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Disease resistance successfully spread from modified to wild mosquitoes

Mating of genetically modified species

Date:
September 28, 2017
Source:
NIH/National Institute of Allergy and Infectious Diseases
Summary:
Using genetically modified mosquitoes to reduce or prevent the spread of disease is a rapidly expanding field of investigation. One challenge is ensuring that GM mosquitoes can mate with their wild counterparts so the desired modification is spread in the wild population. Investigators have engineered mosquitoes with an altered microbiota that suppresses human malaria-causing parasites. These GM mosquitoes preferred to mate with wild mosquitoes and passed the desired protection to offspring.
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Using genetically modified (GM) mosquitoes to reduce or prevent the spread of infectious diseases is a new but rapidly expanding field of investigation. Among the challenges researchers face is ensuring that GM mosquitoes can compete and mate with their wild counterparts so the desired modification is preserved and spread in the wild population. Investigators at Johns Hopkins University have engineered GM mosquitoes to have an altered microbiota that suppresses human malaria-causing parasites. These GM mosquitos preferred to mate with wild mosquitoes and passed along the desired protection to many generations of offspring.

The research was funded by the National Institute of Allergy and Infectious Diseases (NIAID), part of the National Institutes of Health.

The researchers genetically modified Anopheles mosquitoes, which in nature spread the malaria-causing parasite Plasmodium. The team caged equal numbers of wild and GM mosquitoes and monitored their breeding over 10 generations. Ninety percent of the offspring in each generation passed along the GM trait. Even when combining 10 percent GM with 90 percent wild mosquitoes, the Plasmodium-resistance trait dominated after a few generations. Importantly, the GM mosquitoes maintained their resistance to the malaria parasite for 7 years.

The group also showed that the change in the microbiota resulted in a mating preference among the GM and wild mosquitoes. GM males showed a preference for wild females and wild males preferred GM females; these preferences contributed to the spread of the desired protective trait within the mosquito population.

The authors note that work was conducted in a laboratory setting and that more research is needed to determine if what they observed in the laboratory also will occur under natural conditions. Nevertheless, the study suggests that mosquitoes can be genetically modified to compete in nature with wild populations and spread resistance to the malaria-causing parasite. If implemented, this strategy could eventually result in decreased disease transmission to humans.


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Materials provided by NIH/National Institute of Allergy and Infectious Diseases. Note: Content may be edited for style and length.


Journal Reference:

  1. Andrew Pike, Yuemei Dong, Nahid Borhani Dizaji, Anthony Gacita, Emmanuel F. Mongodin, George Dimopoulos. Changes in the microbiota cause genetically modifiedAnophelesto spread in a population. Science, 2017; 357 (6358): 1396 DOI: 10.1126/science.aak9691

Cite This Page:

NIH/National Institute of Allergy and Infectious Diseases. "Disease resistance successfully spread from modified to wild mosquitoes." ScienceDaily. ScienceDaily, 28 September 2017. <www.sciencedaily.com/releases/2017/09/170928145418.htm>.
NIH/National Institute of Allergy and Infectious Diseases. (2017, September 28). Disease resistance successfully spread from modified to wild mosquitoes. ScienceDaily. Retrieved April 18, 2024 from www.sciencedaily.com/releases/2017/09/170928145418.htm
NIH/National Institute of Allergy and Infectious Diseases. "Disease resistance successfully spread from modified to wild mosquitoes." ScienceDaily. www.sciencedaily.com/releases/2017/09/170928145418.htm (accessed April 18, 2024).

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