An investigation into the mysterious inner workings of the malaria parasite has revealed that it survives and proliferates in the human bloodstream thanks in part to a single, crucial chemical that the parasite produces internally.
Ellen Yeh, MD, PhD, a pathologist from Stanford Medical School, and UCSF biochemist Joseph DeRisi, PhD, have made a fundamental discovery about malaria parasites that gives new hope for future drugs and vaccines.
According to scientists at the University of California, San Francisco (UCSF) and Stanford Medical School, reporting today in the journal PLoS Biology, this insight immediately provides a powerful new tool for discovering and designing drugs to treat malaria, which infects hundreds of millions of people around the world each year and claims about a million lives – mostly children.
Ellen Yeh, MD, PhD, a pathologist from Stanford Medical School, and UCSF biochemist Joseph DeRisi, PhD, have made a fundamental discovery about malaria parasites that gives new hope for future drugs and vaccines.
The work also gives researchers a hypothetical new vaccine to test: a weakened version of the parasite, which the scientists grew in the test tube by supplying it with the chemical it needed to live while at the same time treating it with drugs to eliminate its ability to produce that chemical on its own.
“It’s as if we designed a ticking time bomb inside the parasite that’s ready to go off – and when it does, the parasite dies,” said Joseph DeRisi, PhD, a Howard Hughes Medical Institute investigator at UCSF and vice chair of the Department of Biochemistry and Biophysics, who led the work.
In theory, health officials could inoculate people living in areas where malaria is common with a similar “attenuated” form of the parasite. If it works, the modified parasite would not make those people sick but would give them resistance to the pathogen if they were later exposed to it – although that approach would need to be tested in clinical trials to determine whether it would work.
“It is an intriguing possibility that must be explored,” said Ellen Yeh, MD, PhD, the co-author of the study. Yeh is a postdoctoral researcher at UCSF and also on the faculty of the Pathology Department at Stanford University.
Slow, Brutish and Incomplete: A Short History of Malaria Control
Few diseases in history have been as widely spread, poorly understood and fruitlessly fought as malaria. The name itself evokes centuries of misunderstanding – a misnomer that comes from an old Italian construction that means “bad air.” People once thought it was caused by swamp gasses, since it seemed to be prevalent in wet, marshy places.
Progress Fighting Malaria:
A Timeline
Since the dawn of modern microbiology research, beginning in the 19th century, scientists have known that the disease is actually caused by a microscopic parasite called Plasmodium, which is spread by mosquitoes common to wet, marshy places. Two of the earliest Nobel prizes went to the scientists who made these basic discoveries, and at the dawn of the 20th century, the situation had never seemed brighter. The possibility that malaria would be eliminated or eradicated was exciting and real then. History proved otherwise.
Full malaria eradication was a major public health effort in the first half of the 20th century and was intensively pursued after World War II. Since that effort was launched, 108 countries have eliminated malaria from within their borders, with another 39 countries en route to that goal. Despite those efforts, malaria remains a major cause of illness in many parts of the world. Today almost half the world’s population lives in places where the disease is common.
According to the Centers for Disease Control and Prevention, about 1,500 cases of malaria still occur in the United States each year, but most are imported when people travel abroad. The real problem exists in several Asian and sub-Saharan African countries, where malaria is both a major leading cause of death and a significant drain on the economy. The World Health Organization estimates that the disease eats up nearly half of all public health expenditures and measurably lowers the gross domestic product of countries where it is common.
Several new approaches to controlling malaria have become available in the last few decades, like insecticide-treated bed nets, but there remains a dire need for new drugs and for effective vaccines to control it.
Hope for Vaccine Lies in the Parasite Itself
The Plasmodium parasite leads a strange and complicated life, crisscrossing between two “host” species – humans and mosquitoes. Within the short span of just a few weeks, the organism cycles through a half dozen radically different sizes and shapes and alternatively makes its home in the human liver, a person’s bloodstream, the insect stomach, and a mosquito’s spit.
For years scientists knew that the most fruitful way to fight the parasite would be to target the form in which it exists in the bloodstream, since that is where the majority of clinical symptoms occur. Existing drugs, like quinine and artemisinin, both target the parasite in the blood.
About 15 years ago, scientists discovered a potential new source of drug targets in a tiny, factory-like enveloped organelle called an apicoplast that exists within the parasite. It was unlike anything found normally in the human body, which suggested that drugs designed to interfere with it might kill the parasite while essentially leaving people unharmed.
“It was a very exciting discovery,” DeRisi said, “but in the years since, the prospect of finding drugs to target it has been frustrating and disappointing in many respects.”
In the last decade, the evolutionary history of this strange organelle has unfolded. The apicoplast is the strange remnant of collisions between competing cells far back in evolutionary history. Scientists reason that through the course of evolution, the apicoplast arose from its origin as a standalone bacterium into its current form through a series of at least two endosymbiotic events, in which one cell engulfs and permanently acquires genetic material and cellular machinery of another for its own benefit.
The discovery of this strange organelle in modern Plasmodium immediately suggested that there might be ways to target it with new drugs. However, even after extensive research revealed the genes of this apicoplast, efforts to raise new drugs against it were mostly fruitless – largely because nobody knew what the organelle actually did while the parasite was inside the human bloodstream.
Now DeRisi and Yeh have shown that the sole essential function of the apicoplast while the parasite is in the blood is to produce a single chemical known as isopentenyl pyrophosphate (IPP), a necessary building block the parasite uses to construct a variety of other molecules.
They discovered this by growing samples of Plasmodium falciparum within red blood cells in the test tube. If they treated the parasite with antibiotic drugs that kill the apicoplast, the parasites would all die. If they fed the parasites IPP at the same time, they lived – even though the parasites lost the organelle completely over time.
The work provides a new tool for probing the basic biology of the Plasmodium parasite, and it also suggests a new way of discovering promising new drugs to fight malaria. While many previous drug-screening efforts have identified multitudes of compounds that appear to inhibit growth of the parasites, most are without a known target within the parasites. Knowing the target of a drug greatly enables the necessary process of medicinal chemistry, in which the compound is optimized with respect to the target. Now, DeRisi and Yeh’s discovery has provided a simple tool to determine whether any particular drug candidate targets the apicoplast.
The attenuated form of the parasite also provides an intriguing hypothetical vaccine candidate – and one that would be relatively cheap to produce, DeRisi said. However, he cautioned, the history of malaria control is filled with failed efforts, and several past vaccines have fallen short. Only time and clinical trials will tell if this is a viable solution to the problem.
“This parasite has clearly evolved to be an immune system escape artist,” DeRisi said. “It’s no surprise that the simple approaches have not worked.”
The article, “Chemical Rescue of Malaria Parasites Lacking an Apicoplast Defines Organelle Function in Blood-stage P. falciparum” by Ellen Yeh and Joseph L. DeRisi appears in the August 30, 2011 issue of the journal PLoS Biology. After 5:00 p.m. ET on 8/30/2011, the article will be available at http://dx.doi.org/10.1371/journal.pbio.1001138
This work was funded by the Howard Hughes Medical Institute.
UCSF is a leading university dedicated to promoting health worldwide through advanced biomedical research, graduate-level education in the life sciences and health professions, and excellence in patient care.
Photo by Jason Bardi
Slideshow by Kevin Eisenmann
Showing posts with label Rotarians Against Malaria. Show all posts
Showing posts with label Rotarians Against Malaria. Show all posts
Monday, September 5, 2011
Monday, July 18, 2011
Mosquito Subspecies Presents Challenge in Fighting Malaria
latimes.com/news/science/la-he-malaria-mosquito-20110204,0,3125160.story
Source: latimes.com
Mosquito subspecies presents challenge in fighting malaria
Efforts to wipe out the disease have focused on indoor mosquitoes, but a newly discovered type that's more susceptible to the parasite lives outdoors, where it's harder to battle.
By Amina Khan, Los Angeles Times
February 4, 2011
Researchers have discovered a previously unknown subspecies of mosquito in West Africa that is highly susceptible to the malaria parasite and whose existence may stymie efforts to eradicate the deadly disease.
Unlike the indoor-dwelling mosquitoes that are the usual targets of malaria eradication efforts, members of the newly described subgroup of the species Anopheles gambiae live outdoors, which means they're more difficult to kill, according to the study published online Thursday in the journal Science.
"We've got egg on our face," said William Black, a medical entomologist at Colorado State University who was not involved in the study. "We've been working with this mosquito for so long … and right under our noses, here's this other form of mosquito," he said — one that could force researchers "to start thinking about what's going on outside of those huts."
Malaria is an incurable blood disease caused by parasites in the genus Plasmodium. Mosquitoes spread the parasite by drawing blood from infected humans, becoming carriers themselves and then transmitting the parasite to other humans they bite.
Malaria victims suffer headaches, high fever, chills, vomiting, anemia and sometimes death. There are about 250 million cases and nearly 1 million deaths each year, according to the World Health Organization.
Anopheles gambiae is thought to be the most significant malaria transmitter in Africa, and it has resisted repeated efforts to wipe it out, said Kenneth Vernick, a vector geneticist at the Pasteur Institute in Paris who co-wrote the study. Malaria control projects going back to the 1970s have apparently failed because they used tactics such as indoor sprays and chemically treated bed netting that only targeted mosquitoes inside human homes.
One of the reasons for focusing on indoor insects "is that people imagine that mosquitoes that are in proximity to people might be the most epidemiologically important to transmit malaria," Vernick said. But there's another, less scientific reason as well, he added: "Because it's easy."
Outdoor mosquitoes, on the other hand, are notoriously difficult to kill, let alone capture to study in experiments. Without the benefit of walls and a roof, Vernick said, "you don't have a defined space to spray-bomb and catch them and have them fall on a sheet."
Instead of chasing after the adult insects, the researchers decided to search for them in the larval stage, when they're easier to capture. Mosquitoes breed close to human habitations in puddles of standing water that collects in tire-tracks or hoof prints, for example. In West Africa, standing bodies of water are hard to come by, so all types of mosquitoes would likely be forced to use common puddles to hatch their young.
The researchers traveled across Burkina Faso, collecting larvae from puddles around villages and growing thousands of mosquitoes over a four-year period. They genetically analyzed the young and found that only 43% of the larvae in the puddles were the indoor variety — meaning that 57% were not.
When the researchers fed the mosquitoes blood from humans who had malaria, 58% of the outdoor mosquitoes became infected with the parasite, compared with 35% of the indoor-resting ones.
Now scientists need to capture adult outdoor mosquitoes and study their feeding habits so they can determine whether the insects are a significant malaria threat, Black said. If so, he concluded, "it means we're going to have to change a lot of our control tactics."
amina.khan@latimes.com
Copyright © 2011, Los Angeles Times
Source: latimes.com
Mosquito subspecies presents challenge in fighting malaria
Efforts to wipe out the disease have focused on indoor mosquitoes, but a newly discovered type that's more susceptible to the parasite lives outdoors, where it's harder to battle.
By Amina Khan, Los Angeles Times
February 4, 2011
Researchers have discovered a previously unknown subspecies of mosquito in West Africa that is highly susceptible to the malaria parasite and whose existence may stymie efforts to eradicate the deadly disease.
Unlike the indoor-dwelling mosquitoes that are the usual targets of malaria eradication efforts, members of the newly described subgroup of the species Anopheles gambiae live outdoors, which means they're more difficult to kill, according to the study published online Thursday in the journal Science.
"We've got egg on our face," said William Black, a medical entomologist at Colorado State University who was not involved in the study. "We've been working with this mosquito for so long … and right under our noses, here's this other form of mosquito," he said — one that could force researchers "to start thinking about what's going on outside of those huts."
Malaria is an incurable blood disease caused by parasites in the genus Plasmodium. Mosquitoes spread the parasite by drawing blood from infected humans, becoming carriers themselves and then transmitting the parasite to other humans they bite.
Malaria victims suffer headaches, high fever, chills, vomiting, anemia and sometimes death. There are about 250 million cases and nearly 1 million deaths each year, according to the World Health Organization.
Anopheles gambiae is thought to be the most significant malaria transmitter in Africa, and it has resisted repeated efforts to wipe it out, said Kenneth Vernick, a vector geneticist at the Pasteur Institute in Paris who co-wrote the study. Malaria control projects going back to the 1970s have apparently failed because they used tactics such as indoor sprays and chemically treated bed netting that only targeted mosquitoes inside human homes.
One of the reasons for focusing on indoor insects "is that people imagine that mosquitoes that are in proximity to people might be the most epidemiologically important to transmit malaria," Vernick said. But there's another, less scientific reason as well, he added: "Because it's easy."
Outdoor mosquitoes, on the other hand, are notoriously difficult to kill, let alone capture to study in experiments. Without the benefit of walls and a roof, Vernick said, "you don't have a defined space to spray-bomb and catch them and have them fall on a sheet."
Instead of chasing after the adult insects, the researchers decided to search for them in the larval stage, when they're easier to capture. Mosquitoes breed close to human habitations in puddles of standing water that collects in tire-tracks or hoof prints, for example. In West Africa, standing bodies of water are hard to come by, so all types of mosquitoes would likely be forced to use common puddles to hatch their young.
The researchers traveled across Burkina Faso, collecting larvae from puddles around villages and growing thousands of mosquitoes over a four-year period. They genetically analyzed the young and found that only 43% of the larvae in the puddles were the indoor variety — meaning that 57% were not.
When the researchers fed the mosquitoes blood from humans who had malaria, 58% of the outdoor mosquitoes became infected with the parasite, compared with 35% of the indoor-resting ones.
Now scientists need to capture adult outdoor mosquitoes and study their feeding habits so they can determine whether the insects are a significant malaria threat, Black said. If so, he concluded, "it means we're going to have to change a lot of our control tactics."
amina.khan@latimes.com
Copyright © 2011, Los Angeles Times
Unique Anti-malarial Gets a Foothold
Smell of stinky feet just what malaria doctor ordered
By Marni Jameson, Orlando Sentinel
July 14, 2011.
Want to fend off mosquitoes and ultimately malaria? Wash your feet, or set out stinky sock traps.
Turns out, the smellier your feet, the more mosquitoes — which spread malaria — like them and you. Such was the discovery made by brave Dutch scientist Bart Knols, who, in the interest of us all, stood naked in a dark, mosquito-filled room to find out which parts of him mosquitoes found most edible.
Hands down it was his feet. And the more odorous they were, the more mosquitoes liked them.
Fast forward 15 years, and a new swarm of scientists have taken the funky-foot finding a step further. They are using foot odor to help control malaria.
Dr. Fredros Okuma, a researcher for Tanzania's Ifakara Health Institute, has replicated the odor — a fragrant blend of eight chemicals — and has put it in traps that lure mosquitoes and poison them. The traps were four times more attractive to mosquitoes than a human volunteer.
The simple solution appears so promising that The Bill and Melinda Gates Foundation has awarded two grants totaling $865,000 to Okuma for research on how the traps can be made affordable and used to help prevent the spread of disease in Africa.
By Marni Jameson, Orlando Sentinel
July 14, 2011.
Want to fend off mosquitoes and ultimately malaria? Wash your feet, or set out stinky sock traps.
Turns out, the smellier your feet, the more mosquitoes — which spread malaria — like them and you. Such was the discovery made by brave Dutch scientist Bart Knols, who, in the interest of us all, stood naked in a dark, mosquito-filled room to find out which parts of him mosquitoes found most edible.
Hands down it was his feet. And the more odorous they were, the more mosquitoes liked them.
Fast forward 15 years, and a new swarm of scientists have taken the funky-foot finding a step further. They are using foot odor to help control malaria.
Dr. Fredros Okuma, a researcher for Tanzania's Ifakara Health Institute, has replicated the odor — a fragrant blend of eight chemicals — and has put it in traps that lure mosquitoes and poison them. The traps were four times more attractive to mosquitoes than a human volunteer.
The simple solution appears so promising that The Bill and Melinda Gates Foundation has awarded two grants totaling $865,000 to Okuma for research on how the traps can be made affordable and used to help prevent the spread of disease in Africa.
Headlice Treatment Answer to Malaria?
Head lice drug may stem spread of malaria
By Daniela Hernandez, Los Angeles Times
July 16, 2011
U.S. researchers in Senegal have found that ivermectin helps kill off disease-carrying mosquitoes that feed from people with the drug in their system.
The drug, ivermectin, has been used in Africa for more than 15 years to treat river blindness, a parasitic disease that often leaves its victims blind and is common in the same regions where malaria is contracted.
Researchers have hit upon a potential new tool to fight the spread of malaria — a drug commonly used to treat head lice and heartworm.
The Colorado State University scientists made the discovery while in Senegal during malaria season in August 2008 and August 2009.
The drug, ivermectin, has been used in Africa for more than 15 years to treat river blindness, a parasitic disease that often leaves its victims blind and is common in the same regions where malaria is contracted. With the assistance of the Senegalese Ministry of Health, the team traveled to three villages where people were receiving ivermectin and collected mosquitoes from inside huts before and two weeks after they had been treated with a single dose of the drug.
The scientists reported in the July issue of the American Journal of Tropical Medicine and Hygiene that the number of malaria-carrying mosquitoes fell by 80% two weeks after the residents had received ivermectin. In untreated villages, the percentage of malaria-laden mosquitoes jumped more than twofold during that same period.
Ivermectin paralyzes mosquitoes if they feed from a person who has been treated with the medication, killing the bloodsuckers before they can infect their next victim. As long as it's in the bloodstream, the drug acts as a 24/7 insecticide that targets mosquitoes that manage to bite.
"There is reason for cautious optimism," commented David Sullivan, a microbiologist at the Johns Hopkins Bloomberg School of Public Health who was not involved in the study. However, he added that the results will need to be repeated to confirm that the drug is an effective tool to control malaria, which kills approximately 1 million people each year, many of them children.
Ivermectin is a particularly attractive anti-malaria strategy because much of the infrastructure to get the drug to affected areas is already in place, experts said.
One complication is that it is typically not given to children younger than 5, which might give mosquitoes "a refugee population in which to hide," said Tom Unnasch, a microbiologist at the University of South Florida who also was not involved in the study.
The study's lead author, Brian Foy, a microbiologist at Colorado State University, said he and his team are seeking funding to study whether monthly administration of the drug could have longer-term effects and to show that cases of malaria — not just numbers of disease-carrying mosquitoes — decline with the treatment.
"We need bigger and better studies," he said.
daniela.hernandez@latimes.com
Source and Copyright © 2011, Los Angeles Times
By Daniela Hernandez, Los Angeles Times
July 16, 2011
U.S. researchers in Senegal have found that ivermectin helps kill off disease-carrying mosquitoes that feed from people with the drug in their system.
The drug, ivermectin, has been used in Africa for more than 15 years to treat river blindness, a parasitic disease that often leaves its victims blind and is common in the same regions where malaria is contracted.
Researchers have hit upon a potential new tool to fight the spread of malaria — a drug commonly used to treat head lice and heartworm.
The Colorado State University scientists made the discovery while in Senegal during malaria season in August 2008 and August 2009.
The drug, ivermectin, has been used in Africa for more than 15 years to treat river blindness, a parasitic disease that often leaves its victims blind and is common in the same regions where malaria is contracted. With the assistance of the Senegalese Ministry of Health, the team traveled to three villages where people were receiving ivermectin and collected mosquitoes from inside huts before and two weeks after they had been treated with a single dose of the drug.
The scientists reported in the July issue of the American Journal of Tropical Medicine and Hygiene that the number of malaria-carrying mosquitoes fell by 80% two weeks after the residents had received ivermectin. In untreated villages, the percentage of malaria-laden mosquitoes jumped more than twofold during that same period.
Ivermectin paralyzes mosquitoes if they feed from a person who has been treated with the medication, killing the bloodsuckers before they can infect their next victim. As long as it's in the bloodstream, the drug acts as a 24/7 insecticide that targets mosquitoes that manage to bite.
"There is reason for cautious optimism," commented David Sullivan, a microbiologist at the Johns Hopkins Bloomberg School of Public Health who was not involved in the study. However, he added that the results will need to be repeated to confirm that the drug is an effective tool to control malaria, which kills approximately 1 million people each year, many of them children.
Ivermectin is a particularly attractive anti-malaria strategy because much of the infrastructure to get the drug to affected areas is already in place, experts said.
One complication is that it is typically not given to children younger than 5, which might give mosquitoes "a refugee population in which to hide," said Tom Unnasch, a microbiologist at the University of South Florida who also was not involved in the study.
The study's lead author, Brian Foy, a microbiologist at Colorado State University, said he and his team are seeking funding to study whether monthly administration of the drug could have longer-term effects and to show that cases of malaria — not just numbers of disease-carrying mosquitoes — decline with the treatment.
"We need bigger and better studies," he said.
daniela.hernandez@latimes.com
Source and Copyright © 2011, Los Angeles Times
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