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Showing posts with label Human. Show all posts
Showing posts with label Human. Show all posts

Monday, July 23, 2012

Shedding Light On Human Sweet Perception, Metabolic Disorders With The Help Of Honey Bees

Main Category: Diabetes
Also Included In: Genetics;  Obesity / Weight Loss / Fitness
Article Date: 03 Jul 2012 - 0:00 PDT Current ratings for:
Shedding Light On Human Sweet Perception, Metabolic Disorders With The Help Of Honey Bees
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Scientists at Arizona State University have discovered that honey bees may teach us about basic connections between taste perception and metabolic disorders in humans.

By experimenting with honey bee genetics, researchers have identified connections between sugar sensitivity, diabetic physiology and carbohydrate metabolism. Bees and humans may partially share these connections.

In a study published in the open-access journal PLoS Genetics (Public Library of Science), Gro Amdam, an associate professor, and Ying Wang, a research scientist, in the School of Life Sciences in ASU's College of Liberal Arts and Sciences, explain how for the first time, they've successfully inactivated two genes in the bees' "master regulator" module that controls food-related behaviors. By doing so, researchers discovered a possible molecular link between sweet taste perception and the state of internal energy.

"A bee's sensitivity to sugar reveals her attitude towards food, how old the bee is when she starts searching for nectar and pollen, and which kind of food she prefers to collect," said Wang, the lead author of the paper. "By suppressing these two 'master' genes, we discovered that bees can become more sensitive to sweet taste. But interestingly, those bees also had very high blood sugar levels, and low levels of insulin, much like people who have Type 1 diabetes."

In Amdam's honey bee lab at ASU, scientists suppressed two genes including vitellogenin, which is similar to a human gene called apolipoprotein B, and ultraspiracle, which partners with an insect hormone that has some functions in common with the human thyroid hormone. The team is the first in the world to accomplish this double gene-suppressing technique. Researchers used this method to understand how the master regulator works.

"Now, if one can use the bees to understand how taste perception and metabolic syndromes are connected, it's a very useful tool," said Amdam, who also has a honey bee laboratory at the Norwegian University of Life Sciences. "Most of what we know about deficits in human perceptions is from people who are very sick or have had a brain trauma. We know shockingly little about people in this area."

The researchers are now considering how, exactly, the bees' sweet taste was enhanced by the experiment. The most metabolically active tissue of the bee, called the fat body, may hold the key. The fat body is similar to the liver and abdominal fat in humans, in that it helps store nutrients and create energy.

Amdam explains that taste perception evolved as a survival mechanism, for bees as well as for people. For example, bitter foods may be poisonous or sweet taste may signal foods rich in calories for energy. For all animals, taste perception must communicate properly with one's internal energetic state to control food intake and maintain normal life functions. Without this, poorly functioning taste perception can contribute to unhealthy eating behaviors and metabolic diseases, such as diabetes and obesity.

"From this study, we realized we can take advantage of honey bees in understanding how food-related behaviors interact with internal metabolism, as well as how to manipulate these food-related behaviors in order to control metabolic disorders," added Amdam.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our diabetes section for the latest news on this subject. In addition to Amdam and Wang, the team included former ASU research partners Colin Brent, a research entomologist with the USDA, and Erin Fennern, now with Oregon Health Science University.
A new-born honey bee worker (Apis mellifera) breaks free from her nursery chamber in the colony nest. A few weeks later, she will leave the hive in search for nectar and pollen to feed her siblings and mother queen. The genes vitellogenin and ultraspiracle, which regulate the bees’ behavioral transition to foraging tasks, also coordinate their carbohydrate metabolism, blood sugar levels, sweet taste, and several metabolic genes in adipose tissue. When vitellogenin and ultraspiracle are simultaneously suppressed in adipose cells, the bees develop a metabolic syndrome similar to Type 1 diabetes:
https://asunews.asu.edu/files/5p4r5064.jpg
Photo by: Christofer Bang
Arizona State University Please use one of the following formats to cite this article in your essay, paper or report:

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Arizona State University. "Shedding Light On Human Sweet Perception, Metabolic Disorders With The Help Of Honey Bees." Medical News Today. MediLexicon, Intl., 3 Jul. 2012. Web.
5 Jul. 2012. APA

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Thursday, July 12, 2012

Caring For The US Navy's Animal Warriors Could Have Impact On Human Health

Main Category: Veterinary
Also Included In: Cholesterol;  Immune System / Vaccines
Article Date: 11 May 2012 - 0:00 PDT Current ratings for:
'Caring For The US Navy's Animal Warriors Could Have Impact On Human Health'
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Military patrol dogs with your keen sense of smell, step aside. The U.S. Navy has enlisted the biological sonar and other abilities of bottlenose dolphins and California sea lions to protect harbors from enemy swimmers, detect explosives on the seafloor and perform other tasks. An article in the current edition of Chemical & Engineering News (C&EN) focuses on the Navy's health program for marine mammals and how it may also help keep people healthy.

C&EN Associate Editor Lauren K. Wolf explains that the Navy invests a lot of time and money in training these animals and, naturally, wants to keep them in tip-top shape when they deploy to places like Iraq or Korea. Their missions can involve guiding sailors through mine-laden waters or attaching recovery lines to lost equipment on the seafloor. When one of the roughly 120 animals gets sick, a team of veterinarians carefully evaluates and treats its illness. Because of the Navy's medical care, the animals are living two and three times longer than is common in the wild, leading to illnesses also seen in older humans, like high cholesterol and chronic inflammation. Wolf reports that the Navy is looking to apply its growing understanding of ailments in marine mammals to develop advances in human medical care.

For instance, vets have noticed that dolphins show symptoms similar to diabetes, with spiking blood sugar after meals, but they are able to live with the condition. Wolf says the researchers are looking for a genetic "switch" the dolphins might use to control their diabetes that could lead to treatments for humans living with the disease. Similarly, dolphins show extraordinary healing abilities that Navy researchers think may be linked to the animals' stem cells. The scientists are extracting stem cells from dolphins and testing to see whether their application can speed up wound healing and reduce scarring. If successful, the technique may one day be useful for humans, too.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our veterinary section for the latest news on this subject. Please use one of the following formats to cite this article in your essay, paper or report:

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American Chemical Society. "Caring For The US Navy's Animal Warriors Could Have Impact On Human Health." Medical News Today. MediLexicon, Intl., 11 May. 2012. Web.
7 Jun. 2012. APA

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'Caring For The US Navy's Animal Warriors Could Have Impact On Human Health'

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Wednesday, July 11, 2012

Potential For Human Intravenous Kidney Cell Transplants

Main Category: Urology / Nephrology
Also Included In: Transplants / Organ Donations;  Diabetes
Article Date: 04 Jun 2012 - 0:00 PDT Current ratings for:
'Potential For Human Intravenous Kidney Cell Transplants'
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Indiana University School of Medicine scientists have successfully transplanted primary kidney cells intravenously to treat renal failure in rats, pointing the way to a possible future alternative to kidney transplants and expensive dialysis treatments in humans.

The researchers, Katherine J. Kelly, M.D., associate professor of medicine, and Jesus Dominguez, M.D., professor of medicine, genetically modified the cells in the laboratory to produce a protein - called SAA - that plays an important role in renal cell growth, embryonic kidney development and kidney regeneration after an injury. Modified cells found their way to the appropriate locations of the damaged kidneys, resulting in regeneration of tissue and improved function in the kidney.

The researchers' work has been accepted for publication in the American Journal of Physiology - Renal Physiology, now online.

The authors point out there is a significant and expanding need for better kidney treatments because growing numbers of people are facing progressive kidney failure due to rising incidence of diabetes, hypertension and the aging of the population.

According to the National Institute of Diabetes and Digestive and Kidney Diseases of the National Institutes of Health, more than 20 million Americans have chronic kidney disease, and more than half a million people are being treated for end stage renal disease. For those patients the options are limited to dialysis or kidney transplants. Nearly 99,000 people are now on the waiting list for a kidney transplant, according to the Organ Procurement and Transplantation Network, and more than 12 people die each day while on a kidney transplant waiting list.

"Obviously there is a need for, and an opportunity for, regenerative medicine in kidney failure as well as other organs," said Dr. Dominguez. There have been efforts to use stem cells to regenerate kidney tissue, but the benefits have not been long lasting, he noted.

In the IU researchers' experiments, however, some of the reprogrammed adult kidney donor cells made their way back to the damaged rat kidneys and engrafted themselves into key locations for renal function, resulting in improved kidney function and limiting physical damage. In some cases the modified cells came from other donor rats. In other experiments, one of the rats damaged kidneys was removed and the treated cells were grown in the laboratory and then returned to the same rat.

"Ultimately, you can imagine taking a part of someone's kidney, expanding those cells with appropriate growth factors in a tissue culture dish, and then giving the cells back," said Dr. Kelly.

The researchers cautioned, however, that much work remains to be done before tests could begin in humans.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our urology / nephrology section for the latest news on this subject. The research was supported in part with funds from the National Institutes of Health to Dr. Kelly (Grant no. 5R01DK082739) and the Veterans Administration Merit Review program to Dr. Dominguez.
Indiana University School of Medicine Please use one of the following formats to cite this article in your essay, paper or report:

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Indiana University School of Medicine. "Potential For Human Intravenous Kidney Cell Transplants." Medical News Today. MediLexicon, Intl., 4 Jun. 2012. Web.
7 Jun. 2012. APA

Please note: If no author information is provided, the source is cited instead.


'Potential For Human Intravenous Kidney Cell Transplants'

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All opinions are moderated before being included (to stop spam)

Contact Our News Editors

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Note: Any medical information published on this website is not intended as a substitute for informed medical advice and you should not take any action before consulting with a health care professional. For more information, please read our terms and conditions.



View the original article here