WORLD HEALTH OR A~'-JIZ ION
ORGA~ISATrON MONDIALE
DE LA SAr--JTt: ltJ110/Fil/66.58 vJ110/Vector Control/66.l98
ORIGINAL: GENETIC CONTROL OF VECTORS OF DISEASE WITH SPECIAL TO CULEX PIPIENS FATIGANS
ENGLISH
R. Pal Vector Control Unit, Division of Environmental Health, World Health Organization, Geneva
CONTENTS
1. 2.
The induction of dominant lethal mutations • Cystoplasmic incompatibility
2
... Hybrid sterility .• . .. . . . . . . . . . . . . . . . 3. 4. Deleterious factors . . . . . . . .. . . . . ConclUSions . . . .... References .. . .. . . . . ... • • • ...... • • !I • •
3 4
4
5 6
A II/HO Scientific Group (1964) has defined genetic control as tithe use of any condition or treatment that can reduce the reproductive potential of noxious forms altering or the material ft •
Vectors of
can be
insects to control
page c
,Genetic control has so far been limited to the release of insects sterilized with ionizing radiation or chemosterilants. exist for the manipulation of tions. 1.
However, a Great many other possibilities
j;Jochanisms already present in natural popula-
Among these, the following appear most promising.
The induction of dominant lethal mutations When insects are to gamma radiations or chemosterilants, the chromosomes
are affected in such a way that dominant lethal clutations are produced and when males with these mutations mate with the normal populations, embryos are killed. are two methods by which this can be accomplished: There
one rnethod involves the rearing,
sterilization, and release of insects into the environment in sufficient numbers to have a significant impact on the reproductive potential of the natural population. The second method involves the exposure of a significant proportion of the natural population to a chemical sterilant and these sterile insects in turn compete for mates with the ,remaining ,population. Knipling (1964) has discussed the principles involved in the control of insect populations by the release of ~ter~le
males.
T0 state very briefly - if it is
assumed that an uncontrolled insect population of 1 000 000 increases by five times per generation the number of insects per unit area after three generations would be 125 000 000. If such a population is subjected to control by insect1cides or similar means when the level of kill is go per cent. each generation, after four generations the number would drop to 125 000 insects per population. On the uther
hand, if such a population is subjected to control by the sustained constant release of in the first
four
L'lliO/Fil/66.58 WHo/rector ccntrol/66.198 page 3 amount of wor~ls
being
~arried
o¥t on tne control of
house-fli~s bo~h wi~~~~amma
radiations and chemosterilants. control of house-flies.> sterilants. 2. :r(IR~t
The u:;;e of, chemosterilants 1,?o!csPR9mising for ti'.e species of inse.cts of: publip health importance showed
reduced vigour and mating competitiveness after treatillent with radiation or chemical
CytoplasmiC incompatibility Within sqrr}e species complexes of mOF3Quitos, cytoplasmiq;/:'tgents;:cl:1\use i~comp~a:~~-
bility between at all.
Jfqpl;ltations~
Crosses between certain (
pop~lations.give . ,-! ",",'" -'.\ ' .
no offspring
The sterility 1s due 'to a cytoplasmio faotor. transmittedctl::\rough the eggs. ,.:- ; :( r
Control oould be effeoted by mass rearing of males of one crossing type, separation of the sexes in the pupal stage, and release of these males into an area popuTaiea' by an incompatible orossing type. ThisPl:"ihci.pls'of control is comparable to that of the sterile male method, discussed'a.bove, with the difference however that other incapaoitating effects of radiation or ohemosterilants are avoided. Amongst veotors of disease the incompatibility phenomenon is kfi"b~fcto· Culex pipiens and '. "
occW? tii ': !
Aed~s
3cutellaris
complex~;
A number of strains of the Culex pipiens complex have been discovered which are ~
.',
:~!' ~
~
incompatible'to eaoh other.
One such example is that of the C. pipiens strain from
.
Fresno, California, which is incompatible with the normal r
C.
fatiga'ns population in Where males of the : , >
the tropios,fu:tri:1.'s particular instance from Rangoon, Burma. .
Fresno strain mate with females In cage experiments in released into
Rangoon strain, no offspring are . produced. :.' ! Within few
laboratory, various proportions of Fresno males were
Plans conditions in Search for an
further
strains
strain_ ..
WHO;FU/66.58 . vIHofVector Control/66.198 page 4 Selection of a proper site for the pilot experiment. should be an isolated area with a mosquito population which does not overlap with those in adjoining areas. Stage N. Observations on the seasonal abundance of C. p. fatigans at the selected experimental site and the manner in which releases will be made. Stage V. Mass rearing and release of incompatible males. Release
Stage III.
It
to be tried in accordance with the information available on the flight range and dispersal of the males. Stage VI. Integrated control by using insecticides to bring down the population of C. p. fatigans to very low levels and careful timing of release of incompatible males over a period of time.
3.
Hybrid sterility In Anopheles gambiae a number of crossing types have been isolated. Crosses
between types in either direction (6A x ~B)(~A x ~B) result in an Fl generation with fertile females but sterile males. cross-breeding. Although the latter have atrophied testes, usually devoid of spermatozoa, their sexual activity is normal and may be enhanced by
Sterile males have been introduced into laboratory cages to the result
compete with normal males with respect to copulation with normal females; males
was a reduction in the number of fertile eggs proportional to the number of sterile scheme for the control of ~~~~~
this method has also
Natural factors,
genes, that can be isolated
in Sex-linked or lethals factors also infective
':JHo/F1l/66.58 llliO/Vector Control/66.198 page 5
distorting sex ratio should be useful, especially in species where only one sex is noxious, as in mosquitos. Certain candidate genes for such programmes are currently available in some of the well-studied species, such as Culex pipiens and Aedes aegypti. In Aedes aegYEti, a strain id th male producing factor has been discovered. sex locus causes selective prod~ction of male determining sperm. The
factor distorts sex ratio (90t to 10?) though meiotic drive operating at or near the
In experimental
populations females have been exposed to various proportions of male producing and normal males and populations were allowed to breed without further disturbance for many months. }O weeks. Combination of 5:1 or 10:1 of male producing to normal males were This is -equival~!1:~_ :tg 80 percent. control, of females. squally effective in maintaining a sex ratio of 10 per cent. female for more than
A single gene makes A. aegypti refractory to certain filaria and another gene controls susceptibility to Plasmodiurw galtinaceum. -:E't"-i.s at- least conceivable that
the gene for zoophily or insusceptibility to disease could be.inGorpGrated into field )opulations by mass release of laboratory-reared individuals. A major problem must be solved before genetic control of A. aegypti or in fact lny insect can be applied; whether or not laboratory-reared genetic material can be A field experiment on the reproductive biology introduced into field populations?
)f A. aegypti has therefore been recommended by the WHO seminar on Aedes aegypti (1964). ). Conclusions It must be stated that at present there are many aspects of genetic control vhich need further the and of vector
sterile tsetse
tilized
To ensure
the
its
the
into other in natural
more in the paper.
of
discussed
E. F.
pp.
World
vectors and