Showing posts with label healing. Show all posts
Showing posts with label healing. Show all posts

Wednesday, January 7, 2009

Massaging Muscles Facilitates Recovery After Exercise

Researchers testing the long-held theory that therapeutic massage can speed recovery after a sports injury have found early scientific evidence of the healing effects of massage.

The scientists have determined that immediate cyclic compression of muscles after intense exercise reduced swelling and muscle damage in a study using animals.

Though they say it’s too soon to apply the results directly to humans in a clinical environment, the researchers consider the findings a strong start toward scientific confirmation of massage’s benefits to athletes after intense eccentric exercise, when muscles contract and lengthen at the same time.

“There is potential that this continuing research will have huge clinical implications,” said Thomas Best, a professor of family medicine at Ohio State University and senior author of the study. “If we can define the mechanism for recovery, the translation of these findings to the clinic will dictate how much massage is needed, for how long, and when it should be performed after exercise.”

Anecdotal evidence suggests massage offers many health benefits, but actual testing of its effects at the cellular level is more difficult than one might think. In this study with rabbits, the researchers used one mechanical device to mimic movements associated with a specific kind of exercise, and a second device to follow the exercise with a simulated consistent massaging motion on the affected muscles. They compared these animals to other animals that performed the exercise movements but did not receive simulated massage. All animals were sedated during the experiments.

“We tried to mimic Swedish massage because anecdotally, it’s the most popular technique used by athletes,” said Best, who is also co-medical director of the OSU Sports Medicine Center and a team physician for the Department of Athletics. “A review of the research in this area shows that despite the existing anecdotal evidence – we know athletes use massage all the time – researchers don’t know the mechanism of how massage improves recovery after exercise and injury.”

Swedish massage combines long strokes, kneading and friction techniques on muscles and various movements of joints, according to the American Massage Therapy Association.

After the experimental exercise and massage were performed in the study, the researchers compared the muscle tissues of all of the animals, finding that the muscles in animals receiving simulated massage had improved function, less swelling and fewer signs of inflammation than did muscles in the animals that received no massage treatment after exercise.

The research is published in a recent issue of the journal Medicine & Science in Sports & Exercise.

The research focused on eccentric exercise, which creates a motion similar to the way in which quadriceps in human thighs are exercised during a downhill run. In the study, the scientists focused on the tibialis anterior muscle, located on the front of the shin in humans. The simulated exercise involved continuous flexing and pointing of the toes to exert the muscle during seven sets of 10 cycles, with two minutes of rest between each set.

“It’s hard to describe exactly how the exercise intensity would be matched in a human, but this was considered a significant amount of exercise that would likely cause muscle soreness and possible damage,” Best said.

Immediately following the exercise, the affected muscle was subjected to 30 minutes of simulated massage, called compressive loading. The researchers used mathematical equations to determine the appropriate amount of force to apply to the animal muscle, which was intended to match the force Swedish massage typically places on a patient’s spine. The device used to simulate the stroking motion for the research was designed by Yi Zhao, assistant professor of biomedical engineering at Ohio State and a co-author of the study.

“We know biological tissues are sensitive to the magnitude of frequency, duration and load, so we controlled the force, frequency and time spent on massage,” Best said.

The exercise-massage cycle was repeated for four days, after which the animals’ muscle strength and tissue were examined.

The massaged muscles recovered an estimated 60 percent of the strength after the four-day trial, compared to restoration of about 14 percent of strength in muscles that were exercised and then rested.

Similarly, the massaged muscles had fewer damaged muscle fibers and virtually no sign of white blood cells, the presence of which would indicate that the body was working to repair muscle damage, when compared with the rested muscles. The massaged muscles weighed about 8 percent less than the rested muscles, suggesting that the massage helped prevent swelling, Best said.

“One fundamental question is how much of a role does inflammation play in repair to a muscle? Are we preventing inflammation and therefore improving recovery? We haven’t proven that yet,” Best said.

He is collaborating with a variety of experts across the university to continue this line of research, and hopes to cooperate with Ohio State’s Center for Integrative Medicine on future clinic-based work.

“Our goal is to use this model to understand the biological mechanisms of massage as a guide to preclinical trials to test the effects of massage on muscle recovery after exercise,” he said. “A trial in humans could look at optimal indications for massage.

"Ultimately, we could also find out how massage helps not just exercise-induced muscle injury, but swelling and pain associated with other medical conditions, as well.”

Additional co-authors on the study were Timothy Butterfield, a former postdoctoral researcher at Ohio State now with the University of Kentucky Department of Rehabilitation Sciences; Sudha Agarwal of the Ohio State College of Dentistry’s Section of Oral Biology; and Furqan Haq of Ohio State’s Division of Sports Medicine in the Department of Family Medicine.

The research was funded by the National Institutes of Health and the Ohio State University Pomerene Chair in Family Medicine, held by Best.

http://www.sciencedaily.com/





Saturday, October 4, 2008

Aromatherapy – More Than Just Good Smell

Aromatherapy is a form of alternative healing that makes use of volatile plant oils, referred to as essential oils, and other aromatic compounds obtained from plants for the overall physical and psychological well-being of a person.

The history of aromatherapy dates back to more than 3500 years before Christ’s birth, to a time when the use of aromatics was recorded for the first ever instance in human history. The truth is that the history of aromatherapy is deeply linked with the progress of aromatic medicine, which in its initial stages was typically combined with religion, mysticism and magic.

In India, around 2000 BC, various writings mention the role of ‘perfumers’ and ‘incense sellers’. The word ‘aromatherapy’ was used for the first time in the 1920s by French chemist Rene-Maurice-Gattefosse, who dedicated his life to researching on the discipline of aromatherapy.

The theory to explain the healing effects of aromatherapy offers two mechanisms- the influence of aroma on the brain, on the limbic system through the olfactory system in particular, and the direct pharmacological effects these essential oils have on the body.

Though the efficacy of aromatherapy as a form of healing has not yet been proven, but some clinical studies have shown encouraging results.

An overview of the materials frequently employed in aromatherapy is given below:

•Essential oils: These are fragrant oils extracted from plants mainly through steam distillation (e.g. eucalyptus oil).

•Absolutes: These are also fragrant oils, but extracted from flowers or delicate plant tissues through solvent extraction (e.g. rose absolute).

•Phytoncides: These are volatile organic compounds obtained from plants that destroy microbes.

•Hydrosols: These are aqueous by-products of distillation (e.g. rosewater). Many herbs are used to make herbal distillates. They have culinary, medicinal as well as skin care uses.

•Infusions: They are aqueous extracts of various plant materials (e.g. infusion of chamomile)

•Carrier oils: These are oily plant based triacylglycerides used to dilute essential oils for use on the skin (e.g. sweet almond oil) so as to avoid irritation.

Like any other form of healing, aromatherapy too has its uses and benefits. It doesn’t just smell good but provides immense relaxation and stress relief. It boosts the immune, respiratory and circulatory systems which help in mood enhancement and overall well being.

Essential oils, which form the heart of aromatherapy, pose some potential concerns as well. Because they are highly concentrated, they can cause skin irritation if used directly. They could also raise some health issues for pregnant and lactating women.

But on the whole, one can say that the positive effects of aromatherapy far outnumber the negative ones. It is an alternative to medicine that entails systematic use of organic essences in holistic treatments for enhancing general vitality and ensuring prevention of disease.

http://www.themedguru.com/




Tuesday, August 19, 2008

Skin Care: Scar-free Healing Shown With Gene Suppression

New research from the University of Bristol shows that by suppressing one of the genes that normally switches on in wound cells, wounds can heal faster and reduce scarring. This has major implications not just for wound victims but also for people who suffer organ tissue damage through illness or abdominal surgery.

When skin is damaged a blood clot forms and cells underneath the wound start to repair the damage, leading to scarring. Scarring is a natural part of tissue repair and is most obvious where skin has healed after a cut or burn. It ranges from trivial (a grazed knee) to chronic (diabetic leg ulcers) and is not limited to the skin. All tissues scar as they repair; for example, alcohol-induced liver damage leads to fibrosis and liver failure, and after most abdominal surgeries scars can often lead to major complications.

Tissue damage triggers an inflammatory response by white cells to protect skin from infection by killing microbes. The same white cells guide the production of layers of collagen. These layers of collagen help the wound heal but they stand out from the surrounding skin and result in scarring. Research by Professor Paul Martin and colleagues at the University of Bristol shows that osteopontin (OPN) is one of the genes that triggers scarring and that applying a gel, which suppresses OPN to the wound, can accelerate healing and reduces scarring. It does this in part by increasing the regeneration of blood vessels around the wound and speeding up tissue reconstruction.

Speaking of the discovery, Professor Martin said: ‘White blood cells (macrophages), and the chemical signals (PDGF) delivered to the wound cells, and osteopontin itself are now all clear targets for developing medicines to improve healing of skin wounds and other organs where fibrotic tissue repair can be debilitating. We hope that it won’t be too long before such therapies are available in the clinic. Indeed, the technique for suppressing OPN to reduce scarring is currently being licensed and patented by a Biotech company specializing in wound-healing therapies.’

Earlier research by Professor Martin’s lab and others has shown that embryos of many species, including humans, heal wounds without leaving a scar. Now it looks like the same may be true for adults.

The findings will be published by the Journal of Experimental Medicine on 26 January in a paper entitled ‘Molecular mechanisms linking wound inflammation and fibrosis: knockdown of osteopontin leads to rapid repair and reduced scarring’. The paper is currently available online

http://www.sciencedaily.com/



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