Showing posts with label Regulating. Show all posts
Showing posts with label Regulating. Show all posts

Tuesday, November 23, 2010

Identification Of New Mechanism Regulating Daily Biological Rhythms Offers Novel Target For Treatment Of Sleep Disorders, Diabetes And Cancer


Main Category: Sleep / Sleep Disorders / Insomnia
Also Included In: Diabetes;??Cancer / Oncology
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Scientists from the Florida campus of The Scripps Research Institute have identified for the first time a novel mechanism that regulates circadian rhythm, the master clock that controls the body's natural 24-hour physiological cycle. These new findings could provide a new target not only for jet lag, shift work, and sleep disturbances, but also for disorders that result from circadian rhythm disruption, including diabetes and obesity as well as some types of cancer.

The study is published in the November 12, 2010 edition (Volume 285, Number 45) of the Journal of Biological Chemistry.

"It's well known that the nuclear receptors RORα and REV-ERBα regulate expression of the gene BMAL1, which is vital to virtually every aspect of human physiology and a core component of the circadian clock," said Tom Burris, a professor in the Department of Molecular Therapeutics at Scripps Florida who led the study. "BMAL1 functions as an obligate heterodimer (only working as a dimer with a partner) with either CLOCK or NPAS2 so it was unclear how RORa and REV-ERBa could control this complex. In this study, we show that both partners are targets. As we understand more about the relationship between these receptors and their gene targets, we can consider the possibility of modulating the body's core clock, especially as we continue to develop synthetic ligands targeting these two nuclear receptors."

Circadian rhythms are conserved across a wide variety of organisms, from Drosophila (fruit flies) to humans. In mammals, these rhythms respond to light signals and are controlled by the "master clock" in the brain. In the periphery, semi-autonomous clocks can respond to signals from the brain and from other cues including nutrient status. Disorders linked to dysfunctional circadian rhythms can be severe and potentially deadly, Burris said.

"When you're dealing with circadian rhythm, the most obvious disease target is sleep - for people who do shift work, critical jobs like police work, fire fighting, and medicine," he said. "If circadian rhythm is disrupted, you're prone to metabolic disorders like diabetes and obesity and even breast cancer - because the core clock is closely linked to the cell cycle. If your clock goes awry, you run the risk of your cell cycle going awry as well."

The Role of Nuclear Receptors

Nuclear receptors are proteins that recognize and regulate hormones as well as other molecules. As a result, they control an organism's metabolism by activating gene expression.

The study found that oscillations in the expression of RORα and REV-ERBα not only influence the pattern of circadian expression of BMAL1, but also of NPAS2, a protein that is part of the circadian clock. The fact that NPAS2 is a target of both receptors suggests that there is a specific mechanism that coordinates the relative levels of each receptor to maintain correct circadian function..

"Based on the fact that BMAL1 and NPAS2 work together within the circadian clock, it seems highly unlikely that these two nuclear receptors would only regulate one of them," Burris said. "Our study shows for the first time that, like BMAL1, NPAS2 is also a direct target for RORα and REV-ERBα. This discovery makes this complex a very good therapeutic target."

The expression of RORα and REV-ERBα follows a 24-hour circadian pattern (with opposing phases) leading to the correct circadian pattern of gene expression of BMAL1 and NPAS2.

"We think it's something of a competition between these two receptors for binding to promoters of these genes that triggers either the activation (RORα) or repression (REV-ERBα) of the gene," Burris said.

Nuclear receptors make tempting drug targets because they can bind directly to DNA and activate genes through specific ligands - molecules that affect receptor behavior - such as the sex hormones, vitamins A and D, and glucocorticoids, which modulate the body's response to stress. Nuclear receptors have been implicated in a number of cancers, including prostate, breast, and colon cancers, and other diseases as well, including type 2 diabetes, atherosclerosis, and metabolic syndrome.

The other important aspect of nuclear receptors is their practicality. Scientists can design small molecule therapeutics to force them to change their ways. Burris said that he has already identified several new synthetic ligands (drug like molecules) for both receptors.

The first author of the study, "Characterization of the Core Mammalian Clock Component, NPAS2, as a REV-­ERBα/RORα Target Gene," is Christine Crumbley of The Scripps Research Institute. Others authors include Yongjun Wang and Douglas J. Kojetin, also of Scripps Research. This work was funded by the National Institutes of Health.

Source:
Mika Ono
Scripps Research Institute

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Monday, November 22, 2010

Circuit Regulating Anti-Diabetic Actions Of Serotonin Uncovered By Researchers


Main Category: Diabetes
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New findings by researchers at UT Southwestern Medical Center suggest that serotonin - a brain chemical known to help regulate emotion, mood and sleep - might also have anti-diabetic properties.

The findings, appearing online this week in Nature Neuroscience, also offer a potential explanation for why individuals prescribed certain kinds of anti-psychotic drugs that affect serotonin signaling sometimes have problems with their metabolism, including weight gain and the development of diabetes.

"In this paper, we describe a circuit in the brain that may explain the anti-diabetic actions of serotonin-receptor signaling," said Dr. Joel Elmquist, professor of internal medicine and pharmacology at UT Southwestern and senior author of the study. "This discovery tells us that drugs that affect serotonin action can have anti-diabetic actions independent of body weight and feeding."

For the current study, the researchers engineered a mouse model in which the expression of a serotonin receptor called 5-hydroxytryptamine 2C was blocked throughout the entire body. Without functioning receptors, the mice developed insulin resistance in their livers.

Previous research has implicated these receptors in the brain in the regulation of energy balance and glucose metabolism throughout the body. When activated by serotonin, this receptor also is known to suppress appetite. Until now, however, it was unclear which type of neuron in the brain mediated the effects of serotonin to regulate glucose, or blood sugar, levels.

To find out, the study authors engineered another set of mice in which the same serotonin receptor was blocked everywhere except within a group of brain cells called pro-opiomelanocortin, or POMC, neurons. The POMC neurons, which are found in the hypothalamus, are also known to play an important role in suppressing appetite and inducing weight loss.

The researchers found that when they reactivated the serotonin receptor only in the POMC neurons, the mice no longer displayed insulin resistance in the liver. Restoring the receptor essentially protected the mice from developing the metabolic problems usually found in mice which lack the receptor throughout the body.

Dr. Elmquist said that even though the findings are in mice, they do provide potential insight into blood glucose control in humans.

"It also further reinforces our previous findings that specific subsets of POMC neurons within the brain are responsible for the regulation of liver function and blood sugar metabolism," Dr. Elmquist said.

The next step, he said, is to determine what happens to feeding, body weight and liver metabolism in mice engineered to lack this serotonin receptor only in the POMC neurons.

Other UT Southwestern researchers involved in the study included lead author Dr. Yong Xu, instructor of internal medicine; Drs. Eric Berglund, Jen-Chieh Chuang, William Holland and Jong-Woo Sohn, postdoctoral research fellows in internal medicine; Dr. Makoto Fukuda, instructor of internal medicine; Dr. Kevin Williams, assistant instructor of internal medicine; Dr. Jeffrey Zigman, assistant professor of internal medicine and psychiatry; Dr. Philipp Scherer, director of the Touchstone Center for Diabetes Research; and Dr. Jari Rossi, former postdoctoral research fellow in internal medicine. Researchers from Baylor College of Medicine, Beth Israel Deaconess Medical Center and Harvard Medical School also contributed to the study.

The study was supported by the American Diabetes Association, American Heart Association, Sigrid Juselius Foundation, the Canadian Institute of Health Research and the National Institutes of Health.

Source:
UT Southwestern Medical Center

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