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1. Eliminating malaria vectors with precision-guided sterile males

2. MGDrivE 3: A decoupled vector-human framework for epidemiological simulation of mosquito genetic control tools and their surveillance.

3. Targeting sex determination to suppress mosquito populations

4. Manipulating the Destiny of Wild Populations Using CRISPR

5. Mechanical transmission of dengue virus by Aedes aegypti may influence disease transmission dynamics during outbreaks

6. Dual effector population modification gene-drive strains of the African malaria mosquitoes, Anopheles gambiae and Anopheles coluzzii

7. A confinable female-lethal population suppression system in the malaria vector, Anopheles gambiae

8. Genetic conversion of a split-drive into a full-drive element.

9. Exploring the value of a global gene drive project registry

10. Recommendations for environmental risk assessment of gene drive applications for malaria vector control

13. Close-kin mark-recapture methods to estimate demographic parameters of mosquitoes

14. Monitoring Needs for Gene Drive Mosquito Projects: Lessons From Vector Control Field Trials and Invasive Species

15. Reversing insecticide resistance with allelic-drive in Drosophila melanogaster

17. Household-level risk factors for Aedes aegypti pupal density in Guayaquil, Ecuador

18. Estimating the potential impact of Attractive Targeted Sugar Baits (ATSBs) as a new vector control tool for Plasmodium falciparum malaria

19. Suppressing mosquito populations with precision guided sterile males.

20. Gene drive strategies of pest control in agricultural systems: Challenges and opportunities

21. Population modification strategies for malaria vector control are uniquely resilient to observed levels of gene drive resistance alleles.

22. Population size estimation of seasonal forest-going populations in southern Lao PDR.

23. Combating mosquito-borne diseases using genetic control technologies.

24. Engineered reproductively isolated species drive reversible population replacement.

25. MGDrivE 2: A simulation framework for gene drive systems incorporating seasonality and epidemiological dynamics.

26. Spatio-temporal associations between deforestation and malaria incidence in Lao PDR.

27. A confinable home-and-rescue gene drive for population modification.

28. Inherently confinable split-drive systems in Drosophila.

29. Deep Learning Architectures Applied to Mosquito Count Regressions in US Datasets

30. Exploiting a Y chromosome-linked Cas9 for sex selection and gene drive

32. Application of the Relationship-Based Model to Engagement for Field Trials of Genetically Engineered Malaria Vectors

33. Modeling confinement and reversibility of threshold-dependent gene drive systems in spatially-explicit Aedes aegypti populations

34. Core commitments for field trials of gene drive organisms.

35. Efficient population modification gene-drive rescue system in the malaria mosquito Anopheles stephensi.

36. Translating gene drive science to promote linguistic diversity in community and stakeholder engagement.

37. Active Genetic Neutralizing Elements for Halting or Deleting Gene Drives.

38. Vector bionomics and vectorial capacity as emergent properties of mosquito behaviors and ecology.

39. Toward the Definition of Efficacy and Safety Criteria for Advancing Gene Drive-Modified Mosquitoes to Field Testing

40. Progress towards engineering gene drives for population control.

41. MGDrivE: A modular simulation framework for the spread of gene drives through spatially explicit mosquito populations

42. Development of a confinable gene drive system in the human disease vector Aedes aegypti.

43. A transcomplementing gene drive provides a flexible platform for laboratory investigation and potential field deployment.

44. GENE DRIVES NEW AND IMPROVED

45. Experimental population modification of the malaria vector mosquito, Anopheles stephensi.

47. Genome-wide divergence among invasive populations of Aedes aegypti in California.

48. Transforming insect population control with precision guided sterile males with demonstration in flies.

49. Winning the Tug-of-War Between Effector Gene Design and Pathogen Evolution in Vector Population Replacement Strategies

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