Self-limiting population genetic control with sex-linked genome editors

被引:44
作者
Burt, Austin [1 ]
Deredec, Anne [2 ]
机构
[1] Imperial Coll, Life Sci, Silwood Pk, Ascot SL5 7PY, Berks, England
[2] Univ Paris Saclay, UMR BIOGER, INRA AgroParisTech, Ave Lucien Bretignieres, F-78850 Thiverval Grignon, France
基金
比尔及梅琳达.盖茨基金会;
关键词
pest control; sterile insect technique; gene drive; gene editing; CRISPR; Y-linked editors; ANOPHELES-GAMBIAE; DRIVE SYSTEM; PEST-CONTROL; RATIO; REQUIREMENTS; SUPPRESSION; ELIMINATION; DISEASES; RELEASE;
D O I
10.1098/rspb.2018.0776
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
In male heterogametic species the Y chromosome is transmitted solely from fathers to sons, and is selected for based only on its impacts on male fitness. This fact can be exploited to develop efficient pest control strategies that use Y-linked editors to disrupt the fitness of female descendants. With simple population genetic and dynamic models we show that Y-linked editors can be substantially more efficient than other self-limiting strategies and, while not as efficient as gene drive approaches, are expected to have less impact on non-target populations with which there is some gene flow. Efficiency can be further augmented by simultaneously releasing an autosomal X-shredder construct, in either the same or different males. Y-linked editors may be an attractive option to consider when efficient control of a species is desired in some locales but not others.
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页数:9
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共 47 条
  • [1] Control of Mosquito-Borne Infectious Diseases: Sex and Gene Drive
    Adelman, Zach N.
    Tu, Zhijian
    [J]. TRENDS IN PARASITOLOGY, 2016, 32 (03) : 219 - 229
  • [2] Novel Synthetic Medea Selfish Genetic Elements Drive Population Replacement in Drosophila; a Theoretical Exploration of Medea-Dependent Population Suppression
    Akbari, Omar S.
    Chen, Chun-Hong
    Marshall, John M.
    Huang, Haixia
    Antoshechkin, Igor
    Hay, Bruce A.
    [J]. ACS SYNTHETIC BIOLOGY, 2014, 3 (12): : 915 - 928
  • [3] A Synthetic Gene Drive System for Local, Reversible Modification and Suppression of Insect Populations
    Akbari, Omar S.
    Matzen, Kelly D.
    Marshall, John M.
    Huang, Haixia
    Ward, Catherine M.
    Hay, Bruce A.
    [J]. CURRENT BIOLOGY, 2013, 23 (08) : 671 - 677
  • [4] Genetic Control of Mosquitoes
    Alphey, Luke
    [J]. ANNUAL REVIEW OF ENTOMOLOGY, VOL 59, 2014, 2014, 59 : 205 - 224
  • [5] Sterile-Insect Methods for Control of Mosquito-Borne Diseases: An Analysis
    Alphey, Luke
    Benedict, Mark
    Bellini, Romeo
    Clark, Gary G.
    Dame, David A.
    Service, Mike W.
    Dobson, Stephen L.
    [J]. VECTOR-BORNE AND ZOONOTIC DISEASES, 2010, 10 (03) : 295 - 311
  • [6] Interplay of population genetics and dynamics in the genetic control of mosquitoes
    Alphey, Nina
    Bonsall, Michael B.
    [J]. JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2014, 11 (93)
  • [7] Vector control with driving Y chromosomes: modelling the evolution of resistance
    Beaghton, Andrea
    Beaghton, Pantelis John
    Burt, Austin
    [J]. MALARIA JOURNAL, 2017, 16
  • [8] Requirements for Driving Antipathogen Effector Genes into Populations of Disease Vectors by Homing
    Beaghton, Andrea
    Hammond, Andrew
    Nolan, Tony
    Crisanti, Andrea
    Godfray, H. Charles J.
    Burt, Austin
    [J]. GENETICS, 2017, 205 (04) : 1587 - 1596
  • [9] Gene drive through a landscape: Reaction-diffusion models of population suppression and elimination by a sex ratio distorter
    Beaghton, Andrea
    Beaghton, Pantelis John
    Burt, Austin
    [J]. THEORETICAL POPULATION BIOLOGY, 2016, 108 : 51 - 69
  • [10] Site-specific genetic engineering of the Anopheles gambiae Y chromosome
    Bernardini, Federica
    Galizi, Roberto
    Menichelli, Miriam
    Papathanos, Philippos-Aris
    Dritsou, Vicky
    Marois, Eric
    Crisanti, Andrea
    Windbichler, Nikolai
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (21) : 7600 - 7605