Gene Drive in the News
A curated collection of articles from the popular press
New precision-guided sterile insect technique designed to control disease-spreading mosquitoes
18674E. Henderson, News Medical Life Sciences, 2021-09-11 19:59:16.
Leveraging advancements in CRISPR-based genetic engineering, researchers at the University of California San Diego have created a new system that restrains populations of mosquitoes that infect millions each year with debilitating diseases. The new precision-guided sterile insect technique, or pgSIT, alters genes linked to male fertility--creating sterile offspring--and female flight in Aedes aegypti, the mosquito species responsible for spreading wide-ranging diseases including dengue fever, chikungunya and Zika.Details of the new pgSIT are described September 10, 2021, in the journal Nature Communications. pgSIT differs from "gene drive" systems that could suppress disease vectors by passing desired genetic alterations indefinitely from one generation to the next. Instead, pgSIT uses CRISPR to sterilize male mosquitoes and render female mosquitoes, which spread disease, as flightless. The system is self-limiting and is not predicted to persist or spread in the environment, two important safety features that should enable acceptance for this technology. Akbari says the envisioned pgSIT system could be implemented by deploying eggs of sterile males and flightless females at target locations where mosquito-borne disease spread is occurring.
Scientists debate promise, peril of tweaking wild genomes
18517J. Zamora, Phys Org, 2021-09-11 14:53:57.
In the movie Jurassic Park, reconstructing and tweaking genetic material makes it possible to bring dinosaurs back to life. Today, a technology that manipulates animal genomes, called gene drive, has become a reality. The goal, however, is not to revive long-gone species, but to eliminate invasive ones. Steven Spielberg's film was set on an imaginary island off the coast of Costa Rica, and it is also on an island that the first open-air experiments in programmed extinction could take place, according to experts gathered at the International Union for the Conservation of Nature (IUCN) Congress in Marseille. It could happen within a decade, they told AFP. That's because fragile island ecosystems are in crisis. Dozens of vertebrate species have vanished in the last century, and dozens more are on a glide path to extinction. The culprits are non-native rats, snakes and mosquitoes—all introduced by humans, for the most part by accident—that eat bird eggs, infect birds with disease, or outcompete indigenous amphibians and mammals.
Genetic engineering tech promises to sterilize disease-spreading mosquitoes
18525B. Hays, UPI, 2021-09-10 16:01:17.
Inspired by improvements in CRISPR-based genetic engineering, scientists have developed a more precise insect sterilization system to curtail, or even eliminate, disease-spreading Aedes aegypti mosquito populations. The so-called "precision-guided sterile insect technique," or pgSIT, relies on gene alterations that disrupt fertility in males and flight in females. Gene-altered males are released into a problematic population to compete with healthy males. "pgSIT is a new scalable genetic control system that uses a CRISPR-based approach to engineer deployable mosquitoes that can suppress populations," corresponding author Omar Akbari said in a press release. Map of malaria parasite's gene activity reveals new targets for drugs, vaccines "Males don't transmit diseases so the idea is that as you release more and more sterile males, you can suppress the population without relying on harmful chemicals and insecticides," said Akbari, a professor of biological sciences at the University of California, San Diego.
Genetic Engineering Technology Promises To Sterilize Disease-Spreading Mosquito Populations
18519D. Gyllhem, VIGOURTIMES, 2021-09-10 15:00:02.
Inspired by improvements in CRISPR-based genetic engineering, scientists have developed a more precise insect sterilization system to curtail, or even eliminate, disease-spreading Aedes aegypti mosquito populations. The so-called “precision-guided sterile insect technique,” or pgSIT, relies on gene alterations that disrupt fertility in males and flight in females. Gene-altered males are released into a problematic population to compete with healthy males. Scientists described the novel method in a new paper, published Friday in the journal Nature Communications. “pgSIT is a new scalable genetic control system that uses a CRISPR-based approach to engineer deployable mosquitoes that can suppress populations,” corresponding author Omar Akbari said in a press release. “Males don’t transmit diseases so the idea is that as you release more and more sterile males, you can suppress the population without relying on harmful chemicals and insecticides,” said Akbari, a professor of biological sciences at the University of California, San Diego.
New Technology Designed to Genetically Control Disease-spreading Mosquitoes
18515M. Aguilera, UC San Diego News Center, 2021-09-10 14:49:00.
Leveraging advancements in CRISPR-based genetic engineering, researchers at the University of California San Diego have created a new system that restrains populations of mosquitoes that infect millions each year with debilitating diseases. An illustration by study coauthor Stephanie Gamez depicts flightless females and sterile male mosquitoes, features of the new precision-guided sterile insect technique, or pgSIT, which is designed to control disease-spreading Aedes aegypti mosquitoes. The new precision-guided sterile insect technique, or pgSIT, alters genes linked to male fertility—creating sterile offspring—and female flight in Aedes aegypti, the mosquito species responsible for spreading wide-ranging diseases including dengue fever, chikungunya and Zika. “pgSIT is a new scalable genetic control system that uses a CRISPR-based approach to engineer deployable mosquitoes that can suppress populations,” said UC San Diego Biological Sciences Professor Omar Akbari. “Males don’t transmit diseases so the idea is that as you release more and more sterile males, you can suppress the population without relying on harmful chemicals and insecticides.”
Genetically Modified Mosquitoes — What’s The Real Story?
18289SPW Staff, Southeast Product Weekly, 2021-09-02 14:58:32.
You’ve heard about the genetically modified mutant mosquitoes being released in the Florida Keys — but what exactly is going on, and how, and why? Basically, researchers in parts of the Florida Keys are releasing male mosquitoes that have been genetically modified to produce only male offspring. In a generation or two, there are no more girl mosquitoes to have baby mosquitoes. That’s the simple explanation. t might help to know this experiment was tried once before — successfully — in Brazil.There’s now a new, science-based online information resource about genetically modified mosquitoes from University of Florida scientists at the UF/IFAS Florida Medical Entomology Laboratory. “Genetically Modified Mosquitoes” is the latest publication on Ask IFAS, UF/IFAS’ Electronic Data Information Source (EDIS) peer-reviewed site, that provides relevant information regarding the pilot projects in select areas of the Florida Keys. The experiments, which are a collaboration between the Florida Keys Mosquito Control District and the biotechnology company Oxitec founded in the United Kingdom out of Oxford University, are permitted by the U.S. Environmental Protection Agency (EPA).
EPA Seeks Public Comment on Proposed Amendment to Experimental Use Permit for Genetically Engineered Mosquitoes
18279PCT Staff, Pest Control Technology, 2021-09-01 14:19:37.
EPA is seeking public comment on a proposed amendment to extend and expand an approved Experimental Use Permit (EUP). The EUP currently allows Oxitec Ltd. to field test the use of genetically engineered Aedes aegypti mosquitoes as a way to reduce mosquito populations in Florida and Texas through April 2022. The proposed amendment would extend field testing in Florida by another 24 months on up to 6,240 acres and expand testing to California on up 84,600 acres. This amendment is still being reviewed by EPA and has not yet been approved. Once EPA finishes reviewing the proposed amendment and public comments, EPA will make a decision about whether to extend and expand the EUP. In May 2020, EPA granted Oxitec’s EUP after extensive evaluation of the best available science, consideration of public input, and consultation with technical experts at the U.S. Centers for Disease Control and Prevention (CDC). Starting in late April 2021, Oxitec has been measuring how effective OX5034 genetically engineered mosquitoes are in suppressing Aedes aegypti mosquito populations in Florida. They release genetically engineered male mosquitoes that have a gene that makes a specific protein. This protein, as produced in female mosquitoes, prevents female offspring from surviving. The absence of female mosquito emergence in the release area results in mosquito population decline, and potentially, the reduction of vector pathogens that cause mosquito-borne illnesses such as the dengue, Zika and chikungunya viruses.
UF/IFAS Researchers Explain Science Behind Genetically Modified Mosquitoes
18276PCT Staff, Pest Control Technology, 2021-09-01 14:14:47.
South Florida residents seeking science-based information about genetically modified mosquitoes can access a new, online resource from University of Florida scientists at the UF/IFAS Florida Medical Entomology Laboratory.“ Genetically Modified Mosquitoes” is the latest publication on Ask IFAS, UF/IFAS’ Electronic Data Information Source (EDIS) peer-reviewed site, that provides relevant information regarding the pilot projects in select areas of the Florida Keys. The experiments, which are a collaboration between the Florida Keys Mosquito Control District and the biotechnology company Oxitec founded in the United Kingdom out of Oxford University, are permitted by the U.S. Environmental Protection Agency (EPA). The UF/IFAS publication describes the mosquito species being targeted, what to expect from the pilot projects, why this approach is being used as well as answers to other frequently asked questions about genetically modified mosquitoes. The publication also lists additional linked resources for readers interested in more detailed information on the topic and science. “The rationale for producing this document is to help inform the public and those who are interested or impacted by the current trials run by Oxitec,” said Eric Caragata, an assistant professor at UF/IFAS FMEL. “As scientists who are not directly involved in the project, we wanted to clearly address some of the important questions and concerns.”
$1M in funding for project to cull mouse plagues
18349K. Brown, University of Adelaide NEWSROOM, 2021-08-31 13:47:59.
South Australian researchers are set to use genetic tools to help find innovative solutions to the devastating mouse plagues that have caused massive economic damage to Australian farmers.The University of Adelaide has been awarded $1 million in funding from the South Australian Government’s Research and Innovation Fund (RIF), to undertake the ground-breaking Genetic Biocontrol Technology for Invasive Pests, or Gene Drive, project, in conjunction with the Department for Environment and Water.Researchers from the University of Adelaide will develop genetic strategies to suppress invasive rodents with maximum specificity and safety. The team will also conduct research to engage with stakeholders to understand community views and concerns.
Genetically changed mosquitoes could transform Africa’s long fight against malaria
18258L. Singh, ForumIAS, 2021-08-30 13:13:44.
In nature, there’s a phenomenon called gene drive which operates in the process of reproduction. This is when a genetic element is able to increase the chance that it will be inherited by offspring. The general underlying principle of all gene drives is an organism that will produce offspring similar to themselves. Some characteristics are randomly passed on from parents to the next generation. However, gene drive forces a different type of inheritance that ensures a specific characteristic is always present in the next generation. Scientists engineer gene drive using various molecular tools. Gene drive is not just a human invention; some occur naturally in insects. Unlike traditional genetic modification, gene drives enable extremely rapid spread of the desired characteristics.
Millions of Lab-Grown Mosquitoes Are Being Released in Guangzhou
18219F. Yiying, Sixth Tone, 2021-08-25 15:26:45.
Guangzhou is releasing millions of lab-engineered mosquitoes every day to neuter and prevent preexisting mosquitoes in the environment from spreading vector-borne diseases, local television station reported Saturday.The Guangzhou Wolbaki Biotech Co., Ltd., in partnership with the city’s disease control and prevention bureau, releases about five million lab-grown male mosquitoes daily, which only mate with aedes albopictus mosquitoes to stop them from reproducing disease-carrying offspring, according to the media report. Only female aedes albopictus, also known as tiger mosquitoes, prey on people, potentially transmitting the viruses that cause dengue and chikungunya, among other illnesses.The biotech company’s “mosquito factory” in Guangzhou — where dengue fever is a public health concern — breeds mosquitoes to produce offspring carrying the Wolbachia bacteria, which is commonly found in insects and not harmful to humans, before releasing them to the environment. When mosquitoes carrying Wolbachia mate with aedes albopictus, it reduces the replication of the viruses they carry, making them less likely to transmit it to humans.
New Way to Reduce Diseases Spreading Through Mosquitos
18207Dr Jayashree, Medindia, 2021-08-25 15:01:01.
Using a gene editing tool known as CRISPR-Cas9 that targets specific genes tied to fertility in male mosquitoes, we can slow the spread of potentially deadly diseases such as Zika, dengue fever and yellow fever. This genome editing tool is creating a buzz in the science world, as it is faster, cheaper and more accurate than previous techniques of editing DNA and has a wide range of potential applications.. Researchers at the Army's Institute for Collaborative Biotechnologies and the University of California Santa Barbara experimented with the Aedes aegypti mosquitoes, found in tropical, subtropical and temperate regions throughout the world
Gene Editing Could Render Mosquitos Infertile
18168U.S. Army DEVCOM Army Research Laboratory Public Affairs, U.S. Army, 2021-08-23 14:51:29.
Africa must not rest until Malaria rests: What is the role of emerging technologies?
18165R. Oronje, AFIDEP, 2021-08-20 14:42:16.
As we mark the World Mosquito Day today, it is a sad reminder that Malaria still kills hundreds of thousands of people every year, majority of these people in Africa. According to the World Health Organisation (WHO), Malaria killed 409,000 people in 2019, and 94% of these deaths were in Africa. For those who survive the disease, they have many horrifying tales to tell because many get Malaria every so often, especially for those living in Malaria endemic regions. I have many horrifying tales of my experience with Malaria because I grew up in the Malaria-endemic region of Western Kenya. One of these tales is when I passed out in school when I was in Primary-4 because I had refused to take the very bitter Quinine tablets. My Mum was called to take me to hospital and by the time she arrived, I was in “hallucination mode” because all I remember is seeing two Mums lifting me up; and the next time I woke up, I was in a nearby health facility. My parents still live in this region, which means I visit them often and so every time I visit Western Kenya without taking prophylaxis, I can be sure I will come back with Malaria. But this blog is not about my horrifying Malaria tales, so I will not delve much more into that. Although many people in sub-Saharan Africa have suffered from Malaria, many are not aware of ongoing efforts to develop and test new tools with potential to eliminate Malaria. In a recent study by the African Institute for Development Policy (AFIDEP) on the “Landscape and Political Economy Analysis of Emerging Health Technologies in Sub-Saharan Africa”, we found that apart from the researchers developing these new tools and their funding agencies, other stakeholders including journalists, civil society actors, and policymakers know little, if anything, about the ongoing research on emerging health technologies, including those technologies being developed with potential to eliminate Malaria.
The Complex Lives of Mosquitoes: The Key for Malaria Control
18216F. Okumu, ISGlobal, 2021-08-19 15:19:27.
Mosquitoes spread diseases to millions of people around the world, yet they remain poorly understood by most. Studying their biology and behaviours can help us combat, and eventually eliminate, dangerous diseases such as malaria and dengue fever.There are nearly 3,500 species of mosquitoes. About 400 belong to a family called Anopheles, and of these, only about 50-70 can actually transmit malaria to humans. In Africa, where the malaria burden is highest, the most important are Anopheles gambiae, Anopheles funestus, Anopheles arabiensis and Anopheles colluzzi. Often, only one or two of these dominate malaria transmission in any country. Effective malaria control can therefore be achieved by simply identifying, understanding and then targeting just the one or two dominant Anopheles species instead of trying to kill all mosquitoes.A female Anopheles lays about 500 eggs in her lifetime, usually in standing fresh waters, although some breed along rivers or in brackish waters. The eggs weigh just 4 micrograms each and float like little pontoons on the water surfaces
Attack of the Superweeds
18153H. C. Brown, New York Times, 2021-08-18 17:55:25.
If there’s a plant perfectly suited to outcompete the farmers, researchers and chemical companies that collectively define industrial American agriculture, it’s Palmer amaranth. This pigweed (a catchall term that includes some plants in the amaranth family) can re-root itself after being yanked from the ground. It can grow three inches a day. And it has evolved resistance to many of the most common weed killers, continuing to reproduce in what ought to be the worst of circumstances: A three-day-old, herbicide-injured seedling, for example, can expend its last bit of energy to produce seeds before it withers up and dies. Unchecked, Palmer amaranth can suppress soybean yields by nearly 80 percent and corn yields by about 90 percent. Nicolet was ultimately allowed to spray dicamba last summer because he purchased it before restrictions took effect. He used it this year too: The Trump administration issued new approvals for some formulations containing dicamba just a week before the presidential election. Still, Nicolet says the weed killer will eventually stop working on his land, another management tool rendered useless by the pigweed’s remarkable onslaught. Whether that day is 10 years in the future or three, he has no idea, but the Palmer amaranth continues to gain ground all the while. This summer, a handful of pigweeds sprouted in a field that had recently been sprayed. Nicolet couldn’t weed the 96 affected acres by hand, so he decided to let them grow. “It’s not really enough to hurt yield this year,” he said. “But you know, you have 100 weeds out there, the next year you’ll have a million.”
Mobilizing Mutant Mosquitoes to Fight Malaria
18227D. Mclaughlin and J. Recht, United Nations Foundation, 2021-08-18 15:49:29.
World Mosquito Day today marks the 1897 discovery by Sir Ronald Ross that female Anopheles mosquitoes spread malaria. Since that breakthrough, the world has fought this deadly disease through scientific research and new technology. While astounding progress has been made against the ancient disease, more than 400,000 people died from malaria in 2019, two-thirds of them children under 5, the vast majority in Africa.Existing malaria controls such as spraying insecticides indoors or sleeping beneath long-lasting insecticidal bed nets work by blocking mosquitoes from biting people and transmitting malaria. Such tools have helped halve malaria in many countries throughout sub-Saharan Africa. Yet this remarkable progress is in jeopardy as mosquitoes develop resistance to these insecticides. As the dangerous mosquito continues to adapt, health interventions must continue evolving to protect families from this disease and move us closer to a malaria-free world. Now, there is a promising new tool, seemingly ripped from the pages of a science fiction novel, to stop malaria’s spread: genetically modified mosquitoes.
Identifying Sites for Testing Modified Mosquitoes as a Strategy to Eradicate Malaria
18222A. Fell, UC Davis News, 2021-08-18 15:34:12.
In a newly published article in the journal Evolutionary Applications Professor Greg Lanzaro and his team at the Vector Genetics Laboratory, UC Davis School of Veterinary Medicine, set forth a framework for the selection of field sites in Africa best suited for testing genetically engineered mosquitoes (GEMs).“We followed earlier recommendations from the National Academy of Sciences and the World Health Organization that argued that a physical island would be a logical place to initiate early field trials of a GEM that uses gene drive technology,” Lanzaro said.n this paper, they establish a set of criteria including geographic and genetic isolation, biological complexity, island size, and topography and apply these criteria to a set of 22 potential island sites located off the coast of Africa. Their goal is to identify sites that maximize prospects for success, minimize risk, and serve as a fair, valid and convincing test of the efficacy and impacts of a GEM product intended for large-scale deployment in Africa.
Why Genes That Make Mosquitoes Glow Can Help Reduce Vector-Borne Disease
18143E. Ricciuti, Entomology Today, 2021-08-17 17:21:36.
Fireflies they are not, but glow they do. Not in the dark, to be sure, but mosquitoes genetically modified in the laboratory for an emerging approach to reducing the threat of vector-borne disease look like miniature neon signs when subjected to ultraviolet light. To produce genetically modified, or transgenic, mosquitoes, scientists stich together a construct of mosquito DNA that endows them with a trait that kills off females before they can reproduce, eventually suppressing the surrounding population. Two genes are inserted together into the modified DNA. One is a self-limiting device that prevents female mosquitoes from maturing to adults. The other is a marker that makes the mosquitoes that possess it glow under certain wavelengths of ultraviolet light, facilitating identification when they are collected in monitoring efforts. Scientists at North Carolina State University (NCSU) are trying to give that glow more pizzazz, according to a new study published in July in the Journal of Medical Entomology.
Genetic modification could be used to combat invasive crayfish
18086O. Rudgard, The Telegraph, 2021-08-15 17:34:40.
Genetically-modified crayfish carrying infertility genes could be used to tackle the problem of invasive crustaceans in British waterways. A technique being developed by scientists at the University of Edinburgh's Roslin Institute offers hope for conservationists trying to tackle the problem of American crayfish invading UK rivers. "Gene drive" science, which involves altering the genetics of individuals of a certain species to spread desirable traits through a population, has been mooted as a possible solution to malarial mosquitoes and, in the UK, to the problem of invasive grey squirrels, where it would be used to spread infertility. Scientists are now suggesting the same technique as a potential solution to the problem of signal crayfish, a US species introduced to the UK in the 1970s that now poses a serious threat to Britain's native white-clawed crayfish.

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