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Can parasite ‘birth control’ fight malaria’s spread?

(Credit: hdptcar/Flickr)

Researchers have identified a complex of proteins crucial for the maturation of the male form—or gametocyte—of the parasite responsible for malaria.

Developing methods to target this complex with antimalarial drugs could lead to a new weapon in the fight against the disease.

Disrupting the two genes involved in the preservation of RNA molecules inhibits the ability of the male form of the malaria parasite to mature and move from human blood into mosquitoes, interrupting a key stage in the parasite’s life-cycle and cutting off an important step in the spread of the disease.

“Malaria continues to be an incredibly damaging global health problem, killing hundreds of thousands each year,” says Scott Lindner, assistant professor of biochemistry and molecular biology at Penn State and the leader of the research team.

A parasite’s life cycle

“Malaria is transmitted when a mosquito takes a blood meal from an infected individual and ingests male and female Plasmodium gametocytes, the sexual stage of the parasite’s life-cycle, which then mature in the mosquito. The gametocytes mate in the gut of the mosquito, and ultimately form sporozoites that can then be transmitted to other individuals,” Lindner says.

“We were interested in identifying important molecular processes in the maturation of the sexual stage of the malaria parasite, which is required for transmission to mosquitoes, because targeting transmission events has been identified as a potentially effective way to fight the disease.”

In humans, malaria parasites first take up residence in the liver, where they grow and multiply, eventually invading red-blood cells when symptoms appear. Most of these blood stage parasites continue to multiply asexually, killing red-blood cells and spreading to others.

Some, however, produce male and female gametocytes. The gametocytes begin their maturation process in the blood, producing messenger-RNA (mRNA) molecules that code for proteins they need to mature. The proteins are not actually made until the gametocytes are transmitted into a mosquito.

“The immature gametocytes in the blood must preserve and stabilize the mRNA that they will use to fully mature once they are in the gut of the mosquito,” says first author Kevin J. Hart, a postdoctoral researcher.

“We were interested in understanding the role of a complex of proteins known from other organisms to facilitate the degradation of mRNA by removing the protective poly(A)tail of mRNA.”

Stemming the spread

The CAF1/CCR4/NOT complex of proteins contains two proteins, CAF1 and CCR4, that act as “deadenylases,” enzymes that can remove poly(A) tails from mRNA reducing mRNA stability. When the researchers experimentally disrupted the genes for these proteins in malaria parasites, they expected that mRNA stability in gametocytes might increase; however, they saw the exact opposite.

“We were incredibly surprised to see that both CAF1 and CCR4 seemed to play a role in mRNA preservation in the gametocytes,” says Hart.

“When we disrupted the function of these proteins, by completely removing or creating non-functional versions of the CCR4 or CAF1 genes, mRNA levels decreased and the ability of the gametocytes to mature and infect mosquitoes was inhibited.”

Male gametocytes form in synchronized waves in the blood and researchers can observe their maturation under a microscope. The researchers could therefore directly observe the disruption of the waves of formation and development, but they believe that the CAF1/CCR4/NOT complex is likely involved in maturation of both male and female gametocytes, which could make targeting this complex even more effective against malaria.

“If we can develop a safe way to target this complex with antimalarial drugs it could be an effective new tool that inhibits transmission of the disease,” says Lindner.

“It would act as a kind of birth control for the malaria parasite, limiting the ability of the parasite’s sexual stage to reproduce in the mosquito, and as a consequence, reducing the spread of the disease.”

The paper appears in the journal PLOS Pathogens. Additional researchers came from Penn State and the University of South Florida.

Source: Penn State

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Microscopes offer peek at mosquito virus on the move

Researchers have developed a way to see how a virus moves within a mosquito’s body, which could lead to the prevention of mosquitoes transmitting diseases.

“Previously, the common understanding was that when a mosquito has picked up a virus, it first needs some time to build up inside the midgut, or stomach, before infecting other tissues in the mosquito,” says Alexander Franz, an assistant professor in the veterinary pathobiology department at the University of Missouri and corresponding author of the paper, which appears in Viruses.

“However, our observations show that this process occurs at a much faster pace; in fact, there is only a narrow window of 32 to 48 hours between the initial infection and the virus leaving the mosquito’s stomach. For this field of research, that revelation is eye opening.”

Inside look

Researchers observed a mosquito infected with the chikungunya virus, which originated in Africa and was first found in the Americas in 2013. There is no vaccine to prevent or treat the virus, and while most common symptoms include fever and joint pain, they can be severe and disabling.

The researchers used three separate electron microscopes to view the virus traveling through the mosquito, beginning with its midgut, or stomach.

The first two microscopes provided different two-dimensional views of a single layer of tissue in the mosquito’s stomach. The third, a focused ion beam electron microscope, allowed researchers to see multiple layers of tissue.

Bug off

“We’re now visualizing a real virus with a three-dimensional model, at scale,” says coauthor DeAna Grant, a researcher with the Electron Microscopy Core Facility. “We can take a three-dimensional image showing the inside of a mosquito’s stomach and say that this dot is a virus particle; there is no guessing to what that dot is.

“In addition, with this technology we were able to track, in three-dimension, the virus traveling through the mosquito at 24, 32, and 48 hour intervals, and within 48 hours or less, we could see the virus particles leaving the mosquito’s midgut.”

Researchers say they hope to one day inhibit the genes involved with the release of the virus from within the mosquito’s stomach to prevent future transmission of mosquito-borne diseases.

The National Institutes of Health-National Institute of Allergy and Infectious Diseases and the University of Missouri award for “Excellence in Electron Microscopy” funded the work. The content is solely the responsibility of the authors and does not necessarily represent the official views of the funding agencies.

Source: University of Missouri

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