Gene Drive in the News

A curated collection of articles from the popular press

Mice Plague Eastern Australia in Record Numbers

17751
B. Nogrady,  The Scientist,  2021-07-12 13:50:17.
Just before Christmas last year, Julie Leven and her husband Des took their camper up to visit their son in northern New South Wales, Australia. Driving back at night to their home in Gilgandra, around 430 kilometers northwest of Sydney, they saw masses of white spots moving across the dark road surface. The spots, they soon realized, were mice. Once they reached their house, the Levens saw a scene of rodent devastation. Mice had invaded their home in such numbers that it was unlivable. The creatures had gnawed their way into the pantry and ruined all the food they could get into. Their droppings and pungent urine were spread from one end of the dwelling to the other, across soft furnishings and bedding. The rodents had even eaten the insulation around the engine wiring in two tractors and ruined their harvested hay bales.

Part of ‘master plan’: Researchers receive grant to fund research on malaria

17748
L. Huang,  The Daily Californian,  2021-07-11 13:33:25.
Early this month, The Marshall Lab at UC Berkeley received an $800,000 grant from the Bill and Melinda Gates Foundation to fund its research on genetics-based malaria mosquito control. The Marshall Lab is one of many teams playing a part in the Gates Foundation’s decades-long “master plan” to eradicate malaria, according to associate professor John Marshall, the project’s principal investigator. Based on data from the World Health Organization, malaria kills hundreds of thousands of people a year. The lab has focused on malaria prevention ever since it opened its doors in 2015, publishing work about mosquito intervention and control mechanisms related to genetic mathematical modeling. “If you have a drug to control malaria or a mosquito net, then how that is implemented on a continental scale is more than a problem of having the intervention itself — you need to think about the numbers involved,” Marshall said. Marshall compared mosquitoes to humans in that they have similar genetic makeups. He said some mosquito genes can be altered to either prevent disease transmission to humans or reduce rates of mosquito reproduction. Marshall’s team plans to apply its Mosquito Gene Drive Explorer, which simulates releases of genetically modified mosquitoes into habitats, to aid fellow researchers funded by the Gates Foundation. With the system, researchers can identify the efficacy of systems for reducing cases of malaria in order to pinpoint which characteristics of gene constructs can be prioritized to most efficiently suppress the disease.

Africa Turning to Gene Drive Technology for Malaria Elimination

17669
M. Hearty,  Science Africa,  2021-07-09 20:02:22.
With Africa accounting for nine out of ten malaria cases globally, the continent is turning to gene drive technology to control the disease. This is according to a decision made by African leaders at the 29th Summit of Heads of States and Governments of the African Union held in Addis Ababa. There are 3500 to 4000 mosquito species worldwide and 837 of the species are in Africa, with only 3 species transmitting malaria in sub-Saharan Africa. Speaking during a virtual conference by the African Union Development Agency (AUDA-NEPAD) , Dr Abdoulaye Diabate, Head of Medical Entomology and Parasitology at the Research Institute in health Sciences in Burkina Faso who presented on Gene Drive for Malaria Control and Elimination in Africa said that two options for genetic control of mosquito-borne infectious diseases identified were population suppression and population replacement. “Population suppression involves releasing of modified mosquitoes into the population, and this can cause transient or permanent suppression. With the population replacement method, modified mosquitoes released into the population can lead to the spread of a gene that blocks malaria transmission,” the Medical Entomologist stated.

A new tool in the global fight against malaria

17666
S. Laux,  Brighter World,  2021-07-08 19:56:20.
McMaster researchers with the Institute on Ethics & Policy for Innovation (IEPI) have played a key role in developing updated international guidelines that will inform research and development on genetically modified mosquitoes – an initiative that could significantly affect global efforts to eradicate mosquito-borne illnesses such as dengue fever, Zika virus and malaria. Released by the World Health Organization in late May, the guidelines describe best practices to ensure that the study of genetically modified mosquitoes is scientifically rigorous and meets essential standards of safety, effectiveness, accessibility and ethics. “The previous World Health Organization guidance for testing genetically modified mosquitoes was from 2014 – and since then, there have been multiple technological developments and considerable scientific progress,” explains Claudia Emerson, the director of IEPI and a professor of philosophy who, along with IEPI researchers Travis Ramsay and Aaron Roberts, developed the guidance’s chapter on ethical considerations. “Genetically modifying organisms isn’t new, at least not from an ethical or scientific perspective – but as the technology has developed over the years, especially with respect to mosquitoes, there has been a change in its perception and the receptivity to using it. It was important to update the guidance to reflect these changes.”

West African countries working together to develop framework to regulate genetically engineered mosquitos: Target Malaria

17663
Anonymous,  Global News,  2021-07-08 19:50:08.
Abdoulaye Diabaté, principal investigator for Target Malaria, says West African countries like Burkina Faso, Mali and Benin are working with the New Partnership for Africa’s Development (NEPAD) to develop a pan-West African framework to regulate gene drive mosquitos.

Marshall Lab receives Gates grant for genetics-based malaria mosquito control

17654
Berkeley Public Health,  Berkeley Public Health,  2021-07-08 19:33:19.
Berkeley Public Health Associate Professor John Marshall, PhD, and Assistant Project Scientist Héctor Sánchez, PhD, have received an $800,000 grant from the Bill & Melinda Gates Foundation to support their lab’s work in genetics-based malaria mosquito control. Malaria, the most devastating mosquito-borne disease, poses a major public health burden throughout much of the world. Novel genetics-based tools that can be shown to be safe and effective would be transformative in eliminating the disease and the suffering it causes. “Malaria continues to be exceptionally difficult to eliminate with currently-available tools,” said Marshall. “Insecticide-treated nets and antimalarial drugs have succeeded in reducing the African malaria burden by about a half, but their impact has stagnated in recent years and new tools are needed. There is now growing recognition that the most promising new tools for malaria elimination are vaccines and gene-edited mosquitoes.”

Fighting disease: How are genetically engineered mosquitoes regulated?

17652
A. Julie,  Global News,  2021-07-08 19:26:36.
Mosquitoes have long been associated with the spread of diseases like malaria, dengue fever and the Zika virus. But scientists around the world have been exploring the possibility that mosquitoes could also be key to slowing the spread of disease. By genetically altering the DNA of mosquitoes, scientists hope to prevent them from passing on pathogens to humans and, therefore, control the spread of vector-borne diseases. To some, it is an exciting opportunity that could open up new possibilities in the fight against endemic diseases. But the practice has also raised questions from some in the scientific and environmental communities about the impact on local ecosystems, and the ripple effects such modifications could have on the mosquito populations themselves.

Scientists develop new technology that gives greater control for managing malaria mosquitoes

17650
Keele University,  Phy Org,  2021-07-06 19:19:27.
Researchers including a Keele University scientist have engineered an innovative approach to disable highly powerful genetic devices that control harmful insect populations. Dr. Roberto Galizi from Keele's School of Life Sciences was part of a research team that previously developed gene drive technologies that proved highly effective in eliminating populations of mosquitoes in the laboratory, offering a powerful new strategy to prevent deadly vector-borne disease such as malaria. Gene drive elements inserted in the mosquito genome can rapidly spread genetic modifications, such as impairment of fertility, throughout the entire population target by biasing their genetic inheritance after mating with wild insects. The gene drive technologies show great potential for suppressing the mosquito species that transmit malaria with increased power compared to other methods, thanks to their capacity to self-spread through the population. However, this also makes it difficult to retain control of this technology once released. So to combat this, the researchers have now developed an innovative and highly effective technology that allows them to control and even reverse the effects of gene drives.

Gene Drive: The Technology and its Potentials for Biodiversity Conservatio

17611
Z. Bugnosen,  Science Speaks,  2021-07-01 14:43:19.
Gene drive is a gene editing tool that is rapidly advancing as scientists investigate further its potentials to address concerns related to agriculture, the environment, and even human health. To help the public understand it better, ISAAA and its network of Biotechnology Information Centers, in partnership with the Outreach Network for Gene Drive Research, launched the four-part Gene Drive Webinar Series. Gene drive experts were invited to talk about the technology and how it can help conserve biodiversity during the first two sessions of the series.

Could editing the genomes of bats prevent future coronavirus pandemics? Two scientists think it’s worth a try

17602
E. C. Hayden,  STAT,  2021-07-01 14:21:06.
Amid the devastating Covid-19 pandemic, two researchers are proposing a drastic way to stop future pandemics: using a technology called a gene drive to rewrite the DNA of bats to prevent them from becoming infected with coronaviruses. The scientists aim to block spillover events, in which viruses jump from infected bats to humans — one suspected source of the coronavirus that causes Covid. Spillover events are thought to have sparked other coronavirus outbreaks as well, including SARS-1 in the early 2000s and Middle East respiratory syndrome (MERS). This appears to be the first time that scientists have proposed using the still-nascent gene drive technology to stop outbreaks by rendering bats immune to coronaviruses, though other teams are investigating its use to stop mosquitoes and mice from spreading malaria and

The (Losing) Battle Against Mosquitoes In Texas

17599
J. Clayton,  Texas Public Radio,  2021-06-26 14:13:20.
Jerry Clayton: Mosquitoes are a fact of life in Texas, and the battle against the pesky biting insects is never ending. But there are some new weapons on the horizon. Zach Adleman is an associate professor of entomology at Texas A&M University. He joins us today. Thanks for being here, Zach.

UC San Diego scientists develop the first CRISPR/Cas9-based gene drive in plants

17563
M. Aguilera,  UC San Diego News Center,  2021-06-25 14:55:55.
With a goal of breeding resilient crops that are better able to withstand drought and disease, University of California San Diego scientists have developed the first CRISPR-Cas9-based gene drive in plants. While gene drive technology has been developed in insects to help stop the spread of vector-borne diseases such as malaria, researchers in Professor Yunde Zhao's lab, along with colleagues at the Salk Institute for Biological Studies, demonstrated the successful design of a CRISPR-Cas9-based gene drive that cuts and copies genetic elements in Arabidopsis plants. Breaking from the traditional inheritance rules that dictate that offspring acquire genetic materials equally from each parent (Mendelian genetics), the new research uses CRISPR-Cas9 editing to transmit specific, targeted traits from a single parent in subsequent generations. Such genetic engineering could be used in agriculture to help plants defend against diseases to grow more productive crops. The technology also could help fortify plants against the impacts of climate change such as increased drought conditions in a warming world.

Using gene drives to control malaria

17594
A. Fell,  Daily News,  2021-06-25 14:08:33.
A group of UC scientists led by Greg Lanzaro, professor of pathology, microbiology and immunology in the UC Davis School of Veterinary Medicine, recently completed an analysis of a strategy aimed at eliminating malaria from Africa using genetically engineered mosquitoes. Lanzaro’s lab is part of the UC Irvine Malaria Initiative. The laboratories of Anthony James at UC Irvine and Ethan Bier at UC San Diego engineered mosquitoes with synthetic genes that render them incapable of transmitting the malaria parasite and coupled these genes with a CRISPR-Cas9 gene drive to promote their spread into malaria vector populations in Africa. The idea is to ‘drive’ the new malaria-resistance genes into the mosquito population at a much higher rate than could occur naturally.

Why Flight Testing is an Important Step in Sterile Insect Technique

17547
E. Ricciuti,  Entomology Today,  2021-06-23 13:38:02.
Releasing hordes of sterilized male insects for unfruitful mating with females—a process known as the sterile insect technique (SIT)—is a proven process for combating many species of pests. Its success depends on sterile males dispersing widely enough to outcompete their wild counterparts and mate with enough females to reduce reproduction of a population. SIT has potential against the navel orangeworm (Amyelois transitella), a moth whose larvae decimates nut crops and, as its name implies, citrus, but scientists still are trying to figure out whether the idea will fly—literally. Researchers in California, where the moth’s larvae wreak havoc on almonds, walnuts, and pistachios, have conducted laboratory experimentsthat have revealed a potential glitch in dispersal ability that needs to be addressed before SIT can be effectively deployed against it. Their analysis is described in a report published this month in the Journal of Economic Entomology. The researchers, led by University of California-Riverside Ph.D. student Joshua Reger, examined the impact on the orangeworm of the same mass-rearing, sterilization, and transportation methods successfully used to combat the pink bollworm (Pectinophora gossypiella), a cotton pest. According to the new study, what works on the bollworm is iffy for the orangeworm, because the modus operandi seems to negatively impact flight performance, the key to dispersal. The researchers concluded that “the data from the current study demonstrate a substantial reduction in flight capacity in navel orangeworm, particularly males reared under the current conditions intended for use in a SIT program.”

Manipulated Mosquitoes Cut Dengue by 77%

17513
T. Hayes,  Healthcare Packaging,  2021-06-22 14:34:21.
Dengue, a mosquito-borne viral disease, wasn’t that common 50 years ago. In fact, only nine countries had severe outbreaks. But since then, it’s been on a steady incline to the point that there are now 400 million infections a year that contribute to 22,000 deaths. Thankfully, we have the World Mosquito Programme, a group that’s fighting the tropical mosquito disease head-on with genetically modified mosquitoes. The insects are infected with Wolbachia, a bacteria that inhibits viruses’ ability to live inside the insects, and also controls reproduction so that offspring are also infected with the bacteria. The result is a new population of insects that can’t transmit viruses like dengue, yellow fever and Zika. The study in Indonesia included 8,000 people, and concluded with protective efficacy of 77.1%.

Why Are Gates and Pentagon Releasing GMO Mosquitoes in Florida Keys?

17516
F. W. Engdahl,  LewRockwell.com,  2021-06-21 14:40:32.
On April 30 the Florida Keys Mosquito Control District and the Oxitec biotechnology company announced they will begin release of what will ultimately be some 750 million genetically manipulated or gene-edited Aedes Aegypti mosquitos using CRSPR gene editing technology. The Aedes Aegypti makes up only about 4% of the mosquito population in the Keys. The release is bitterly opposed by residents and environmental groups who demanded a referendum in last year’s election ballot, but which the Mosquito Control Board refused, curiously. Oxitec and the Board claim the release is to kill off the presence of the Aedes Aegypti mosquito which is believed to carry dengue fever, Zika and other diseases. The project, which sounds positive in the press statements, is alarming in many respects. First, the refusal to allow a citizen vote on the controversial GMO release. Second, there exists no cost-benefit analysis of the risks versus benefits of releasing millions of mosquitoes whose genetic traits are mutating in often unpredictable ways. Is it worth the risk that an ever more robust variety of mosquito will mutate from the project? No one can say. Traditional mosquito control techniques have worked well until now.

Dengue fever: Upstaged but not outmatched by COVID-19

17490
C. E. Baclig,  INQUIRER.NET,  2021-06-17 15:17:30.
Science has made gains in the war on dengue and other diseases that mosquitoes carry, like malaria.One of these is the World Mosquito Program (WMP), a non-profit initiative that aims to protect the global community from mosquito-borne viral diseases, by deploying a natural bacteria, called Wolbachia. On its website, WMP said its scientists had discovered that Aedis aegypti mosquitoes carry Wolbachia, a bacteria which competes with viruses like dengue, zika, chikungunya, and the virus that causes yellow fever. Wolbachia, WMP said, was found to make it difficult for viruses to reproduce inside mosquitoes. Mosquitoes carrying Wolbachia, WPS said, “are much less likely to spread viruses from person to person.” Wolbachia is found in 60 percent of insects but is not normally carried by Aedis aegypti mosquitoes. So scientists injected the bacteria into mosquito eggs. Once these hatches and send off grown mosquitoes, they are released to breed with local mosquito populations.

Genetically Modified Mosquitoes; ‘Truth Like Oil’ Novel

17487
Here and Now,  WBUR,  2021-06-16 15:10:42.
Florida Keys officials are working on a unique experiment: hatching thousands of genetically modified mosquitos and releasing them. Andrea Leal of the Florida Keys Mosquito Control District explains.

Selfish DNA: how new gene technology could stop the advance of mice

17450
M. McMillan,  Tentenfield Star,  2021-06-15 17:20:08.
It used to be that seeing a mouse in the house was a rare occurrence. Now, it's rarely a day that goes by where we aren't seeing or hearing the little vermin. Current methods of baiting and trapping are struggling to control the plague of mice spreading across regional Australia. But a $1.8 million investment from the NSW government might soon give us a new weapon in the war. The government is investing in research into the use of gene drives, or "selfish DNA" - a genetic tool that can help us to control pests. How? Well, to understand gene drives we first need to understand the normal way in which genes are inherited. Mice, like humans, have two copies of each gene, one inherited from their mother and one from their father. We call these copies alleles, and they can be exactly the same or slightly different from each other. Normally, there is a 50/50 chance as to which allele will be passed on to any offspring. If one allele carries some sort of mutation, there is a 50 per cent chance that it will be passed on.

Dengue Infections Can Be Sharply Reduced With Wolbachia Bacteria

17453
J. Stone,  Medscape,  2021-06-14 17:25:12.
A modestly titled new study released in the New England Journal of Medicine belies the extraordinary 77% protective efficacy reported for preventing dengue infections with Wolbachia-infected Aedes aegypti mosquitoes. A cluster-randomized clinical trial, the AWED ("Applying Wolbachia to Eliminate Dengue") study was conducted in Yogyakarta, Indonesia and led by professors Adi Utarini, MD, PhD, of Gadjah Mada University and Cameron Simmons, PhD, the World Mosquito Program's Oceana director, in partnership with the Tahija Foundation and Monash University.

« First ‹ Previous 1 16 24 25 26 27 28 36 52 Next › Last »