Broadening the Application of Evolutionarily Based Genetic Pest Management
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[1] Quentin Paynter,et al. Predicting the economic benefits and costs of introducing new biological control agents for Scotch broom Cytisus scoparius into New Zealand: how much will biological control of broom harm the New Zealand beekeeping industry? , 2006 .
[2] Willem Takken,et al. The ecology of genetically modified mosquitoes. , 2002, Science.
[3] D. Somers,et al. Recent Advances in Legume Transformation , 2003, Plant Physiology.
[4] F. Gould. Comparisons Between Resistance Management Strategies for Insects and Weeds , 1995, Weed Technology.
[5] Xiao-Fan Wang,et al. Transgenic anopheline mosquitoes impaired in transmission of a malaria parasite , 2002 .
[6] F. L. Vanderplank. Hybridization between Glossina Species and Suggested New Method for Control of Certain Species of Tsetse , 1944, Nature.
[7] M. J. Scott,et al. A repressible female-specific lethal genetic system for making transgenic insect strains suitable for a sterile-release program. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[8] F. Gould,et al. Transposable element insertion location bias and the dynamics of gene drive in mosquito populations , 2005, Insect molecular biology.
[9] R. Beeman,et al. Maternal-effect selfish genes in flour beetles. , 1992, Science.
[10] Nikolai Krementsov,et al. :The Lysenko Effect: The Politics of Science , 2006 .
[11] I. Parker. POLLINATOR LIMITATION OF CYTISUS SCOPARIUS (SCOTCH BROOM), AN INVASIVE EXOTIC SHRUB , 1997 .
[12] R. Metzenberg,et al. Meiotic Silencing by Unpaired DNA , 2001, Cell.
[13] Austin Burt,et al. Site-specific selfish genes as tools for the control and genetic engineering of natural populations , 2003, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[14] R. Hammer,et al. Heritable and stable gene knockdown in rats. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[15] G. G. Foster,et al. Computer simulation of genetic control. Comparison of sterile males and field-female killing systems , 1988, Theoretical and Applied Genetics.
[16] Reichard Re. Area-wide biological control of disease vectors and agents affecting wildlife. , 2002 .
[17] P Grewe,et al. Engineered underdominance allows efficient and economical introgression of traits into pest populations. , 2001, Journal of theoretical biology.
[18] Paul Schliekelman,et al. Population genetics of autocidal control and strain replacement. , 2004, Annual review of entomology.
[19] E. Krafsur,et al. Sterile Insect Technique for Suppressing and Eradicating Insect Population: 55 Years and Counting , 1998 .
[20] M. Nachman,et al. The origin of a Robertsonian chromosomal translocation in house mice inferred from linked microsatellite markers. , 1999, Molecular biology and evolution.
[21] M. Surani,et al. Genetic and Epigenetic Regulators of Pluripotency , 2007, Cell.
[22] L. Cook,et al. Transporting the marker gene re (red eye) into a laboratory cage population of Aedes aegypti (Diptera: Culicidae), using meiotic drive at the MD locus. , 1977, Journal of medical entomology.
[23] Lorian Schaeffer,et al. A synthetic maternal-effect selfish genetic element drives population replacement in Drosophila. , 2007, Science.
[24] E. F. Knipling. Use of Insects for Their Own Destruction , 1960 .
[25] S. Freeman,et al. On the possibility of a new method for the control of insect pests. , 1969 .
[26] A. James,et al. Gene vector and transposable element behavior in mosquitoes , 2003, Journal of Experimental Biology.
[27] R. Metzenberg,et al. Neurospora Spore Killers Sk-2 and Sk-3 Suppress Meiotic Silencing by Unpaired DNA , 2007, Genetics.
[28] Dazhao Shi,et al. Mice, rats, and people: the bio‐economics of agricultural rodent pests , 2003 .
[29] F. Gould. The evolutionary potential of crop pests. , 1991 .
[30] Michael J. O. Pocock,et al. Dispersal in house mice , 2005 .
[31] B. Tabashnik,et al. Pesticide Resistance in Arthropods , 1990, Springer US.
[32] F. L. Vanderplank. EXPERIMENTS IN THE HYBRIDISATION OF TSETSE-FLIES (GLOSSIN A, DIPTERA) AND THE POSSIBILITY OF A NEW METHOD OF CONTROL , 2009 .
[33] Fred Gould,et al. Genetically Engineered Underdominance for Manipulation of Pest Populations: A Deterministic Model , 2006, Genetics.
[34] G. Rubin,et al. Genetic transformation of Drosophila with transposable element vectors. , 1982, Science.
[35] I. Parker. Invasion dynamics of Cytisus scoparius: a matrix model approach. , 2000 .
[36] M. G. Kidwell,et al. Testing transposable elements as genetic drive mechanisms using Drosophila P element constructs as a model system , 2004, Genetica.
[37] P. Coquillard,et al. Broom (Cytisus scoparius) colonization after grazing abandonment in the French Massif Central: impact on vegetation composition and resource availability , 2006 .
[38] A. Ghosh,et al. Transgenic anopheline mosquitoes impaired in transmission of a malaria parasite , 2002, Nature.
[39] D. Fish,et al. An ecological approach to preventing human infection: Vaccinating wild mouse reservoirs intervenes in the Lyme disease cycle , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[40] S. Ellner,et al. Pest Control by Genetic Manipulation of Sex Ratio , 2005, Journal of economic entomology.
[41] G. Griffith,et al. Economic issues in the management of plants invading natural environments: Scotch broom in Barrington Tops National Park , 2005, Biological Invasions.
[42] J. A. Devesa,et al. Reproductive biology in two Genisteae (Papilionoideae) endemic of the western Mediterranean region: Cytisus striatus and Retama sphaerocarpa , 1999 .
[43] D. Thomas,et al. Insect population control using a dominant, repressible, lethal genetic system. , 2000, Science.
[44] M J Wade,et al. The population dynamics of maternal-effect selfish genes. , 1994, Genetics.
[45] S. Sinkins,et al. Gene drive systems for insect disease vectors , 2006, Nature Reviews Genetics.
[46] A. McMahon,et al. Reproducible and inducible knockdown of gene expression in mice , 2006, Genesis.
[47] Isolation and characterization of polymorphic microsatellite loci for the invasive plant Cytisus scoparius , 2006 .
[48] G. Singleton,et al. THE IMPACT OF STERILIZED FEMALES ON ENCLOSED POPULATIONS OF RICEFIELD RATS , 2004 .
[49] W. Potts,et al. FITNESS EFFECTS OF A SELFISH GENE (THE MUS T COMPLEX) ARE REVEALED IN AN ECOLOGICAL CONTEXT , 2004, Evolution; international journal of organic evolution.
[50] L. Alphey,et al. High efficiency site‐specific genetic engineering of the mosquito genome , 2006, Insect molecular biology.
[51] C. Curtis,et al. History of the Sterile Insect Technique , 2021, Sterile Insect Technique.
[52] J. Auffray,et al. Reproductive trait divergence and hybrid fertility patterns between chromosomal races of the house mouse in Tunisia: analysis of wild and laboratory‐bred males and females , 2005 .
[53] P. McDonald,et al. Field studies of genetic control systems for mosquitoes. , 1981, Annual review of entomology.
[54] J. Jacob,et al. EFFECTS OF IMPOSED STERILITY ON MOVEMENT PATTERNS OF FEMALE RICEFIELD RATS , 2004 .
[55] Neil I. Huth,et al. Relationship between abundance of rodents and damage to agricultural crops , 2007 .
[56] M. G. Kidwell,et al. Transposable elements as population drive mechanisms: specification of critical parameter values. , 1994, Journal of medical entomology.
[57] Y. Buckley,et al. A modelling approach to estimate the effect of exotic pollinators on exotic weed population dynamics: bumblebees and broom in Australia , 2006 .
[58] A. Ortega‐Olivencia,et al. Megasporogenesis, megagametogenesis and ontogeny of the aril in Cytisus striatus and C. multiflorus (Leguminosae: Papilionoideae). , 2006, Annals of botany.
[59] F. Gould,et al. Pest Control by the Release of Insects Carrying a Female-Killing Allele on Multiple Loci , 2000, Journal of economic entomology.
[60] C. Gross,et al. Broom and honeybees in Australia: an alien liaison. , 2005, Plant biology.
[61] A. Hiscox,et al. A dominant lethal genetic system for autocidal control of the Mediterranean fruitfly , 2005, Nature Biotechnology.
[62] Lisa M. D'Souza,et al. Genome sequence of the Brown Norway rat yields insights into mammalian evolution , 2004, Nature.
[63] C. Rajesh,et al. Gene knockouts that cause female infertility: search for novel contraceptive targets. , 2005, Frontiers in bioscience : a journal and virtual library.
[64] R. Berry,et al. The house mouse: a model and motor for evolutionary understanding , 2005 .
[65] J. Carlospopelka. Gene technology for grain legumes: can it contribute to the food challenge in developing countries? , 2004 .
[66] A. James,et al. Engineering RNA interference-based resistance to dengue virus type 2 in genetically modified Aedes aegypti. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[67] R. Reichard. Area-wide biological control of disease vectors and agents affecting wildlife. , 2002, Revue scientifique et technique.
[68] H. Hofmann,et al. Impact of Screwworm Eradication Programmes Using the Sterile Insect Technique , 2021, Sterile Insect Technique.
[69] G. Singleton. Integrated management of rodents: a Southeast Asian and Australian perspective , 1997 .
[70] C. Curtis. Genetic control of insect pests: growth industry or lead balloon? , 1985 .
[71] C. F. CURTIS,et al. Possible Use of Translocations to fix Desirable Genes in Insect Pest Populations , 1968, Nature.
[72] P. R. Brown. Short- and long-term demographic changes in house mouse populations after control in dryland farming systems in Australia , 2006 .
[73] M. Nachman,et al. The genomics of speciation: investigating the molecular correlates of X chromosome introgression across the hybrid zone between Mus domesticus and Mus musculus , 2005 .
[74] Sudarmaji,et al. The impact of imposed female sterility on field populations of ricefield rats (Rattus argentiventer) , 2006 .
[75] Mouse Genome Sequencing Consortium. Initial sequencing and comparative analysis of the mouse genome , 2002, Nature.
[76] G. B. Craig,et al. An Inherited Male-Producing Factor in Aedes aegypti , 1960, Science.
[77] R. Palmer,et al. Molecular mapping of four ovule lethal mutants in soybean , 2004, Theoretical and Applied Genetics.