Austin Burt

Active 1987–2025

85
Papers
18,831
Citations
64
h-index
80
i10-index

Citations

Citations per year for Austin Burt1973: 1 citations1979: 3 citations1980: 2 citations1983: 1 citations1984: 1 citations1986: 2 citations1987: 1 citations1988: 4 citations1989: 5 citations1990: 7 citations1991: 8 citations1992: 10 citations1993: 8 citations1994: 10 citations1995: 12 citations1996: 18 citations1997: 25 citations1998: 26 citations1999: 40 citations2000: 79 citations2001: 57 citations2002: 55 citations2003: 70 citations2004: 79 citations2005: 109 citations2006: 86 citations2007: 99 citations2008: 132 citations2009: 134 citations2010: 141 citations2011: 170 citations2012: 129 citations2013: 147 citations2014: 145 citations2015: 194 citations2016: 216 citations2017: 270 citations2018: 240 citations2019: 606 citations2020: 612 citations2021: 611 citations2022: 395 citations2023: 248 citations2024: 433 citations2025: 162 citations2026: 3 citations1974–1978: no citations, so these years are not shown1981–1982: no citations, so these years are not shown1985: no citations, so this year is not shown

Citation sources

Countries

World map of the countries and regions citing this authorUnited States: 1,637 citing papers, 25.7% of this breakdownUnited Kingdom: 757 citing papers, 11.9% of this breakdownFrance: 404 citing papers, 6.3% of this breakdownChina: 291 citing papers, 4.6% of this breakdownCanada: 289 citing papers, 4.5% of this breakdownGermany: 275 citing papers, 4.3% of this breakdownAustralia: 229 citing papers, 3.6% of this breakdownItaly: 160 citing papers, 2.5% of this breakdownSpain: 143 citing papers, 2.3% of this breakdownNetherlands: 139 citing papers, 2.2% of this breakdownSwitzerland: 136 citing papers, 2.1% of this breakdownSweden: 128 citing papers, 2% of this breakdown
0%25.7%Other 28%

Fields

  • Biochemistry, Genetics and Molecular Biology48.3%
  • Agricultural and Biological Sciences25.6%
  • Medicine13.4%
  • Environmental Science3.2%
  • Immunology and Microbiology2.1%
  • Computer Science1.4%
  • Other6%

Topics

  • CRISPR and Genetic Engineering7.2%
  • Evolution and Genetic Dynamics5%
  • Insect symbiosis and bacterial influences4.6%
  • Plant Pathogens and Fungal Diseases3.6%
  • Chromosomal and Genetic Variations3.4%
  • Mosquito-borne diseases and control3.3%
  • Other72.9%

Coauthors

All papers

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  1. A CRISPR–Cas9 gene drive targeting doublesex causes complete population suppression in caged Anopheles gambiae mosquitoes

    Authors: , , , , , , , - Nature Biotechnology 2018 cited by 960

  2. A CRISPR-Cas9 gene drive system targeting female reproduction in the malaria mosquito vector Anopheles gambiae

    Authors: , , , , , , , , , , , , , - Nature Biotechnology 2015 cited by 1,284

  3. Site-specific selfish genes as tools for the control and genetic engineering of natural populations

    Authors: - Royal Society B Biological Sciences, Proceedings of the Royal Society B Biological Sciences 2003 cited by 758

  4. Regulating the expression of gene drives is key to increasing their invasive potential and the mitigation of resistance

    Authors: , , , , , , , , , , - PLoS Genetics 2021 cited by 151

  5. A synthetic sex ratio distortion system for the control of the human malaria mosquito

    Authors: , , , , , , , , - Nature Communications 2014 cited by 384

  6. Population genomics of domestic and wild yeasts

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , - Nature 2009 cited by 1,503

  7. A male-biased sex-distorter gene drive for the human malaria vector Anopheles gambiae

    Authors: , , , , , , , , , , , - Nature Biotechnology 2020 cited by 253

  8. Highly evolvable malaria vectors: The genomes of 16 Anopheles mosquitoes

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , Mira Han, Thaung Hlaing, Daniel Hughes, Adam M. Jenkins, Xiaofang Jiang, Irwin Jungreis, Evdoxia G. Kakani, Maryam Kamali, Petri Kemppainen, Ryan Kennedy, Ioannis Kirmitzoglou, Lizette L. Koekemoer, Njoroge Laban, Nicholas Langridge, Mara Lawniczak, Manolis Lirakis, Neil F. Lobo, Ernesto Lowy, Robert M. MacCallum, Chunhong Mao, G. Maslen, Charles Mbogo, Jennifer B. McCarthy, Kristin Michel, Sara N. Mitchell, Wendy Moore, Katherine A. Murphy, Anastasia N. Naumenko, Tony Nolan, Eva Maria Novoa, Samantha M. O’Loughlin, Chioma Oringanje, Mohammad Ali Oshaghi, Nazzy Pakpour, Philippos Aris Papathanos, Ashley Peery, Michael Povelones, Anil Prakash, David P. Price, Ashok Rajaraman, Lisa J. Reimer, David C. Rinker, Antonis Rokas, Tanya L. Russell, N’Falé Sagnon, Maria V. Sharakhova, Terrance Shea, Felipe A. Simão, Frédéric Simard, Michel A. Slotman, Pradya Somboon, V. N. Stegniy, Cláudio J. Struchiner, Gregg W.C. Thomas, Marta Tojo, Pantelis Topalis, José M. C. Tubío, Maria Unger, John Vontas, Catherine Walton, Craig S. Wilding, Judith H. Willis, Yi-Chieh Wu, Guiyun Yan, Evgeny M. Zdobnov, Xiaofan Zhou, Flaminia Catteruccia, George K. Christophides, Frank H. Collins, Robert S. Cornman and 20 more - Science 2014 cited by 622

  9. Genome variation and population structure among 1142 mosquitoes of the African malaria vector species Anopheles gambiae and Anopheles coluzzii

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , Kenneth D. Vernick, David Weetman, Craig S. Wilding, Bradley J. White, Angola: Arlete D. Troco, João Pinto, Bioko: Jorge Cano, Burkina Faso: Abdoulaye Diabaté, Samantha O'Loughlin, Austin Burt, Cameroon: Carlo Costantini, Kyanne R Rohatgi, Nora J. Besansky, Côte d'Ivoire: Edi Constant, David Weetman, Gabon: Nohal Elissa, João Pinto, Gambia: Davis C. Nwakanma, Musa Jawara, Ghana: John Essandoh, David Weetman, Guinea: Boubacar Coulibaly, Michelle M. Riehle, Kenneth D. Vernick, Guinea-Bissau: João Pinto, João Dinis, Kenya: Janet Midega, Charles Mbogo, Philip Bejon, Mayotte: Gilbert Le Goff, Vincent Robert, Uganda: Craig S. Wilding, David Weetman, Henry Mawejje, Martin J. Donnelly, Laboratory crosses: David Weetman, Craig S. Wilding, Martin J. Donnelly, Jim Stalker, Kirk A. Rockett, Eleanor Drury, Daniel G. Mead, Anna E. Jeffreys, Christina Hubbart, Kate Rowlands, Alison T. Isaacs, Dushyanth Jyothi, Claudio Malangone, Maryam Kamali, Victoria Simpson, Christa Henrichs, Dominic P. Kwiatkowski - Genome Research 2020 cited by 173

  10. Modelling the suppression of a malaria vector using a CRISPR-Cas9 gene drive to reduce female fertility

    Authors: , , - BMC Biology 2020 cited by 124

  11. Indices of multilocus linkage disequilibrium

    Authors: , - Molecular Ecology Notes 2001 cited by 1,177

  12. Gene drive for population genetic control: non-functional resistance and parental effects

    Authors: , , , , - Royal Society B Biological Sciences, Proceedings of the Royal Society B Biological Sciences 2019 cited by 75

  13. Resistance to a CRISPR-based gene drive at an evolutionarily conserved site is revealed by mimicking genotype fixation

    Authors: , , , , , , , , , , , , - PLoS Genetics 2021 cited by 53

  14. A synthetic homing endonuclease-based gene drive system in the human malaria mosquito

    Authors: , , , , , , , , , , - Nature 2011 cited by 390

  15. Long-term reinfection of the human genome by endogenous retroviruses

    Authors: , , , , , , - National Academy of Sciences, Proceedings of the National Academy of Sciences 2004 cited by 420

  16. Impact of mosquito gene drive on malaria elimination in a computational model with explicit spatial and temporal dynamics

    Authors: , , , - National Academy of Sciences, Proceedings of the National Academy of Sciences 2016 cited by 223

  17. The Population Genetics of Using Homing Endonuclease Genes in Vector and Pest Management

    Authors: , , - Genetics 2008 cited by 303

  18. Requirements for effective malaria control with homing endonuclease genes

    Authors: , , - National Academy of Sciences, Proceedings of the National Academy of Sciences 2011 cited by 233

  19. Modelling the potential of genetic control of malaria mosquitoes at national scale

    Authors: , , - BMC Biology 2019 cited by 132

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

    Authors: , - Royal Society B Biological Sciences, Proceedings of the Royal Society B Biological Sciences 2018 cited by 84

  21. Sex increases the efficacy of natural selection in experimental yeast populations

    Authors: , , - Nature 2005 cited by 474

  22. Population genomics of the wild yeast Saccharomyces paradoxus : Quantifying the life cycle

    Authors: , , , - National Academy of Sciences, Proceedings of the National Academy of Sciences 2008 cited by 324

  23. Heritable strategies for controlling insect vectors of disease

    Authors: - Philosophical Transactions of the Royal Society B Biological Sciences 2014 cited by 224

  24. Safeguarding gene drive experiments in the laboratory

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , - Science 2015 cited by 288