genetic change, as evidenced by experimental cold storage treatments (Guzman
& Petersen 1986, Legner 1976). There have been relatively more recent attempts to genetically
improve pathogens of arthropods (Faulkner & Boucias 1985, Luthy 1986,
Aizawa 1987, Yoder et al. 1987), nematodes (Gaugler 1987), plant pathogens
(Lindow et al. 1989, Napoli & Staskawitz 1985). Improving Tolerance to Pesticides.--By 1975 pesticide
resistance was found to have developed under field conditions in some natural
enemies, including the predatory mites Metaseiulus
occidentalis, Typhlodromus caudiglans, Typhlodromus pyri, Amblyseius fallacis,
A. hibisci, the coccinellid Coleomegilla maculata,
the predatory filth fly Ophyra
leucostoma, and the
braconids Macrocentrus ancylivorus and Bracon mellitor (Croft & Brown 1975). Croft & Meyer
(1973) increased resistance to azinphosmethyl 300-fold in A. fallacis by experimental treatment of a Michigan apple
orchard with 5-7 annual applications over a four-year period. Croft (1972)
expressed pessimism about the efficacy of laboratory selection and argued in
favor of concentrating effort in the field where the experiment could be
conducted under more natural conditions and on a scale not possible in the
laboratory. High levels of resistance to organophosphates and carbamates and
limited response to synthetic pyrethroids were obtained (Croft & Meyer
1973, Strickler & Croft 1981). The wider
benefits of laboratory selection for improved performance were demonstrated
in several ways by Hoy (Whitten & Hoy 1996). First, the range of natural
enemies subjected to artificial selection was extended to include the
parasitoids Aphytis melinus DeBach and Trioxys pallidus Haliday (Rosenheim & Hoy 1988, Hoy & Cave
1988) and the common green lacewing Chrysoperla
carnea (Stephens), a
generalist predator (Grafton-Cardwell & Hoy 1986). Secondly, the combined
benefits of laboratory and field selection were optimized (Whitten & Hoy
1996). Previous workers had recognized increased pesticide resistance among
field populations of parasitoids, including A. melinus,
A. africanus and Comperiella
bifasciata (Hoy 1987a),
however, where attempts were made to increase resistance levels in natural
enemies by laboratory selection, insufficient attention was given to the
source populations, which were often derived from few individuals or had been
inbred in the laboratory for extended periods. This produced strains that failed
to respond to selection or strains with very low levels of resistance (Hoy
1987a). With this in mind, intraspecific variation in levels of pesticide
resistance in field populations of M.
occidentalis, C. carnea, A.
melinus and T. pallidus were surveyed, and field material was used to
found populations for laboratory selection (Hoy & Knop 1979,
Grafton-Cardwell & Hoy 1985, Rosenheim & Hoy 1986, Hoy & Cave
1988). This approach provided an indication of the genetic variability
relating to the character under selection and therefore could be a measure of
the likelihood of response to selection. It also maximized the change of
capturing useful genes of major effect in the founding colonies. An important
quality of the artificial selection program developed by Hoy and her
colleagues was the range of pesticides covered in the selection program, and
the successful incorporation of several into multiple-resistant strains (Hoy
1984, 1985a, Whitten & Hoy 1996). An economic analysis of the program in
terms of reduced pesticide usage suggested a potential annual return on the
cumulative research investment in the range of 280-370% each year if the
program becomes widely adopted by almond industry (Headley & Hoy 1987).
The benefits are in reality being accrued, as surveys indicate that ca. 60%
of the almond acreage in California relies on resistant M. occidentalis.
The many considerations necessary for effectively employing pesticide
resistant natural enemies, including polygenic vs. single gene systems, are
thoroughly discussed by Whitten & Hoy (1996).
Genetic Engineering.--Whenever
genes responsible for a phenotypic shift are known and have been
biochemically characterized, it may be possible to consider transferring such
a desirable gene directly from
one insect species to another, thereby avoiding a labor-intensive and
sometimes futile classical selection program. It is important to have a
general method of transferring genes from one species to another. A method
for this is at present (Jan 1991) unavailable, but there is every reasons to
believe the possibility will develop shortly, and attention ought to be given
to identifying suitable genes for transfer and which organisms should be
involved in proposed genetic engineering projects. Specific genes may not be
isolated, propagated in a bacterial system and studied in a new environment
if they have coupled to an appropriate promoter segment which permits
expression. Cloned genes have been reintroduced into the genome of Drosophila melanogaster. A preferred technique for such
transformations uses a segment of DNA from D. melanogaster
called a transposable P-element, which encodes a transposase enzyme whose
function is to facilitate integration of, detached genes back into a
chromosome (Whitten & Hoy 1996). Transformation of D. melanogaster
with genes from that of other species is not a routine procedure in some
laboratories. Presnail & Hoy (1992) have developed a microinjection
technique which resulted in the stable transformation of the western
predatory mite Metaseiulus occidentalis. Early
preblastoderm eggs within gravid females were microinjected, the needle being
inserted through the cuticle of gravid females into the egg, or the tissue
immediately surrounding the egg. This maternal injection resulted in
relatively high levels of survival and transformation. Transformation was
achieved without the aid of any transposase-producing helper plasmid. The
predatory mite was transformed with a plasmid containing the Escherichia coli Beta-galactosidase gene
(lacZ) regulated by the Drosophila
hsp70 heat-shock promoter. Putatively transformed lines were isolated based
on beta-galactosidase activity in 1st generation larvae. Transformation was
confirmed in the 6th generation by polymerase chain reaction amplification of
a region spanning the Drosophila/E. coli sequences. Other
variations of the P-element system from Drosophila
are being evaluated as the basis for a general gene transfer technology.
Preliminary results seem good, but no practical system has yet developed
(Cockburn et al. 1984. Beckendorf & Hoy 1985, Whitten 1986, Hoy 1987).
The technology will probably entail manipulation of eggs or early embryonic
stages, and the development of micro-injection procedures. Therefore, its application
to specific natural enemies might be difficult, especially for
endoparasitoids. Whitten & Hoy (1996) pointed out that in practical terms
we have to choose genes for which specific mutation will cause a desirable
shift in the phenotype, but unfortunately we usually only determine such an
effect after the event. The set of genes we could therefore be interested in
is indeterminate and often indeterminable. The molecular biologist must
modify the genotype in the hope that the phenotype will shift only in the
desired direction, and not in any unintended direction as well because of
pleiotropy. This may be difficult to achieve especially where the immediate
gene product is only distantly connected to the phenotypic shift. Where the
phenotype is directly determined by the protein product of the gene, there is
less of a problem. Similarly, in a beneficial arthropod, if the gene product
is an enzyme highly effective at metabolizing a pesticide, the phenotypic
shift could be significant, stable and beneficial. However, for most
desirable shifts in arthropod natural enemies, even if the gene transfer
capabilities are adequate, the likelihood of achieving the intended
phenotypic shift, as well as excluding unintended adverse effects on the
phenotype, seems remote at the present time (Whitten & Hoy 1996). These
difficulties are probably less for pesticide resistance and may not apply to
microbial natural enemies. The opportunities to genetically engineer viruses,
bacteria and fungi seem considerable and only limited by the ingenuity of the
pathologist. Hence, the objective is to cause a foreign gene to express in a
host causing its premature death. The task is to develop a practical delivery
system (Whitten & Hoy 1996). It was also emphasized by Whitten & Hoy
(1996) that one obvious risk in genetically engineering beneficial insects,
and particularly microbial pathogens, emanates from the community perceptions
of such procedures. It is not unreal to suggest that the intelligent layman
cannot adequately comprehend the complex way biological knowledge is encoded
in DNA and accessed during the life cycle of an organism to regulate its
development and behavior. "Indeed many biologists do not have sufficient
understanding of the interface between genotype and phenotype to quantify the
biological ramifications and risk of such manipulations. Consequently, there
is a distinct prospect that community demand for fail-safe procedures and
comprehensive environmental impact statements could create serious obstacles
for the genetic engineer of natural enemies. Of increased concern would be
the spillover of these concerns into areas of classical biological control
with the increased risk of otherwise safe and effective natural enemies never
being released because the residual doubts concerning safety could not be
quashed." "The inability of biological control experts to guarantee
in advance successful control of a pest by a natural enemy illustrates that
the discipline is still partly 'art.' As such, we could be sorely pressed if
genetic engineering of natural enemies became the rationale for a community
demand that biological control become an exact science before approval could
normally be given for importation of additional natural enemies. Van Driesche
& Bellows (1996) noted that genetically-modified microorganisms may play
an important role biological control. Government policy on the testing,
registration, and use of these organisms influences the extent and speed of
the development of such agents. Central to these policies are the development
of concepts and procedures for assessing the risks from recombinant
microorganisms. Studies of norecombinant agents in current use may be helpful
in forming such policies (Fuxa 1989; Wilson & Lindow 1993). Similar issues
arise with genetically modified arthropods or other multicellular species
(Hoy 1992).
Prolonged Culture.--The problem
in culture is to judge whether the stock material is genetically changed as
time goes on. Some commercial insectaries in California have maintained
sustained cultures of beneficial arthropods for over 50 years without
knowingly changing their stock or its effectiveness. In many cases a
beneficial species becomes established from cultures started with very few
founders (Mackauer 1972, Simmonds 1964); and DeBach (1965) found no
correlation between the number of individuals liberated and the probability
of establishment. Studies of
three parasitic species, Muscidifurax
raptor Girault &
Sanders, M. zaraptor Kogan & Legner
(Legner 1979a), and Aphidius ervi Haliday (Unruh et al. 1983) show that cultures are
indeed changed genetically with time. In the former two species, cultures maintained
for over 100 generations (25 days allowed for one generation) were compared
to those gathered from the field just one or three generations earlier. An
examination of their reproductive potentials indicated an immediate loss of
wild alleles during the first couple of generations in culture. However,
considerable heterogeneity (and presumably heterozygosity) was retained in
culture over the 100 generations (Legner 1979a ). Declines in
allozyme variability in laboratory populations of A. ervi
(Unruh et al. 1983) support the initial loss of heterozygosity in cultures of
arrhenotokous Hymenoptera. There is no
clear agreement, however, on how to retain heterozygosity. Unruh et al.
(1983) believed that the only way to prevent genetic drift in laboratory
culture is to keep population sizes large. Wright (1951) recommended
subdividing the population into several smaller subpopulations (stepping
stones) among which gene fly may occur. A compromise suggested by studies
with Muscidifurax species
(Legner 1979a, 218.
) might be considered as follows: Initial
acquisitions of field cultures could be converted to a series of inbred
lines, maintained without gene flow among them to guarantee
their separate characteristics and the retention of a greater number of
alleles with respect to all lines cultured. This is possible with some
hymenopterous species because genetic decay is uncommon or unknown (Crozier
1970, Legner 1979a ). The number of
individuals in each line could be held relatively low with the heterozygosity
among lines retained by having a large number of such separate lines. The
more lines initially established from individuals acquired in the field, the
greater the chances for the presence of genetic variability. Because gene
flow is eliminated between lines, there would be a reduced tendency for
certain genotypes to dominate as in a single large culture. The total number
of individuals of a species thus cultured might not be much greater than that
recommended by advocates of the large populations. The greatest increase in
labor would be that associated with the maintenance of separate units. The technique
might have to be modified for Hymenoptera possessing the Whiting single locus
multiple allele scheme of sex determination (Crozier 1971, Whiting 1943).
Also, variability in the stock of inbred lines would probably not reconstitute
the original sampled population (Wright 1980). Admittedly, duplicating the
structure of the original population is impossible. However, the inbred
isolated line approach would offer a further step in the direction of
increasing heterozygosity. Not employing the technique certainly guarantees losing heterozygosity.
For example, in the Muscidifurax study (Legner 1979a ), contrary to
expectations, traits for both high and low reproductive potential were lost
in prolonged culture. Such traits, along with other unknown attributes of
fitness, such as high searching capacity, might have been preserved had
original genomes been isolated. Thus, although Unruh et al. (1983) believed
that inbred lines do not presently represent a practical alternative for
maintaining genetic variability in biological control importations, it seems
that they may be an expedient way to retain greater heterozygosity than is
now usually the case. It was
emphasized by Luck et al. (1992) that inbreeding when coupled with the
haplo-diploid genetic system, has consequences for the maintenance of
parasitoid cultures in addition to those associated with the occurrence of
diploid males. The genome of a parasitoid can be classified into three functional
parts: (1) genes that code for traits expressed in both males and females,
(2) genes that code for traits expressed only in females and (3) genes that
code for traits expressed only in males (Luck et al. 1992). Because of
haplo-diploidy the three groups of genes are exposed to different selection
regimes. Those traits expressed only in males are exposed to selection each
generation in the hemizygous male. Since more mutations are deleterious, such
a selection regime will rapidly eliminate these alleles from the genome. A
portion of the alleles expressed in both males and females will be exposed to
selection and each generation in the male offspring but the rest will remain
hidden in the diploid female as heterozygotes. Thus, the elimination of these
alleles occurs more slowly, especially if they are recessives. In contrast
deleterious recessive alleles expressed only the females may remain hidden
within the genome at low frequencies for long periods. Such alleles are
subjected to selection only when they are homozygous. The number of hidden,
deleterious alleles maintained within the female genome is referred to as the
genetic load. The male-limited genome evinces a higher genetic load than that
expressed in the females because of the single set of chromosomes possessed
by the male. The genome expressed in both males and females lies somewhere in
between depending on the percentage of males. Thus, initially females should
be affected more than males by inbreeding when the increased homozygosity
arising from inbreeding exposes the recessive, deleterious alleles (Luck et
al. 1992). Estimates of
the percentage of the genome expressed in both males and females, in males
only or in females only are difficult to obtain. Of 99, mainly morphological characters
assayed in Bracon hebetor, 4.3% were expressed
only in males, 21.2% in the females and 75% in both males and females (Smith
& Borstel 1950). Kerr (1975) found that 14.3% of visible alleles in Apis mellifera, 35.9% of the sterility genes in Nasonia vitripennis, 21.2% of such genes in B. hebetor
and 45.7% of the genome governing quantitative traits in Aphis mellifera
were limited in their expression to females. These figures suggest that a sizeable
proportion of loci are expressed only in the female. However, Crozier's
(1976) calculations suggest that this genome is a rather small percentage of
the total genome. If 1% of the loci are sex limited in their expression,
about 56% of the lethal alleles detected through inbreeding are limited in
their expression in females. Estimates of the percentage of the genome that
is sex-limited using lethal and visual mutations expressed only in females
may be highly biased. These mutations likely involve female specific behavior
and are, thus, more difficult to detect than lethal or visual mutations (Luck
et al. 1992). In cultures
subject to inbreeding such as those used in biological control the genetic load
hidden in the female-limited genome potentially influences the sex ratio by
affecting the production of female offspring. The potential for such an
effect depends on whether the species typically outbreeds, the size of the
breeding population, and the level and diversity of genes present in the
initial population (Luck et al. 1992). Females of species that typically
outbreed usually manifest sex ratios of 1:1. Deleterious alleles expressed as
sex limited traits, e.g., those affecting egg fertilization or mating
success, potentially increase the proportion of males in a culture by
affecting fertilization. Unfertilized eggs give rise to males. Thus
inbreeding leads to homozygosity in female lethals and sterility traits which
effects egg viability or the number of eggs that are fertilized. For example,
only 49% of the eggs of inbred Bracon
hebetor hatched compared
with an 80% hatch of the eggs of outbred females. In the diplo-diploid
species Drosophila simulans a clear depression
occurred after six generations of sibling matings in the percentage of
females that were mated after a one hour exposure to a sibling male (Ringo et
al. 1987). In Hymenoptera such a change should lead to a higher percentage of
males in the culture. This along with the occurrence of diploid males may
explain the low percentage of female progeny reported in laboratory cultures
of several Ichneumonidae and Braconidae (Bradley & Burgess 1934, Simmonds
1947, Flanders & Oatman 1982, Oatman & Platner 1974). In addition
to genetic load, the single-locus and multiple-locus models for sex
determination (see ENT229.10) predict that rearing arrhenotokous species
confined as small populations will produce diploid males at increasing
frequencies because of inbreeding and homozygosity at the sex-determining
loci. The rapidity with which this happens depends primarily on (1) the
amount of genetic diversity among the individuals used to initiate the
culture, (2) the effective population size, and (3) the number of
gender-determining loci involved. Depending on the species, diploid males can
either be fertile or infertile. If fertile, diploid males are capable of
mating with females but the fertilized eggs are usually sterile. The few
females that occasionally develop from these eggs are triploid and also
usually sterile. Thus a decreasing number of females because of genetic
reasons, and an increasing number of diploid males and those arising from
unfertilized eggs, characterize such inbred populations. The consequence is
the likely extinction of the culture (Luck et al. 1992). Chalcidoidea
seem much less affect by inbreeding. The generality of the single-locus and
multiple-locus models can be tested by continued inbreeding and testing for
diploid males. However, long term inbreeding experiments failed to reveal
diploid males in either Nasonia
vitripennis or Mellitobia (Schmieder &
Whiting 1947). However, it can always be argued that the inbreeding has not
been long enough to create complete homozygosity at all sex loci or that
homozygous sex alleles are lethal (Crozier 1971). Indirect evidence suggests
otherwise. Smith (1941) was the first to call attention to the high
homozygosity of many thelytokous species. In such species normal meiosis
occurs and diploidy is restored by the fusion of two of the meiotic products.
With many of these cytogenetic mechanisms the homozygosity of individuals
increases over time and should lead to complete homozygosity. Under such
circumstances diploid males are expected if the single-locus or multiple-locus
models apply. Diploidy is restored in the thelytokous species Diplolepis rosae by gamete duplication leading to complete
homozygosity in one generation (Stille & Davring 1980). Similar
mechanisms appear to allow restoration of diploidy in Muscidifurax uniraptor
(Legner 1985b) and several Trichogramma spp. (Luck et al.
1992). Because these thelytokous forms produce females generation after
generation, the sex locus models do not appear to be a general explanation
for sex determination in Hymenoptera (see ENT229.10). Although
males should suffer no negative effects from inbreeding, some unexpected
results have been reported in the drones of inbred honeybees, A. mellifera. At relatively low (25-50%) levels of inbreeding,
males appeared to suffer substantial inbreeding depression in the number of
sperm produced, flight performance and several physiological and biochemical
characters (Luck et al. 1992). We must also
consider whether heterozygosity in our imported biological control organisms
is indeed necessary. Introductions from marginal homozygous populations may
yield organisms with the capacity for rapid change in the new environment
(Remington 1968). Because, as mentioned earlier, conditions at the place of
introduction always differ to some degree from the place of origin, the
colonizer invariably is faced with differences which may require it to modify
its genotype in order to be maximally successful. Thus, organisms with
greater homozygosity may be better candidates for introduction because they
have a better capacity for evolving into new superiorly adapted types
(Remington 1968). In biological control, which aims at reducing pest
densities, this has important implications. Liberations of the previously
described inbred lines in different geographic portions of the introduction
area offers a means for testing this hypothesis. Some support for its
validity is the evidence of many successful biological control introductions
having obviously involved highly inbred, homozygous lines of natural enemies
(Mackauer 1972). In this
section we briefly illustrated the complexities involved in genetic
considerations of natural enemy introduction, which leaves some researchers
perplexed when considering practical solutions. This was again made obvious
in a recent statement by Unruh et al. (1983) that "Genetic drift, as
well as inbreeding and selection occurring in founder colonies, transport,
quarantine and culture of natural enemies, will deter us from reaching our
goals until we grasp the nature of variation within and among
populations." However, achievements in the improvement of fitness are
common to entomologists and plant scientists alike (Hoy 1976). Since
laboratory techniques for creating apparently better adapted strains are
available, and field demonstrations are known (Hoy 1976, 1982a, 1982b;
McMurtry et al. 1978, White et al. 1970), there is no reason why we cannot
proceed with other planned attempts. Exercise 9.1--According to Charles Remington's
hypothesis, a foreign explorer should collect natural enemies from what
portion(s) of their home range? Exercise 9.2--How may natural enemies be improved to
produce greater impact on a target host population? Exercise 9.3--Of what theoretical value is a knowledge
of population genetics in biological control? Exercise 9.4--Discuss some important genetic
characteristics for a colonizer. Exercise 9.5--How might heterozygotes differ from
homozygotes in meiosis? Of what evolutionary significance are such
differences? Exercise 9.6--What is required for the persistence of a
pesticide-resistant strain of natural enemy in the environment? Exercise 9.7--Discuss genetically engineering desirable
traits into natural enemies. REFERENCES: [Additional
references may be found at MELVYL Library ] Anonymous.
1984. Biological Control Act, 1984, 15668/84, Cat. No. 84-8395-5. Commonw.
Govt. Printer, Australia Adams,
C. H. & W. H. Cross. 1967. Insecticide resistance in Bracon mellitor,
a parasite of the boll weevil. J. Econ. Ent. 60: 1016. Aizawa,
K. 1987. Strain improvement of insect pathogens, p. 3-11. In:
Biotechnology in Invertebrate Pathology and Cell Culture. Academic Press. Allen,
H. W. 1954. Propagation of Horogenes molestae, an Asiatic
parasite of the oriental fruit moth, on the potato tuberworm. J. Econ. Ent. 45: 278-81. Allen, H. W. 1958. Evidence
of adaptive races among oriental fruit moth parasites. Proc. X Intern. Congr.
Ent., Montreal (1956) 4: 743-49. Andres,
L. A., C. J. Davis, P. Harris & A. J. Wapshere. 1976. Biological control
of weeds, p. 481-99. In: C. B. Huffaker & P. S. Messenger (eds.),
Theory and Practice of Biological Control. Academic Press, New York. Antolin, M. F. 1988. Genetic
considerations in the study of attack behavior of parasitoids, with reference
to Muscidifurax raptor (Hymenoptera: Pteromalidae). Fla. Ent.
72: 15-32. Antolin,
M. F. 1992a. Sex ratio variation in a parasitic wasp. I. Diallel cross.
Evolution (in press). Antolin, M. F. 1992b. Sex
ratio variation in a parasitic wasp. II. Reaction norms. Evolution (in
press). Arnold,
J. T. A. & M. J. Whitten. 1976. The genetic basis for organophosphorus
resistance in the Australian sheep blowfly, Lucilia cuprina
(Wiedemann) (Diptera, Calliphoridae). Bull. Ent. Res. 66: 561-68. Ashley, T. R., D. Gonzalez & T. F.
Leigh. 1973. Reduction in
effectiveness of laboratory-reared Trichogramma. Environ. Ent. 2:
1069-73. Asquith,
D. & P. Colburn. 1971. Integrated pest management in Pennsylvania apple
orchards. Bull. Ent. Soc. Amer. 17: 89-91. Avella,
M., D. Fournier, M. Pralavorio & J. B. Berge. 1985. Selection pour la
resistance a la deltamethrine d'une souche de Phytoseiulus persimilis
Athias-Henriot. Agronomie 5: 177-80. Baker,
R. T. 1985. Biological control of plant pathogens: definitions, p. 25-39. In:
M. A. Hoy & D. C. Herzog (eds.), Biological Control in Agricultural IPM
Systems. Academic Press, Orlando. Banerjee,
S. N. & L. M. Pramanik. 1967. The lepidopterous talk borers of rice and
their life cycles in the tropics, p. 103-24. In: The Major Insect
Pests of the Rice Plant. Proc. Symp. IRRI, Johns Hopkins Press, Baltimore,
MD. Barbosa,
P. 1988. Natural enemies and herbivore-plant interactions: influence of plant
allelochemicals and host specificity, p. 201-29. In: The Major Insect
Pests of the Rice Plant, Proc. Symp. IRRI, Johns Hopkins Press, Baltimore,
MD. Barbosa,
P. & J. A. Saunders. 1985. Plant allelochemicals: linkages between
herbivores and their natural enemies, p. 107-37. In: G. A.
Cooper-Driver, T. Swain & E. E. Conn (eds.), Chemically Mediated
Interactions Between Plants and Other Organisms. Plenum Press, NY. Barbosa,
P., J. A. Saunders & M. Waldvogel. 1982. Plant-mediated variation in
herbivore suitability and parasitoid fitness, p. 63-71. In: Proc. 5th
Internatl. Symp. Plant-Insect Relationships. Pudoc, Wageningen. Barbosa,
P., J. A. Saunders, J. Kemper, R. Trumble, J. Olechno & P. Martinat.
1986. Plant allelochemicals and insect parasitoids: effects of nicotine on Cotesia
congregata and Hyposoter annulipes. J. Chem. Ecol. 12:
1319-28. Barbosa,
P., P. Gross & J. Kemper. 1991. Influence of plant allelochemicals on the
tobacco hornworm and its parasitoid, Cotesia congregata.
Ecology 72: 1567-75. Barton,
N. H. & M. Slatkin. 1986. A quasi-equilibrium theory of the distributions
of rare alleles in a subdivided population. Heredity 56: 409-15. Beckendorf,
S. K. & M. A. Hoy. 1985. Genetic improvement of arthropod natural enemies
through selection, hybridization or genetic engineering techniques. p.
167-87. In: M. A. Hoy & D. C. Herzog (eds.), Biological Control in
Agricultural IPM Systems. Academic Press, Orlando. Bellows,
T. S., Jr. & T. W. Fisher, (eds) 1999. Handbook of Biological Control:
Principles and Applications. Academic Press, San Diego, CA. 1046 p. Bergman,
J. M. & W. M. Tingey. 1979. Aspects of the interaction between plant
genotypes and biological control. Bull. Ent. Soc. Amer. 25: 275-79. Bernays, E. A. 1985. Arthropods
for weed control in IPM systems, pp. 373-91. In: M. A. Hoy & D. C.
Herzog (eds.), Biological Control in Agricultural IPM Systems. Academic
Press, Orlando. Beshir, M. D. & F. D. Bennett. 1985.
Biological control of water hyacinth on the white Nile, Sudan, p 491-96. In:
E. S. Delfosse (ed.), Proc. 6th Intern. Symp. Biological Control of Weeds,
19-25 Aug, 1984, Vancouver, Canada. Agriculture Canada. Bohidar, N. R. 1964. Derivation
and estimation of variance and covariance components associated with
covariance between relatives under sexlinked transmission. Biometrics 20:
505-21. Box,
H. E. 1956. The biological control of moth borers (Diatraea) in
Venezuela. Battle against Venezuela's cane borer. Pt. I. Preliminary
investigations and the launching of a general campaign. Sugar (New York) 51:
25-27, 30, 45. Bradley,
W. G. & E. D. Burgess. 1934. The biology of Cremastus flavoorbitalis,
an ichneumonid parasite of the European corn borer. Tech. Bull. USDA 441: 15
p. Brown,
A. H. D. & J. J. Burdon. 1983. Multilocus diversity in an out-breaking
weed, Echium plantagineum L. Aust. J. Biol. Sci. 36: 503-09. Burdon,
J. J. & D. R. Marshall. 1981. Biological control and the reproductive
mode of weeds. J. Appl. Ecol. 18: 649-58. Burdon,
J. J. & A. H. D. Brown. 1986. Population genetics of Echium plantagineum
L.--target weed for biological control. Aust. J. Biol. Sci. 39: 369-78. Callan,
E. 1969. Ecology and insect colonization for biological control. Proc. Ecol. Soc. Australia 4: 17-31. Caltagirone, L. E. 1985. Identifying
and discriminating among biotypes of parasites and predators, p. 189-200. In:
M. A. Hoy & D. C. Herzog (eds.), Biological Control in Agricultural IPM
Systems. Academic Press, Orlando. Caltagirone,
L. E. & C. B. Huffaker. 1980. Benefits and risks of using predators and
parasites for controlling pests. Ecol. Bull. 31: 103-09. Campbell,
B. C. & S. S. Duffey. 1979. Tomatine and parasitic wasps: potential
inincompatibility of plant-antibiosis with biological control. Science 205:
700-02. Carson,
H. L. 1955. The genetic characteristics of marginal populations of Drosophila.
Cold Spring Harbor Symp. Quant. Biol. 20: 276-86. Carson,
H. L. 1959. Genetic conditions which promote or retard the formation of
species. Cold Spring Harbor Symp. Quant. Biol. 24: 87-104. Carson,
H. L. 1965. Chromosomal morphism in geographically widespread species of Drosophila.
In: "Genetics of Colonizing Species," H. G. Baker & G.
L. Stebbins (eds.). pp. 503-31. Academic Press, N.Y. Carton,
Y. & A. Nappi. 1991. The Drosophila immune reaction and the
parasitoid capacity to evade it: genetic and coevolutionary aspects. Acta Oecol. 12: 89-104. Chang, T. 1976. The
origin, evolution, cultivation, dissemination, and diversification of Asian
and African rices. Euphytica
25: 425-41. Charudattan, R. 1985. The
use of natural and genetically altered strains of pathogens for weed control.
p. 347-72. In: M. A. Hoy & D. C. Herzog (eds.), Biological Control
in Agricultural IPM Systems. Academic Press, Orlando. Chassain,
C. & M. Bouletreau. 1987. Genetic variability in the egg-laying behavior
of Trichogramma maidis. Entomophaga 32: 149-57. Chassain,
C. & M. Bouletreau. 1991. Genetic variability in quantitative traits of
host exploitation in Trichogramma (Hymenoptera: Trichogrammatidae). Genetica 83: 195-202. Clarke, B. 1979. The
evolution of genetic diversity. Proc. Roy. Soc. London B-205: 434-474. Clausen, C. P. 1956. Biological
control of insect pests in the continental United States. U. S. Dept. Agric.
Tech. Bull. 1139: 151 p. Cockburn,
A. F., A. J. Howells & M. J. Whitten. 1984. Recombinant DNA technology
and genetic control of pest insects. Biotech. Genetic Eng. Rev. 2: 69-99. Colwell,
R. K., E. A. Norse, D. Pimentel, F. E. Sharples & D. Simberloff. 1985.
Genetic engineering in agriculture. Letters. Science 229: 111-12. Collyer,
E. 1958. Some insectary experiments with predaceous mites to determine their
effect on the development of Metatetranychus ulmi (Koch)
populations. Ent. Exp. Appl. 1: 138-46. Collyer,
E. 1964. A summary of experiments to demonstrate the role of Typhlodromus
pyri Scheut in the control of Panonychus ulmi (Koch) in
England. Acarologia 9: 363-71. Cofrancesco,
A. F., R. M. Stewart & D. R. Sanders, Sr. 1985. The impact of Neochetina
eichorniae (Coleoptera: Curculionidae) on water hyacinth in Louisiana,
p. 525-35. In: E. S. Delfosse (ed.), Proc. 6th Intern. Symp.
Biological Control of Weeds, 19-25 Aug, 1984, Vancouver, Canada. Agriculture
Canada. Croft,
B. A. 1970. Comparative studies on the strains of Typhlodromus occidentalis
Nesbitt (Acarina: Phytoseiidae). I. Hybridization and reproductive isolation
studies. Ann.
Ent. Soc. Amer. 63: 1558-63. Croft,
B. A. 1972. Resistant natural enemies in pest management systems. Span 15:
19-22. Croft,
B. A. 1976. Establishing insecticide-resistant phytoseiid mites in deciduous
tree fruit orchards. Entomophaga 21: 383-99. Croft,
B. A. & M. M. Barnes. 1971. Comparative studies on four strains of Typhlodromus
occidentalis, III. Evaluations of releases of insecticide-resistant strains
into an apple orchard ecosystem. J. Econ. Ent. 64: 845-50. Croft,
B. A. & A. W. A. Brown. 1975. Responses of arthropod natural enemies to
insecticides. Ann. Rev. Entomol. 20: 285-334. Croft,
B. A. & S. C. Hoyt. 1978. Consideration for the use of pyrethroid
insecticides for deciduous fruit pest control in the USA. Environ. Ent. 7:
627-30. Croft,
B. A. & R. H. Meyer. 1973. Carbamate and organophosphorous resistance
patterns in populations of Amblyseius fallacis. Environ. Ent.
2: 691-95. Croft,
B. A. & K. Strickler. 1983. Natural enemy resistance to pesticides.
Documentation, characterization, theory and application, p. 699-702. In:
G. P. Georghiou & T. Saito (eds.), Pest Resistance to Pesticides. Plenum
Press, New York & London. Crozier, R. H. 1970. On
the potential for genetic variability in haplo-diploidy. Genetics 41: 551-56. Crozier,
R. H. 1971. Heterozygosity and sex determination in haplo-diploidy. Ann. Nat. 105: 399-412. Crozier, R. H. 1976. Why
male-haploid and sex-limited genetic systems seem to have unusually
sex-limited mutational genetic loads. Evolution 30: 623-24. Crozier,
R. H. 1977. Evolutionary genetics of the Hymenoptera. Ann. Rev. Ent. 22:
263-88. Cullen,
J. M. 1978. Evaluating the success of the program for the biological control
of Chondrilla juncea L. p. 117-21. In: T. E. Freeman
(ed.), Proc. 4th Intern. Symp. Biological Control of Weeds, Gainesville,
Florida. DeBach,
P. 1958. Selective breeding to improve adaptations of parasitic insects. In:
Proc. 10th Intern. Cong. Ent. 4: 759-68. DeBach,
P. 1965. Some biological and ecological phenomena associated with colonizing
entomophagous insects. In: "The Genetics of Colonizing
Species," H. G. Baker & G. L. Stebbins (eds.) pp. 287-303. Academic
Press, N.Y & London. DeBach, P. & K. S. Hagen. 1964.
Manipulation of entomophagous species. In: "Biological Control of
Insect Pests and Weeds," P. DeBAch (ed.) pp. 429-58. Reinhold Publ. Co.,
New York. 844 p. Devonshire,
A. L. & R. M. Sawicki. 1979. Insecticide-resistant Myzus persicae
as an example of evolution by gene duplication. Nature 280: 140-41. Dobzhansky,
T. 1956. Genetics of natural populations XXV. Genetic changes in populations
of Drosophila pseudoobscura and Drosophila persimilis
in some localities in California. Evolution 10: 82-92. Dodd,
A. P. 1940. The biological campaign against prickly pear. Commonw. Prickly
Pear Board. 177 p. Eanes,
A. G. 1987. Allozymes and fitness: evolution of a problem. Trends Ecol. Evol. 2: 44-8. Ehler, L. E. 1990. Revitalizing
biological control. Issues Sci. TEch. 7(1): 91-6. Ehler, L. E. & L. A. Andres. 1983.
Biological control: exotic natural enemies to control exotic pests. In:
"Exotic Plant Pests and North American Agriculture," C. L. Wilson
& C. L. Graham (eds.), pp. 395-418. Academic Press, New York. 522 p. Endler,
J. 1977. Geographic Variation, Speciation and Clines. Princeton Univ. Press,
Princeton, NJ. 264. Etzel, L. K. & E. F. Legner. 1999. Culture and Colonization. In: T. W. Fisher & T. S. Bellows, Jr. (eds.),
Chapter 15, p. 125-197, Handbook of Biological Control: Principles and Applications. Academic Press, San Diego, CA 1046 p. Falconer,
D. S. 1960. Introduction to Quantitative Genetics. Oliver & Boyd,
Edinburgh & London. Falconer,
D. S. 1989. Introduction to Quantitative Genetics, 3rd ed. Longman, NY. Faulkner,
P. & D. G. Boucias. 1985. Genetic improvement of insect pathogens:
emphasis on the use of baculoviruses, p. 263-81. In: M. A. Hoy &
D. C. Herzog (eds.), Biological Control in Agricultural IPM Systems. Academic
Press, Orlando. Field,
R. P. & M. A. Hoy. 1986. Evaluation of genetically improved strains of Metaseiulus
occidentalis (Nesbitt) (Acarina: Phytoseiidae) for integrated control
of spider mites on roses in greenhouses. Hilgardia 54(2): 1-32. Fleschner, C. A., J. C. Hall & D. E.
Ricker. 1955. Natural balance
of mite pests in an avocado grove. Calif. Avocado Soc. Yrb. 39: 155-62. Ford,
H. D. & E. B. Ford. 1930. Fluctuation in numbers and its influence on
variation. Trans. Ent. Soc. London 78: 345-51. Force,
D. C. 1967. Genetics in colonization of natural enemies for biological
control. Ann.
Ent. Soc. Amer.
60: 722-28. Forno, I. W. & K. L. S. Harley. 1979.
The occurrence of Salvinia molesta in Brazil. Aquat. Bot. 6:
185-87. Forno,
I. W., D. P. A. Sands & W. Sexton. 1983. Distribution, biology and host
specificity of Cyrtobagous singularis Hustache (Coleoptera:
Curculionidae) for the biological control of Salvinia molesta.
Bull. Ent. Res. 73: 85-95. Fournier,
D., M. Pralavorio, Y Trottin-Caudal, J. Coulon, S. Malezieux & J. B.
Berge. 1987. Selection artificielle pour la resistance au methidathion chez Phytoseiulus
persimilis A. H. Entomophaga 91: Futuyma, D. J. 1979. Evolutionary
Biology. Sinauer Assoc., Inc., Sunderland, Mass. 565 p. Gaugler,
R. 1987. Entomogenous nematodes and their prospects for genetic improvement,
p. 457-84. In: Biotechnology in Invertebrate Pathology and Cell
Culture. Academic Press, New York. Gilkeson,
L. A. & S. B. Hill. 1986. Genetic selection for and evaluation of nondiapause
lines of predatory midge, Aphidoletes aphidimyza (Rondani)
(Diptera: Cecidomyiidae). Canad. Ent. 118: 869-79. Gould,
F. 1988. Evolutionary biology and genetically engineered crops. BioScience
38: 26-33. Gould,
F. 1991. The evolutionary potential of crop pests. Amer. Scient. 79: 496-507. Gould,
F., G. G. Kennedy & M. T. Johnson. 1991. Effects of natural enemies on
the rate of herbivore adaptation to resistant host plants. Ent. Expt. Appl.
58: 1-14. Grafton-Cardwell,
E. E. & M. A. Hoy. 1985. Intraspecific variability in response to
pesticides in the common green lacewing, Chrysoperla carnea
(Stephens) (Neuroptera: Chrysopidae). Hilgardia 53(6): 1-32. Grafton-Cardwell,
E. E. & M. A. Hoy. 1986. Genetic improvement of common green lacewing, Chrysoperla
carnea (Neuroptera: Chrysopidae): selection for carbaryl resistance.
Environ. Ent.
15: 1130-36. Grossman, M. & E. J. Eisen. 1989.
Inbreeding, coancestry and covariance between relatives for X-chromosomal
loci. J. Heredity 80: 137-42. Guzman,
D. R. & J. J. Petersen. 1986. Cold acclimation and prolonged low
temperature survival of filth fly parasites (Hymenoptera: Pteromalidae).
Environ. Ent. 15: 936-42. Hagen,
K. S., G. A. Viktorov, K. Yasumatsu & M. F. Shuster. 1976. Range, forage
and grain crops, p. 397-442. In: C. B. Huffaker & P. S. Messenger
(eds.), Theory and Practice of Biological Control. Academic Press, New York.
p. 788. Hall, R. W. & L. E. Ehler. 1979.
Rate of establishment of natural enemies in classical biological control.
Bull. Ent. Soc. Amer.
25: 280-282. Handschin, E. 1932. A
preliminary report on investigations of the buffalo fly (Lyperosia exigua
de Meij.) and its parasites in Java and northern Australia. Pam. Council Sci.
Ind. Res. 31: 24 p. Handschin, E. 1934. Die Anziehung von Spalangia
zu ihrem Wirte. Rev. Suisse Zool. 41:
267-97. Hare,
J. D. & R. F. Luck. 1991. Indirect effects of citrus cultivars on life
history parameters of a parasitic wasp. Ecology 72: 1576-85. Hartl,
D. L. & A. G. Clark. 1989. Principles of Population Genetics, 2nd ed.
Sinauer Assoc., Mass. Havron,
A., D. Rosen, Y. Rössler & J. Hillel. 1987. Selection on the male
hemizygous genotype in arrhenotokous insects and mites. Entomophaga 32: 261-68. Headley, J. C. & M. A. Hoy. 1987. Benefit/cost
analysis of an integrated mite management program for almonds. J. Econ. Ent. 80: 555-59. Herbert, P. D. N. & M. J. Beaton. 1989.
Methodologies for allozyme analysis using cellulose acetate electrophoresis.
Helena Labs, Beaumont, TX. 32 p. Howarth,
F. G. 1991. Environmental impacts of classical biological control. Annu. Rev.
Ent. 36: 485-09. Hoy, M. A. 1975a. Forest
and laboratory evaluations of hybridized Apanteles melanoscelus
(Hym.: Braconidae), a parasitoid of Porthetria dispar (Lep.:
Lymantriidae). Entomophaga
20: 261-68. Hoy, M. A. 1975b. Hybridization
of strains of the gypsy moth parasitoid, Apanteles melanoscelus,
and its influence upon diapause. Ann. Ent. Soc. Amer. 68: 261-64. Hoy, M. A. 1976. Genetic
improvement of insects: fact or fantasy. Environ. Ent. 5: 833-39. Hoy, M. A. 1979. The
potential for genetic improvement of predators for pest management programs. In:
"Genetics in Relation to Insect Management," M. A. Hoy & J. J.
McKelvey, Jr. (eds.) p. 106-115. Rockefeller Found. Press, New York. 179 p. Hoy, M. A. 1982a. Aerial
dispersal and field efficacy of a genetically improved strain of the spider
mite predator Metaseiulus occidentalis. Ent. Exp. Appl. 32:
205-12. Hoy, M. A. 1982b. Genetics
and genetic improvement of the Phytoseiidae. In: "Recent Advances
in Knowledge of the Phytoseiidae," M. A. Hoy (ed.). Publ. 3284, Div.
Agric. Sci., Univ. of Calif. p. 72-89. Hoy, M. A. 1984. Genetic
improvement of a biological control agent: multiple pesticide resistance and
nondiapause in Metaseiulus occidentalis (Nesbitt)
(Phytoseiidae), p. 673-79. In: D. Griffiths & C. Bowman (eds.),
Acarology 6, Vol. 2. Ellis Horwood Ltd., Chichester. Hoy,
M. A. 1985a. Almonds (California): integrated mite management for Californian
almond orchards, p. 299-310. In: W. Helle & M. Sabelis (eds.),
Spider mites, Their Biology, Natural Enemies and Control, Vol. II. Elsevier,
Amsterdam. Hoy,
M. A. 1985b. Recent advances in genetics and genetic improvement of the
Phytoseiidae. Ann. Rev. Ent. 30: 345-70. Hoy,
M. A. 1985c. Improving establishment of arthropod natural enemies, p. 151-66.
In: M. A. Hoy & D. C. Herzog (eds.), Biological Control in
Agricultural IPM Systems. Academic Press, Orlando. Hoy, M. A. 1986. Use
of genetic improvement in biological control. Agriculture, Ecosystems and
Environment 15: 109-19. Hoy, M. A. 1987. Developing
insecticidal resistance in insect and mite predators and opportunities for
gene transfer, p. 125-38. In: H. M. LeBaron, R. O. Mumma, R. C.
Honeycutt & J. H. Duesing (eds.). Amer. Chem. Soc. Symp. Series 334. Hoy, M. A. 1990. Genetic
improvement of arthropod natural enemies: becoming a conventional tactic?, p.
405-17. In: R. Baker & P. Dunn (eds.), New Directions in
Biological Control. UCLA Symp. Molec. & Cell. Biol., New Ser. 112. A. R.
Liss, NY. Hoy,
M. A. 1991. use of parasites and predators in teh biological control of
arthropod pests: emerging technologies and challenges, p. 272-97. In:
S. B. Vinson & R. L. Metcalf (eds.), Entomology Serving Society: Emerging
Technologies and Challenges. Ent. Soc. Amer. Lanham, MD. Hoy, M. A. 1992. Biological
control of arthropods: genetic engineering and environmental risks. Biological Control 2: 166-70. Hoy, M. A. & F. E. Cave. 1988. Guthion-resistant
strain of walnut aphid parasite. Calif. Agric. 42(4): 4-6. Hoy,
M. A. & F. E. Cave. 1990. Toxicity of pesticides used in walnuts to wild
and azinphosmethyl-resistant strains of Trioxys pallidus. J.
Econ. Ent. 92: (in press). Hoy, M. A. & J. Conley. 1978.
Selection for abamectin resistance in Tetranychus urticae and T.
pacificus (Acari: Tetranychidae). J. Econ. Ent. 80: 221-25 Hoy, M. A. & N. F. Knop. 1979. Studies
on pesticide resistance in the phytoseiid Metaseiulus occidentalis
in California. In: R. Rodriguez (ed.), Recent Advances in Acarology 1:
89-94. Academic Press, New York. Hoy, M. A. & N. F. Knop. 1981. Selection
for and genetic analysis of permethrin resistance in Metaseiulus occidentalis:
genetic improvement of a biological control agent. Ent. Exp. Appl. 30: 10-18. Hoy, M. A. & Y. L. Ouyang. 1989.
Selection of the western predatory mite, Metaseiulus occidentalis
(Acari: Phytoseiidae), for resistance to abamectin. J. Econ. Ent. 82: 35-40. Hoy, M. A. & K. A. Standow. 1982.
Inheritance of resistance to sulfur in the spider mite predator, Metaseiulus
occidentalis (Acarina: Phytoseiidae)., Ent. Expt. Appl. 31: 316-23. Hoy,
M. A., P. H. Westigard & S. C. Hoyt. 1982. Release and evaluation of a
laboratory-selected pyrethroid-resistant strain of the predaceous mite Metaseiulus
occidentalis (Acari: Phytoseiidae) in southern Oregon pear orchards
and a Washington apple orchard. J. Econ. Ent. 76: 383-88. Hoy, M. A., J. J. R. Groot & H. E.
van de Baan. 1985. Influence of aerial
dispersal on persistence and spread of pesticide-resistant Metaseiulus
occidentalis in California almond orchards. Ent. Expt. Appl. 37:
17-31. Hoy,
M. A., F. E. Cave, R. Beede, J. Grant, W. Krueger, W. Olson, K. Spollen, W.
Barnett & L. Hendricks. 1990. Release, dispersal and recovery of a
laboratory-selected azinphosmethyl-resistant strain of the walnut aphid
parasite Trioxys pallidus. J. Econ. Ent. 92: (in press). Hoyt, S. C. 1969a. Integrated
chemical control of insects and biological control of mites on apple in
Washington. J.
Econ. Ent. 62: 74-86. Hoyt, S. G. 1969b. Population
studies of five mite species on apple in Washington. Proc. 2nd Intern. Congr.
Acarol. Sutton-Bonningon, England 1967. Akad. Kiado, Budapest. 117-33. Hoyt,
S. C. & L. E. Caltagirone. 1971. The developing programs of integrated
control of pests of apples in Washington and peaches in California, p.
395-421. In: C. B. Huffaker (ed.), Biological Control. Plenum Press,
New York. Huang, M. D., J. J. Xiong & T. Y. Du.
1987. The selection for and
genetical analysis of phosmer resistance in Amblyseius nicholsi.
Acta
Ent. Sinica 30(2): 133-39. Huffaker,
C. B. 1971. The ecology of pesticide interference with insect populations, p.
92-104. In: J. E. Swift (ed.), Agricultural Chemicals: Harmony or
Discord For Food, People and the Environment. Univ. of Calif., Div. Agric.
Sci., Berkeley. Huffaker, C. B., M. van de Vrie &
J. A. McMurtry. 1970. Ecology of
tetranychid mites and their natural enemies: a review. II. Tetranychid
populations and their possible control by predators: An evaluation. Hilgardia
40(11): 391-458. Hughes,
P. D., L. T. Woolcock, J. A. Roberts & M. A. Hughes. 1987. Biological
control of the spotted alfalfa aphid, Therioaphis trifolii F. maculata
on lucerne crops in Australia by introduced parasitic hymenopteran Trioxys
complanatus. J. Appl. Ecol. 24: 515-37. Hull,
L. A. & E. H. Beers. 1985. Ecological selectivity: modifying chemical
control practices to preserve natural enemies, p. 103-22. In: M. A.
Hoy & D. C. Herzog (eds.), Biological Control in Agricultural IPM
Systems. Academic Press, Orlando. Jaenike,
J. 1990. Host specialization in phytophagous insects. Ann. REv. Ecol. Syst. 21: 243-73. Julien, M. H. 1981. Control
of aquatic Alternanthena philoxeroides in Australia: another
success for Agasicels hygrophila, p. 583-88. In: E. S. Delfosse
(ed.), Proc. 5th Intern. Symp. Biological Control of Weeds, June 22-27, 1980,
Brisbane, Australia, CSIRO, Melbourne. Kawooya,
J. K. 1983. Electrophoretic discrimination of species of the Muscidifurax
(Hymenoptera: Pteromalidae) complex. Ph.D. Thesis, Univ. of Illinois, Urbana.
114
p. Kazmer, D. J. 1991. Isolectric
focusing procedures for the analysis of allozymic variation in minute
arthropods. Ann.
Ent. Soc. Amer.
84: 332-39. Landaluze, P. U. 1950. Aplicación de
la genética al aumento de la eficacia del Trichogramma minutum
en la lucha biológica. Bolt. Patol. Veg. Ent.
Agric. 18(1-2): 1-12. Lawton,
J. H. 1986. The effect of parasitoids on phytophagous insect communities, p.
265-88. In: J. Waage & D. Greathead (eds.), Insect Parasitoids.
Academic Press, Orlando, FL. 80. Legner, E. F. 1972. Observations on hybridization and
heterosis in parasitoids of synanthropic flies. Ann. Entomol. Soc. Amer. 65(1): 254-263. 157.
Legner, E. F. 1976. Low storage
temperature effects on the reproductive potential of three parasites of Musca domestica. Ann. Entomol.
Soc. Amer. 69(3): 435-441. 182.
Legner, E. F. 1979a. Prolonged
culture and inbreeding effects on reproductive rates of two pteromalid
parasites of muscoid flies. Ann.
Entomol. Soc. Amer. 72(1): 114-118. 188.
Legner, E. F. 1979b. Emergence
patterns and dispersal in Chelonus
spp. near curvimaculatus and Pristomerus hawaiiensis, parasitic on Pectinophora gossypiella. Ann. Entomol. Soc. Amer. 72(5): 681-686. 218. Legner, E. F. 1985. Effects of scheduled high temperature on
male production in thelytokous Muscidifurax
uniraptor (Hymenoptera: Pteromalidae). Canad. Entomol. 117(3):
383-389. 228. Legner, E. F. 1986. Breeding superior parasitoids of Diptera
using a novel extranuclear inheritance mechanism. Proc. Calif. Mosq. & Vector Contr. Assoc., Inc. 44: 156-159. 233. Legner, E. F. 1987a. Inheritance of gregarious and solitary
oviposition in Muscidifurax raptorellus Kogan & Legner
(Hymenoptera: Pteromalidae). Canad. Entomol.
119(9): 791-808. 230. Legner, E. F. 1987b. Transfer of thelytoky to arrhenotokous Muscidifurax raptor Girault & Sanders (Hymenoptera: Pteromalidae). Canad. Entomol. 119(3): 265-271 238. Legner, E. F. 1988. Quantitation of heterotic behavior in
parasitic Hymenoptera. Ann. Entomol.
Soc. Amer. 81(4): 657-681. 245.
Legner, E. F. 1989. Fly parasitic
wasp, Muscidifurax raptorellus Kogan & Legner
(Hymenoptera: Pteromalidae) invigorated through insemination by males of
different races. Bull. Soc. Vector
Ecol. 14(2): 291-300. 259.
Legner, E. F. 1993. Theory for
quantitative inheritance of behavior in a protelean parasitoid, Muscidifurax raptorellus (Hymenoptera: Pteromalidae). European J. Ent. 90: 11-21. 220. Legner, E. F. & R. W. Warkentin. 1985. Genetic improvement and inbreeding effects
in culture of beneficial arthropods.
Proc. Calif. Mosq. & Vector Contr. Assoc., Inc. 52: 156-161. Levin,
S. & D. Pimentel. 1981. Selection of intermediate rates of increase in
parasite-host systems. Amer. Nat. 117: 308-15. Levins,
R. 1969. Some demographic and genetic consequences of environmental
heterogeneity for biological control. Bull. Ent. Soc. Amer. 15: 237-40. Lindow,
S. E. 1985. Foliar antagonists: status and prospects, p. 395-413. In:
M. A. Hoy & D. C. Herzog (eds.), Biological Control in Agricultural IPM
Systems. Academic Press, Orlando. Lindow,
S. E., N. J. Panopoulos & B. L. McFarland. 1989. Genetic engineering of bacteria
from managed and natural habitats. Science 244: 1300-07. Longworth,
J. F. 1987. Biological control in New Zeraland: policy and procedures. N.S. Ent. 10: 1-7. Lucas, A. M. 1969. The
effect of population structure on the success of insect introductions.
Heredity 24: 151-54. Luck,
R. F., L. Nunney & R. Stouthamer. 1996. Evolutionary ecology of
parasitoids and invertebrate predators. In: Principles and Application
of Biological Control. University of California Press, Berkeley, CA. (in
press). Luthy,
P. 1986. Genetics and aspects of genetic manipulation of Bacillus thuringiensis.
Mitteil.
Biolog. Bund. Land- u. Forstwiftschaft. berlin-Dahlem 233: 97-110. Mackauer,
M. 1972. Genetic aspects of insect production. Entomophaga 17: 27-48. Mackauer,
M. 1976. Genetic problems in the production of biological control agents. Ann. Rev. Ent. 21: 369-85. Mackauer, M. 1980. Some
aspects of quality and quality control of biological control agents during
insectary propagation. Proc. Vint. Symp. Biol. Contr. Weeds, Brisbane,
Australia 1980. p. 207-20. MacPhee, A. W., L. E. Caltagirone, M.
van de Vrie & E. Collyer. 1976.
Biological control of pests of temperate fruits and nuts, p. 337-58. In:
C. B. Huffaker & P. S. Messenger (eds.), Theory and Practice of
Biological Control. Academic Press, New York. Mahr, D. L. & J. A. McMurtry. 1979.
Cross-breeding studies involving populations of Typhlodromus citri
Garmon & McGregor, T. arboreus Chant and a sibling species
of each (Mesostigmata: Phytoseiidae). Intl. J. Acarol. 5(2):
155-161. Margolies,
D. C. & T. S. Cox. 1992. Quantitative genetics applied to haplodiploid
insects and mites. In: D. L. Wrensch & D. A. Krainacker (eds.),
Evolution and Diversity of Sex Ratio in Arrhenotokous Insects and Mites. (in
press). Markwick,
N. P. 1986. Detecting variability and selecting for pesticide resistance in
two species of phytoseiid mites. Entomophaga 31: 225-36. Martin,
S. B., G. S. Abawi & H. C. Hoch. 1985. Biological control of soilborne
pathogens with antagonists. p. 433-54. In: M. A. Hoy & D. C.
Herzog (eds.), Biological Control in Agricultural IPM Systems. Academic
Press, Orlando. Marsden,
J. S., G. E. Martin, D. J. Parham, T. J. Ridsdill-Smith & B. G. Johnston.
1980. Returns on Australian agricultural research. The joint Industries
Assistance Commission--CSIRO benefit-cost study of the CSIRO Div. Ent.,
Canberra. 107 p. McMurtry,
J. A. 1983. Phytoseiid predators in orchard systems: A classical biological
control success story, p. 21-26. In: M. A. Hoy, G. L. Cunningham &
L. Knutson (eds.), Biological Control of Pests by Mites. Univ. of Calif.
Special Publ. 3304, Berkeley, CA. McMurtry, J. A., C. B. Huffaker &
M. van de Vrie. 1970. Ecology of tetranychid
mites and their natural enemies: a review. I. Tetranychid enemies: their
biological characters and the impact of spray practices. Hilgardia 40(11):
331-90. McMurtry,
J. A., E. R. Oatman, P. A. Phillips & C. W. Wood. 1978. Establishment of Phytoseiulus
persimilis (Acari: Phytoseiidae) in southern California. Entomophaga 23: 175-179. Messenger, P. S. & R. van den Bosch. 1971.
The adaptability of introduced biological control agents. In:
"Biological Control," C. B. Huffaker (ed.), p. 69-92. Plenum Publ.
Corp., New York. 511 p. Metcalf,
R. A., J. C. Marlin & G. S. Whitt. 1975. Low levels of genetic heterozygosity
in Hymenoptera. Nature
257: 792-94. Mollema, C. 1991. Heritability
estimates of host selection behavior by the Drosophila parasitoid Asobara
tabida. Neth. J. Zool. 41: 174-83. Mooney,
H. A. & G. Bernardi (eds.). 1990. Introduction of Genetically Modified
Organisms into the Environment. John Wiley, Chichester. Mouches,
C., N. Pasteur, J. B. Berge, O. Hyrien, M. Raymond, B. R. de Saint Vincent,
M. de Silvestri & G. P. Georghiou. 1986. Amplification of an esterase
gene is responsible for insecticide resistance in a California Culex
mosquito. Science 233: 778-80. Mueller,
L. D., D. A. Wilcox, P. R. Ehrlich, D. G. Heckel & D. D. Murphy. 1985. A
direct assessment of the role of genetic drift in determining allele
frequency variation in populations of Euphydrias editha.
Genetics 110: 495-511. Mukai,
T. 1988. Genotype-environment interaction in relation to the maintenance of
genetic variability in populations of Drosophila melanogaster,
p. 21-31. In: B. S. Weir, E. J. Eisen, M. M. Goodman
& G. Namkoong (eds.), Proc. 2nd Internatl. Conf.
Quant. Genetics. Sinauer Assoc., Mass. Myers,
J. H. & M. D. Sabath. 1980. Genetic and phenotypic variability, genetic
variance, and the success of establishment of insect introductions for the
biological control of weeds. Proc. Intern. Symp. Biol.
Contr. Weeds, Brisbane, Australia 1980. p. 91-102. Nagylaki,
T. 1983. The robustness of neutral models of geographic variation. Theor.
Popul. Biol. 74: 268-94. Napoli,
C. & B. Stakawicz. 1985. Molecular genetics of biological control agents
of plant pathogens: status and prospects, p. 455-46. In: M. A. Hoy
& D. C. Herzog (eds.), Biological Control in Agricultural IPM Systems.
Academic Press, Orlando. Nei,
M. 1986. Definition and estimation of fixation indices. Evolution 40: 643-44. Nevo,
E. 1978. Genetic variation in natural populations: patterns and theory. Theo.
Pop. Biol. 1978: 121-77. Olson,
D. & D. Pimentel. 1974. Evolution of resistance in a host population to
attacking parasite. Environ. Ent. 3: 621-4. Pielou,
D. P. & R. F. Glasser. 1952. Selection for DDT resistance in a beneficial
insect parasite. Science 115: 117-18. Pimentel,
D. 1980. Environmental risks associated with biological controls. Ecol. Bull.
31: 11-24. Pimentel,
D. 1984. Genetic diversity and stability in parasite-host systems, p.
295-311. In: B. Shorrocks (ed.), Evolutionary Ecology. Blackwell
Scien. Publ., Oxford. 418
p. Pimentel, D. 1985. Using
genetic engineering for biological control: reducing ecological risks, p.
129-40. In: H. O. Halvorson, D. Pramer & M. Rogul (eds.),
Engineered Organisms in the Environment: Scientific Issues. Amer. Soc.
Microbiol., Wash., D.C. 239 p. Pimentel,
D. 1988. Genetic engineering, agriculture, and environmental policy. Policy
Stud. J. 17: 117-24. Pimentel, D. & R. Al-Hafidh. 1965.
Ecological control of a parasite population by genetic evolution in the
parasite-host system. Ann.
Ent. Soc. Amer. 58: 1-6. Pimentel,
D. & A. C. Bellotti. 1976. Parasite-host population systems and genetic
stability. Amer. Nat. 110: 877-88. Pimentel,
D., M. S. Hunter, J. A. LaGro, R. A. Efroymson, J. C. Landers, F. T. Mervis,
C. A. McCarthy & A. E. Boyd. 1988. Benefits and risks of genetic
engineering in agriculture. Environ. Biol. Rept. 88-1, Cornell Univ., Ithaca,
N.Y. Pimentel,
D., M. S. Hunter, J. A. LaGro, R. A. Efroymson, J. C. Landers, F. T. Mervis,
C. A. McCarthy & A. E. Boyd. 1989. Benefits and risks of genetic
engineering in agriculture. BioScience 39: 606-14. Pinto,
J. D., D. J. Kazmer, G. R. Platner and C. A. Sassaman. 1992. Taxonomy of the Trichogramma
minutum complex (Hymenoptera: Trichogrammatidae): allozymic variation
and its relationship to reproductive and geographic data. Ann. Ent. Soc. Amer. 85: 413-22. Prakash, S. 1973. Patterns
of gene variation in central and marginal populations of Drosophila robusta.
Genetics 75: 347-69. Presnail,
J. K. & M. A. Hoy. 1992. Stable genetic transformation of a beneficial
arthropod, Metaseiulus occidentalis (Acari: Phytoseiidae), by a
microinjection technique. Proc. Natl. Acad. Sci. 89: 7732-36. Prevost,
G. & W. J. Lewis. 1990. Heritable differences in the response of the
braconid wasp Microplitis croceipes to volatile
allelochemicals. J. Insect Behav. 3: 277-87. Ram,
A. & A. K. Sharma. 1977. Selective breeding for improving the fecundity
and sex ratio of Trichogramma fasciatum (Perkins)
(Trichogrammatidae: Hymenoptera) an egg parasite of lepidopterous hosts.
Entomology 2: 133-37. Readshaw,
J. L. 1975. Biological control of orchard mites in Australia with an
insecticide-resistant predator. J. Aust. Ins. Agric.
Sci. 41: 213-214. Remington,
C. L. 1968. The population genetics of insect introduction. Ann. Rev. Ent.
13: 415-27. Ringo,
J., H. Dowse & S. Lagasse. 1987. Inbreeding decreases mating propensity
and productivity in Drosophila simulans. J. Hered. 78: 271-72. Robertson,
J. G. 1957. Changes in resistance to DDT in Macrocentrus ancylivorus
Rohw. (Hymenoptera:
Braconidae). Canad. J. Zool. 35: 629-33. Room,
P. M., D. P. A. Sands, I. W. Forno, M. F. J. Taylor & M. H. Julien. 1985.
A summary of research into biological control of salvinia in Australia, p.
543-49. In: E. S. Delfosse (ed.), Proc. 6th Intern. Symp. Biological
Control of Weeds, 19-25 Aug, 1984, Vancouver, Canada. Agriculture Canada. Room,
R. M., H. L. S. Harley, I. W. Forno & D. P. Sands. 1981. Successful
biological control of the floating weed salvinia. Nature (London) 292: 78-80. Rosen,
D. 1980. Integrated control of citrus pests in Israel. Proc. Intern. Symp. IOBC/WPRS,
Integrated Control in Agriculture and Forestry (Vienna, 1979), p. 289-92. Rosen,
D. 1985. Biological Control, p. 413-64. In: G. A. Kerkut & L. I.
Gilbert (eds.), Insect Physiology, Biochemistry and Pharmacology.
Comprehensive Vol. 12. Pergamon Press, Oxford. 849 p. Rosen, D. & P. DeBach. 1978.
Diaspididae, p. 78-128. In: C. P. Clausen (ed.), Introduced Parasites
and Predators of Arthropod Pests and Weeds: A world review. Agric. Handbk.
480, U. S. Dept. Agric., Washington, D. C. Rosenheim, J. A. & M. A. Hoy. 1986. Intraspecific
variation in levels of pesticide resistance in field populations of a
parasitoid, Aphytis melinus (Hymenoptera: Aphelinidae): the
role of past selection pressures. J. Econ. Ent. 79: 1161-73. Rosenheim, J. A. & M. A. Hoy. 1988. Genetic
improvement of a parasitoid biological control agent: artificial selection
for insecticide resistance in Aphytis melinus (Hymenoptera:
Aphelinidae). J.
Econ. Ent. 81: 1539-50. Roush,
R. T. 1979. Genetic improvement of parasites. In: "Genetics in Relation
to Insect Management," M. A. Hoy & J. J. McKelvey, Jr. (eds.). p.
95-105. Rockefeller Found. Press, New York. 179 p. Roush,
R. T. 1990. Genetic variation in natural enemies: critical issues for
colonization in biological control, p. 263-88. In: M. Mackauer, L. E.
Ehler & J. Roland (eds.), Critical Issues in Biological Control.
Intercept. Ltd., UK. Roush,
R. T. & M. A. Hoy. 1981a. Genetic improvement of Metaseiulus occidentalis:
selection with methomyl, dimethoate and carbaryl and genetic analysis of carbaryl
resistance. J.
Econ. Ent. 74: 138-41. Roush,
R. T. & M. A. Hoy. 1981b. Laboratory, glasshouse and field studies of
artificially selected carbaryl resistance in Metaseiulus occidentalis.
J.
Econ. Ent. 74: 142-47. Roush, R. T. & J. A. McKenzie. 1987.
Ecological genetics of insecticide and acaricide resistance. Ann. Rev. Ent.
32: 361-80. Sailer,
R. I. 1961. Possibilities for genetic improvement of beneficial insects, p.
295-303. In: Germ Plasm Resources, A.A.A.S., Washington, D. C. Sands,
D. P. A. & M. Shotz. 1985. Control or no control: A comparison of the
feeding strategies of two salvinia weevils, p. 551-56. In: E. S.
Delfosse (ed.), Proc. 6th Intern. Symp. Biological Control of Weeds, 19-25
Aug, 1984, Vancouver, Canada, Agriculture Canada. Sands,
D. P. A., M. Schotz & A. S. Bourne. 1983. The feeding characteristics and
development of larvae of a salvinia weevil Cyrtobagous sp. Ent. Exp.
Appl. 34: 291-96. Schaffer,
H. E., D. Yardley & W. W. Anderson. 1977. Drift or selection: a
statistical test of gene frequency variation over generations. Genetics 87:
371-79. Schmieder,
R. G. & P. W. Whiting. 1947. Reproductive economy in the chalcidoid wasp Melittobia.
Genetics 32: 29-37. Schroth,
M. N. & J. G. Hancock. 1985. Soil antagonists in IPM systems, p. 425-31. In:
M. A. Hoy & D. C. Herzog (eds.), Biological Control in Agricultural IPM
Systems. Academic Press, Orlando. Schulten, G. G. M. & G. van de
Klashorst. 1974. Genetics of
resistance to parathion and demeton-s-methyl in Phytoseiulus persimilis
A.-H. (Acari: Phytoseiidae). Proc. 4th Intern. Congr. Acarol. (1974): 519-24 Simmonds,
F. J. 1947. Improvement of the sex-ratio of a parasite by selection. Canad.
Ent. 79: 41-44. Simmonds,
F. J. 1964. Mass production of insect parasites and predators. Bull. World
Health Org. 31: 511-12. Simmonds,
F. J., J. M. Franz & R. I. Sailer. 1976. History of biological control,
p. 17-39. In: C. B. Huffaker & P. S. Messenger (eds.), Theory and
Practice of Biological Control. Academic Press, New York. 788 p. Skinner,
S. W. 1987. Paternal transmission of an extrachromosomal factor in a wasp:
evolutionary implications. Heredity 59: 47-53. Slatkin,
M. 1985. Gene flow in natural populations. Ann. Rev. Ecol. Syst. 16: 393-430. Smith,
S. B. 1941. A new form of spruce sawfly identified by means of its cytology
and parthenogenesis. Sci. Agric. 21: 245-305. Soans,
A. B., D. Pimentel 7 J. S. Soans. 1974. Evolution of reproductive isolation
in allopatric and sympatric populations. Amer. Nat. 108: 117-24. Sokal, R. R. & N. L. Oden. 1978a. Spatial
autocorrelation in biology. I. Methodology. Biol. J. Linn. Soc. 10: 199-228. Sokal, R. R. & N. L. Oden. 1978b. Spatial
autocorrelation in biology. II. Some biological implications and four
applications of evolutionary and ecological interest. Biol. J. Linn. Soc. 10:
229-49. Stille,
B. & L. Davring. 1980. Meiosis and reproductive strategy in the
parthenogenetic gall wasp Diplolepis rosae. Heredity 92:
353-62. Stouthamer,
R. & R. F. Luck. 1988. Microorganisms implicated as a cause of
thelytokous parthenogenesis in Trichogramma sp. (Hymenoptera:
Trichogrammatidae). Proc. 18th Internatl. Cong. Ent.. p. 499. Stouthamer,
R. & R. F. Luck. 1991. Transition from bisexual to unisexual cultuers in Encarsia
perniciosi (Hymenoptera: Aphelinidae): new data and a
reinterpretation. Ann.
Ent. Soc. Amer. 84: 150-57. 2003. Stouthamer, Richard, & E.
Fred Legner. 2003. Genetics of solitary and gregarious emergence in the parasitoid wasp
Muscidifurax raptorellus: paternal modification
of larval aggression. (in process) Strickler,
K. A. & B. A. Croft. 1981. Variation in permethrin and azinphosmethyl
resistance in populations of Amblyseius fallacis (Acarina:
Phytoseiidae). Environ. Ent. 10: 233-36. Strickler,
K. A. & B. A. Croft. 1982. Selection for permethrin resistance in the
predatory mite Amblyseius fallacis. Ent. Exp. Appl. 31: 339-45. Sydor, W. J. & D. Pimentel. 1975.
Genetic feedback and simulated environmental catastrophe. Canad. Ent. 107:
1343-48. Szmidt,
A. 1972. Studies on the efficiency of various strains of the parasite Dahlbominus
fuscipennis (Zett.) (Hymenoptera, Chalcidoidea) under natural
conditions. Ekol. Pol. 20: 299-313. Taylor,
O. R. 1985. African bees: potential impact in the United States. Bull. Ent.
Soc. Amer. 31(4): 15-24. Thomas,
P. A. & M. Room. 1985. Towards biological control of salvinia in Papua
New Guinea, p. 567-74. In: E. S. Delfosse (ed.), Proc. 6th Intern.
Symp. Biological Control of Weeds, 19-25 Aug, 1984, Vancouver, Canada,
Agriculture Canada. Tiedje,
J. M., R. K. Colwell, Y. L. Grossman, R. E. Hodson, R. E. Lenski, R. N. Mack
& P. J. Regal. 1989. The planned introduction of genetically engineered
organisms: ecological considerations and recommendations. Ecology 70(2):
298-315. Townsend,
J. I., Jr. 1952. Genetics of marginal populations of Drosophila willistoni.
Evolution 6: 428-42. Traynier,
R. M. M. 1988. Constraints on flexibility in ovipositional learning by the
cabbage white butterfly, Pieris rapae. J. Insect Behavior (in
press). Turnbull,
A. L. 1967. Population dynamics of exotic insects. Bull. Ent. Soc. Amer. 13:
333-37. Turnbull,
A. L. & D. A. Chant. 1961. The practice and theory of biological control
of insects in Canada. Canad. J. Zool. 39: 697-753. Turnock,
W. J., K. L. Taylor, D. Schroder & D. L. Dahlsten. 1976. Biological
control of pests of coniferous forests, p. 289-311. In: C. B. Huffaker
& P. S. Messenger (eds.), Theory and Practice of Biological Control.
Academic Press, Inc., New York. 788 p. Udovic, J. D., D. Pimentel & D.
Nafus. 1976. The interaction
between spatial heterogeneity and genetic feedback in laboratory
predator-prey systems. Oecologia
25: 23-34. Unruh, T. R., W. White, D. Gonzalez,
G. Gordh & R. F. Luck. 1983. Heterozygosity
and effective size in laboratory populations of Aphidius ervi
(Hym.: Aphidiidae). Entomophaga
28: 245-58. Urquijo, P. 1951. Aplicación de la
genética al aumento de la eficacia del Trichogramma minutum en
la lucha biológica. Biol. Patol. Veg. Ent.
Agric. (Madrid)
18: 1-12. Urquijo, P. 1956. Selection des
estirpes de Trichogramma minutum Riley de maxima effectividad
parasitaria. Bolet Patol. Veg. Ent. Agric. 14: 199-216. van de Vrie, M., J. A. McMurtry &
C. B. Huffaker. 1972. Ecology of tetranychid
mites and their natural enemies: a review. III. Biology, ecology and pest
status and host-plant relations of tetranychids. Hilgardia 41(13): 343-432. Van
Driesche, R. G. & T. S. Bellows, Jr. 1996. Biological Control.. Chapman
& Hall, NY. 539 p. Van Gundy, S. D. 1985. Biological
control of nematodes: status and prospects in agricultural IPM systems, p.
467-78. In: M. A. Hoy & D. C. Herzog (eds.), Biological Control in
Agricultural IPM Systems. Academic Press, Orlando. Via, S. 1984a. The
quantitative genetics of polyphagy in an insect herbivore. I.
Genotype-environment interaction in larval performance on different host
plant species. Evolution 38: 882-95. Via,
S. 1984b. The quantitative genetics of polyphagy in an insect herbivore. II.
Genetic correlation in larval performance within and across host plants.
Evolution 38: 896-905. Via,
S. 1990. Ecological genetics and host adaptation in herbivorous insects: the
experimental study of evolution in natural and agricultural systems. Ann.
Rev. Ent. 35: 421-46. Via,
S. 1991. The genetic structure of host plant adaptation in a spatial
patchwork: demographic variability among reciprocally transplanted pea aphid
clones. Evolution 45: 827-52. Voroshilov,
N. V. 1979. Heat-resistant lines of the mite Phytoseiulus persimilis
A.-H. Genetika 15(1): 70-76. Voroshilov,
N. V. & L. I. Kolmakova. 1977. Heritability of fertility in a hybrid
population of Phytoseiulus. Genetika 13(8): 1495-96. Wajnberg, E. 1989. Analysis
of variations of handling-time in Trichogramma maidis.
Entomophaga 34: 397-408. Wajnberg,
E., J. Pizzol & M. Babault. 1989. Genetic variation in progeny allocation
in Trichogramma maidis. Ent. Expt. Appl. 41. Waters,
W. E., A. T. Drooz, & H. Pschorn-Walcher. 1976. Biological control of
pests of broad-leaved forests and woodlands, p. 313-36. In: C. B.
Huffaker & P. S. Messenger (eds.), Theory and Practice of Biological
Control. Academic Press, New York. 788 p. Watterson,
G. A. 1982. Testing selection at a single locus. Biometrics 38: 323-31. Weir,
B. S. & C. C. cockerham. 1984. Estimating F-statistics for the analysis
of population structure. Evolution 38: 1358-70. Weseloh,
R. M. 1986. Artificial selection for host suitability and development length
of the gypsymoth (Lepidoptera: Lymantriidae) parasite, Cotesia melanoscela
(Hymenoptera: Braconidae). J.
Econ. Ent. 79: 1212-16. Whalon,
M. E., B. A. Croft & T. M. Mowry. 1982. Introduction and survival of
susceptible and pyrethroid-resistant strains of Amblyseius fallacis
(Acari: Phytoseiidae) in a Michigan apple orchard. Environ. Ent. 11: 1096-99. White,
E. F., P. DeBach & M. J. Garber. 1970. Artificial selection for genetic
adaptation to temperature extremes in Aphytis lingnanensis
Compere (Hymenoptera: Aphelinidae). Hilgardia 40(6): 161-92. Whiting,
A. R. 1965. The complex locus R in Mormoniella vitripennis
(Walker), p. 341-58. In: E. W. Caspari & J. M. Thoday (eds),
Advances in Genetics. Academic Press, NY. 13. Whiting,
A. R. 1967. The biology of the parasitic wasp Mormoniella vitripennis
(= Nasonia brevicornis) (Walker). Quart. Rev. Biol. 42(3):
333-406. Whiting,
P. W. 1943. Multiple alleles in complementary sex determination of Habrobracon.
Genetics 28: 265-382. Whiting,
P. W. 1950. Linkage
in Mormoniella. Genetics 35: 699. Whiting,
P. W. 1951. Multiple complementary alleles in Habrobracon and Mormoniella.
J. Genetics, London 50: 206-14. Whiting,
P. W. 1954. Comparable mutant eye colours in Mormoniella and Pachycrepoideus
(Hymenoptera, Pteromalidae). Evolution 8: 135-47. Whiting,
P. W. 1954. Identifying gene elements in Mormoniella. Biol. Bull. 107:
292-93. Whiting,
P. W. 1955a. Ebony versus black eye color in Mormoniella. Biol. Bull.
109: 353. Whiting,
P. W. 1955b. Linkage relations of purple, glass and the eye-color locus R in Mormoniella.
Genetics, Austin 40: 602. Whiting,
P. W. 1955c. Some interactions of mutant eye-color factors in the wasp Mormoniella.
Proc. Penna. Acad. Sci. 29: 242-45. Whiting,
P. W. 1955d. A balanced female-sterile vs. lethal stock in the wasp Mormoniella.
Assoc. SE., Biol. Bull. 2: 12. Whiting,
P. W. 1956a. Duplication at the R-locus in Mormoniella. Genetics,
Austin 41: 666. Whiting,
P. W. 1956b. Spontaneous eye-color mutation in Mormoniella (The
opening of Pandora's box). Proc. Penna. Acad. Sci. 30: 226-46. Whiting,
P. W. 1957. Alternative states of factors in the R series of allelic genes in
Mormoniella. Assoc. SE. Biol. Bull. 4: 16. Whiting,
P. W. 1958. Mormoniella and the nature of the gene: Mormoniella
vitripennis (Walker) (Hymenoptera, Pteromalidae). Proc. 10th
Internatl. Congr. Ent., Hamburg 1956, Vol. 2: 857-66. Whiting,
P. W. 1960. Polyploidy in Mormoniella. Genetics, Austin 45: 949-70. Whiting,
P. W. & D. J. Bush. 1959. Maintaining stocks in Mormoniella. Proc.
Penna. Acad. Sci. 33: 248-51. Whitten,
M. J. 1970. Genetics of pests in their management. In: "Concepts
of Pest Management," C. L. Rabb & F. E. Guthrie (eds.) p. 119-35.
North Carolina St. Univ. Press. Whitten,
M. J. & G. G. Foster. 1975. Genetical methods of pest control. Ann. Rev.
Ent. 20: 461-76. Whitten,
M. J. & M. A. Hoy. 1996. Genetic improvement and other genetic
considerations for improving the efficacy and success rate of biological
control. In: Chapter 19, Principles and Application of Biological
Control. University of California Press, Berkeley. (in press). Whitten,
M. J. & J. A. McKenzie. 1982. The genetic basis for pesticide resistance.
In: K. E. Lee (ed.), Proc. 3rd Australasian Conf. Grassl. Invert.
Ecol., Adelaide 30 Nov. - 4 Dec., 1981. S. A. Govt Printer, Adelaide 1982. Wilkes,
A. 1942. The influence of selection on the preferendum of a chalcid (Microplectron
fuscipennis Zett.) and its significance in the biological control of
an insect pest. Proc.
Roy. Soc.London, Ser. B. 130: 400-15. Wilkes,
A. 1947. The effects of selective breeding in the laboratory propagation of
insect parasites. Proc. Roy. Ent. Soc. (London) Ser. B. 134: 227-45. Wright,
A. D. 1981. Biological control of water hyacinth in Australia, p. 529-35. In:
E. S. Delfosse (ed.), Proc. 5th Intern. Symp. Biological Control of Weeds,
June 22-27, 1980, Brisbane, Australia, CSIRO Melbourne. Wright,
S. 1951. The genetical structure of populations. Ann. Eugen. 15: 323-54. Wright, S. 1968. Evolution
and Genetics of Populations, vol. 1. Genetics & Biometric Foundations.
Univ. Chicago Press, Chicago, IL. Wright,
S. 1969. Evolution and Genetics of Populations, vol. 2. The Theory of Gene
Frequencies. Univ. Chicago Press, Chicago, IL. Wright,
S. 1978. Evolution and Genetics of Populations, vol. 4. Variability Within
and Among Natural Populations. Univ. Chicago Press, Chicago, IL. Wright,
S. 1980. Genic and organismic selection. Evolution 34: 825-43. Xu,
X., K. H. Li, Y. F. Li, Z. Moon & L. Y. Li. 1986. Culture of resistant
strain of Trichogramma japonicum to pesticides. Natural Enemies
of Insects 8(3): 150. Yoder, O. C., K. Weltring, B. G. Turgeon,
R. C. Garber & H. D. Vanetten. 1987.
Prospects for development of molecular technology for fungal insect
pathogens, p. 197-218. In: Biotechnology in Invertebrate Pathology and
Cell Culture, Academic Press, New York. Zareh,
N., M. Westoby & D. Pimentel. 1980. Evolution in a laboratory
host-parasitoid system and its effect on population kinetics. Canad. Ent.
112: 1049-60. Zwölfer,
H. 1988. Evolutionary and ecological relationships of the insect fauna of
thistles. Ann.
Rev. Ent. 33: 103-22. Zwölfer, H., M. A. Ghani & V. P. Rao.
1976. Foreign exploration and
importation of natural enemies. In: "Theory and Practice of
Biological Control," C. B. Huffaker & P. S. Messenger (eds.). pp.
189-207. Academic Press, New York. 788 p. |