Showing posts with label hormone. Show all posts
Showing posts with label hormone. Show all posts

Friday, April 6, 2012

The Human body's Circadian biological clock: Scientists redraw the blueprint

The discovery of a major gear in the biological clock that tells the body when to sleep and metabolize food may lead to new drugs to treat sleep problems and metabolic disorders, including diabetes.

Scientists at the Salk Institute for Biological Studies, led by Ronald M. Evans, a professor in Salk's Gene Expression Laboratory, showed that two cellular switches found on the nucleus of mouse cells, known as REV-ERBα and REV-ERBβ, are essential for maintaining normal sleeping and eating cycles and for metabolism of nutrients from food.

The findings, reported March 29 in Nature, describe a powerful link between circadian rhythms and metabolism and suggest a new avenue for treating disorders of both systems, including jet lag, sleep disorders, obesity and diabetes.

"This fundamentally changes our knowledge about the workings of the circadian clock and how it orchestrates our sleep-wake cycles, when we eat and even the times our bodies metabolize nutrients," says Evans.

"Nuclear receptors can be targeted with drugs, which suggests we might be able to target REV-ERBα and β to treat disorders of sleep and metabolism."

Nurses, emergency personnel and others who work shifts that alter the normal 24-hour cycle of waking and sleeping are at much higher risk for a number of diseases, including metabolic disorders such as diabetes.

To address this, scientists are trying to understand precisely how the biological clock works and uncover possible targets for drugs that could adjust the circadian rhythm in people with sleep disorders and circadian-associated metabolic disorders.

In mammals, the circadian timing system is orchestrated by a central clock in the brain and subsidiary clocks in most other organs.

The master clock in the brain is set by light and determines the overall diurnal or nocturnal preference of an animal, including sleep-wake cycles and feeding behaviour.

Scientists knew that two genes, BMAL1 and CLOCK, worked together at the core of the clock's molecular machinery to activate the network of circadian genes.

In this way, BMAL1 acts like the accelerator on a car, activating genes to rev up our physiology each morning so that we are alert, hungry and physically active.

Prior to this work REV-ERBα and β were thought to play only a minor role in these cycles, possibly working together to slow CLOCK-BMAL1 activity to make minor adjustments to keep the clock running on time.

However, genetic studies of two genes with similar functions can be very difficult and thus the real importance of REV-ERBα and β remained mysterious.

The Salk scientists got around this hurdle by developing mice in which both genes could be turned off in the liver at any point by giving them an estrogen derivative called tamoxifen.

Now mice could develop normally to adulthood, at which point the scientists could turn off REV-ERBα and REV-ERBβ in their livers, an organ crucial to maintaining the correct balance of sugar and fat in blood, to see what effects it had on circadian rhythms and metabolism.

"When we turned off both receptors, the animal's biological clocks went haywire," says Han Cho, first author on the paper and a postdoctoral researcher in Evan's Salk laboratory.

"The mice started running on their exercise wheels when they should have been resting. This suggested REV-ERBα and REV-ERBβ aren't an auxiliary system that makes minor adjustments, but an integral part of the clock's core mechanism. Without them, the clock can't function properly."

Digging more deeply into the clockworks, the Salk scientists mapped out the genes that the REV-ERBs control to keep the body operating on the right schedule, finding that they overlap with hundreds of the same genes controlled by CLOCK and BMAL1.

This and other findings suggested that the REV-ERBs, act as a break on the genes BMAL1 activates.

"We thought that the core of the clock was an accelerator, and that all REV-ERBα and REV-ERBβ did was to pull the foot off that pedal," says Evans.

"What we've shown is that these receptors act directly as a break to slow clock activity. Now we've got a accelerator and a break, each equally important in creating the daily rhythm of the clock."

The scientists also found that the REV-ERBs control the activity of hundreds of genes involved metabolism, including those responsible for controlling levels of fats and bile.

The mice in which REV-ERBα and REV-ERBβ were turned off had high levels of fat and sugar in their blood, common problems in people with metabolic disorders.

"This explains how our cellular metabolism is tied to daylight cycles determined by the movements of the sun and the earth," says Satchidananda Panda, an associate professor in Salk's Regulatory Biology Laboratory and co-author on the paper.

"Now we want to find ways of leveraging this mechanism to fix a person's metabolic rhythms when they are disrupted by travel, shift work or sleep disorders."

Provided by Salk Institute

Monday, June 20, 2011

Could a whiff of oxytocin help hypnosurgery?

LOOK into my eyes and sniff: a whiff of oxytocin can make even the least suggestible people amenable to hypnotism.

Richard Bryant at the University of New South Wales in Sydney, Australia, and colleagues, tried to hypnotise 40 men who scored low in an initial test for hypnotisability.

They gave 19 of the men a nasal spray containing oxytocin - a hormone involved in social bonding - and the rest a placebo.

Eight of those given oxytocin shifted from a low to medium level of hypnotisability, compared with just three using the placebo (Psychoneuroendocrinology, DOI: 10.1016/j.psyneuen.2011.05.010).

Bryant reckons oxytocin increases trust in the hypnotist, which may be useful for Fabienne Roelants's team at Saint-Luc University Hospital in Brussels, Belgium, who compared the outcomes of people having surgery, with or without hypnosis, to remove breast tissue or part of the thyroid gland.

Those who chose hypnosis with local anaesthesia had less pain after surgery and spent less time in hospital than those who had a general anaesthetic, says Roelants. She presented the results last week at the European Society of Anaesthesiology Congress in Amsterdam, the Netherlands.

Tuesday, March 22, 2011

Testosterone reduces the empathetic responses in Women


Testosterone - Lauded by some and viewed with suspicion by others, few people have a completely neutral view of the hormone that separates boys from girls.

According to the extreme male brain theory of autism, the organising effects of testosterone on the brain in utero, and its ongoing shaping of social behaviors throughout life, explains why men exhibit more aggressive, risk-taking behaviour than women do.

It may also account for the social intelligence deficits of people with autism and the skewed gender ratio of the disorder.

A new study shows that even a little bit of testosterone administered under the tongue can cause a woman to show less empathy — to behave, in other words, more like a man.

This is especially true, researchers say, when a woman has been exposed to higher-than-average levels of testosterone as a fetus.

The 2D:4D Finger Test
One increasingly accepted marker of fetal androgen exposure is the 2D:4D ratio, comparing the length of the index finger to that of the ring finger on the right hand. In women, the ring finger is typically longer than the index finger, whereas in men, or in individuals with high fetal testosterone exposure, the two fingers are of nearly identical length.

Exposure to lower testosterone levels in utero, as inferred by a higher 2D:4D ratio, may protect men from prostate cancer. Researchers have also reported lower 2D:4D ratios in children with autism and in their parents and siblings.

In the study, researchers administered a single 0.5 mg dose of testosterone to 16 young women between 20 and 25 years of age in one session, and a single dose of placebo in a second session 48 hours later. The women experienced a ten-fold increase in blood testosterone levels 15 minutes after intake, with the levels returning to baseline in about an hour and a half.

During that time, the participants took a test of cognitive empathy called Reading the Mind in the Eyes, which asks them to infer the emotions expressed in a photograph of a pair of eyes. Interestingly, 75 percent of the women in the study achieved lower scores on the test after testosterone than after placebo.

When the researchers compared the women's 2D:4D ratios, as computed from scans of their right hands, they found something even more interesting: the women with the lowest 2D:4D ratios (highest fetal testosterone exposure) showed the most significant decrease in empathy as measured by the test.

This may not be not a slam-dunk for the extreme male brain theory, but the results jibe with other studies that have found a continuum of social cognition abilities.

Monday, February 22, 2010

Obesity Lower at High Altitude

People who are classified as Obese may find it easier to lose weight at high altitudes, the results of a German study suggest.

Previous studies demonstrated weight loss in athletes and normal-weight subjects at high altitude, but this study focused on the impact of altitude on overweight people for whom weight loss is desirable.

Researchers from Germany took 20 obese men to a high altitude location for one week. No changes were made to limit their food or alter their exercise routines, in an attempt to isolate the impact of altitude on weight.

After one week, the participants were eating less, had lost weight and had a lower diastolic blood pressure.

Writing in Obesity, the researchers said that low levels of oxygen found at high altitude may cause a rise in the hormone leptin which is thought to suppress appetite. However, they say more research is needed.

- Obesity Online 2010
- American Obesity Association

- AOA Online Journal
- The Journal of the American Obesity Association