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Showing posts with label Metabolism. Show all posts
Showing posts with label Metabolism. Show all posts

Thursday, June 9, 2011

Apple Ingredient Keeps Muscles Strong: Component of Apple Peels Found to Help Prevent Muscle Weakening in Mice



In search of a way to prevent the muscle wasting that comes with illness and aging, researchers have landed a natural compound that might just do the trick. The findings reported in the June issue of Cell Metabolism, a Cell Press publication, identify a component of apple peels as a promising new drug candidate for the widespread and debilitating condition that affects nearly everyone at one time or another.
Researchers have identified a component of apple 
peels that helps prevent muscle weakening in mice. 
(Credit: © Anyka / Fotolia)

"Muscle wasting is a frequent companion of illness and aging," said Christopher Adams of The University of Iowa, Iowa City. "It prolongs hospitalization, delays recoveries and in some cases prevents people from going back home. It isn't well understood and there is no medicine for it."

Motivated by the desire to change that, Adams' team first looked at what happens to gene activity in muscles under conditions that promote weakening. Those studies turned up 63 genes that change in response to fasting in both people and mice and another 29 that shift their expression in the muscles of both people who are fasting and those with spinal cord injury. Comparison of those gene expression signatures to the signatures of cells treated with more than 1300 bioactive small molecules led them to ursolic acid as a compound with effects that might counteract those of atrophy.

"Ursolic acid is an interesting natural compound," Adams said. "It's part of a normal diet as a component of apple peels. They always say that an apple a day keeps the doctor away…"



The researchers next gave ursolic acid to fasted mice. Those experiments showed that ursolic acid could protect against muscle weakening as predicted. When ursolic acid was added to the food of normal mice for a period of weeks, their muscles grew. Those effects were traced back to enhanced insulin signaling in muscle and to corrections in the gene signatures linked to atrophy.

Animals given ursolic acid also became leaner and had lower blood levels of glucose, cholesterol and triglycerides. The findings therefore suggest that ursolic acid may be responsible for some of the overall benefits of healthy eating.

"We know if you eat a balanced diet like mom told us to eat you get this material," Adams said. "People who eat junk food don't get this."

It is not yet clear whether the findings in mice will translate to human patients, Adams says, but his goal now is to "figure out if this can help people." If so, they don't yet know whether ursolic acid at levels that might be consumed as part of a normal diet might or might not be enough.

Wednesday, March 3, 2010

Hangover-Free Booze? Dissolved Oxygen Helps


Oxygen for ethanol oxidation is supplied through breathing, the stomach, and the skin. There is a great deal of genetic and environmental variability in the pharmacokinetics of alcohol absorption, distribution, metabolism, and elimination. A new study has found that increasing dissolved oxygen concentrations in alcohol may help to reduce alcohol-related side effects and accidents.

Increasing dissolved oxygen concentrations in alcohol may help to reduce alcohol-related side effects and accidents, new research has found. (Credit: iStockphoto/Brent Holland)

Results will be published in the May 2010 issue of Alcoholism: Clinical & Experimental Research and are currently available at Early View.

"Ethanol is oxidized to acetaldehyde, then further oxidized to water and carbon dioxide in the body after consumption," explained Kwang-il Kwon, a professor in the college of pharmacy at Chungnam National University and corresponding author for the study. "These oxidation reactions occur primarily via hepatic oxidation and are governed by the catalytic properties of alcohol-metabolizing enzymes, including the microsomal ethanol oxidizing system (MEOS), alcohol dehydrogenase (ADH), and aldehyde dehydrogenase (ALDH). Ethanol oxidation by ADH, ALDH, and MEOS requires oxygen, and a higher oxygen uptake increases the rate of ethanol oxidation."

"Several studies have indicated that high-oxygen water can enhance the survival ability of mice, fatigue recovery, and anoxia endurance function," added Hye Gwang Jeong, a professor in the department of toxicology in the college of pharmacy at Chungnam National University. "It can also increase energy storage. However, the influence of dissolved oxygen concentration on alcohol pharmacokinetics has not previously been described. This manuscript is the first to investigate the influence of dissolved oxygen concentrations on the pharmacokinetics of alcohol in healthy human subjects."

Kwon and his colleagues performed three experiments with 49 healthy volunteers (30 men, 19 women), with a mean age of 27.2 years. Experiment one compared 8 ppm and 20 ppm dissolved oxygen concentrations in 240 ml of 19.5 percent alcoholic beverage. Experiment two compared 8 ppm and 20 ppm dissolved oxygen concentrations in 360 ml of 19.5 percent alcoholic beverage. Experiment three compared 8 ppm and 25 ppm dissolved oxygen concentrations in 360 ml of 19.5 percent alcoholic beverage.

Results showed that elevated, dissolved oxygen concentrations in alcoholic drinks can accelerate the metabolism and elimination of alcohol. For example, the time to reach 0.000 percent blood alcohol concentration (BAC) for the 240 ml of 19.5 percent alcoholic beverage with 20 ppm dissolved oxygen concentration was 20.0 min faster than with 8 ppm (257.7 min). The time to reach 0.000 percent BAC for the 360 ml of 19.5 percent alcoholic beverage with 20 ppm (334.5 min) and 25 ppm (342.1 min) dissolved oxygen concentration was 23.3 min and 27.1 min faster than with 8 ppm, respectively.

"The oxygen-enriched alcohol beverage reduces plasma alcohol concentrations faster than a normal dissolved-oxygen alcohol beverage does," said Kwon. "This could provide both clinical and real-life significance. The oxygen-enriched alcohol beverage would allow individuals to become sober faster, and reduce the side effects of acetaldehyde without a significant difference in alcohol's effects. Furthermore, the reduced time to a lower BAC may reduce alcohol-related accidents."

Both Kwon and Jeong noted that alcoholic drinks with a higher oxygen concentration already exist in Korea, but they lack scientific support. "It seems that these drinks can maintain a high dissolved-oxygen concentration for about 10 to 20 days before the stopper is removed, and for 70 minutes after removing the stopper, respectively, at room temperature," said Kwon. Both scientists suggested that future studies look closer at dissolved-oxygen concentrations on specific enzymes of alcohol metabolism, such as ADH, ALDH, and MEOS.
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