Wednesday, April 15, 2020

One type of exercise “reverses” aging’s effect on stem cells — study

As people age, they lose muscle mass and the risk of heart disease, dementia, and reduced immune function increases. As the years tick by, it becomes harder for people to bounce back from a workout, injury, or illness.

Consistent exercise can slow down this degenerative process — but a new study suggests we may not have to settle for slowing down. According to new research in mice, aerobic exercise may actually reverse aging’s effect on essential muscle stem cells involved with tissue regeneration. 


If the research translates to humans, it means jogging, swimming, cycling, and other aerobic activities can help older people recover as quickly and efficiently as their younger selves. In the far future, these results could inform the creation of a drug that de-ages muscle stem cells.

This finding was published Monday in the journal Nature Metabolism.

Researchers have known for a long time that exercise promotes healthspan, giving people extra disease-free years.

This discovery is “very different,” co-author Thomas Rando, a neurology researcher at Stanford University, tells Inverse.

“This is like taking, in a sense, a person who has already aged and acquired these diseases, and then reversed that process," Rando explains.

This study suggests that aerobic exercise can cause old cells to behave more like — and gain the characteristics of — young cells. To get there, the scientists rounded up young and old mice and gave them access to a running wheel for three weeks. Then, with a battery of tests, they analyzed how the mouse's muscle stem cells and muscle tissue responded.



They compared the mouse runners to a group of non-exercising mice who were given a locked wheel and no opportunity to run.

Within a single week, both young and old mice with the running wheels established a routine, running about 10 and 4.9 kilometers per night, respectively.

The human equivalent to the mice running wheel regime would likely be regular, aerobic exercise— swimming, running, cycling, Rando says. Not strength training or weight lifting.


After three weeks of voluntary wheel running, the mice were moved to cages without any wheels. Then, the researchers injured certain muscles and analyzed how the mice rebuilt the injured tissue.

They also transplanted muscle stem cells from old mice into other injured mice, and saw how well the cells functioned. Compared with young donor muscle stem cells, old donor muscle stem cells formed smaller and fewer fibers in the injured mice. But old muscle stem cells from exercising mice performed like young muscle stem cells, forming more fibers than non-exercising old muscle stem cells.

Overall, older mice who exercised experienced improved muscle stem cell function and accelerated muscle tissue repair.

The active, older mice didn't produce more muscle stem cells. Instead, exercise had a “rejuvenating” effect on old cells, Rando says. It triggered a Benjamin Button-effect and helped mice operate more like their younger selves.

These benefits disappeared one week after the mice stopped running, suggesting that what causes the rejuvenating effect is sustained exercise.

This implies that voluntary aerobic exercise may have benefits "above and beyond" the prevention of age-related diseases, and may actually improve tissue function directly, Rando says.

"The idea would be that that older individuals would recover faster and more efficiently like young people do in response to an injury," he explains

Surprisingly, young mice who ran the wheel did not experience improved muscle repair. This puzzled Rando and his team.

"It's as if young mice have already kind of plateaued," Rando explains. "They lose function with age and they can get back to that baseline, but it's hard to make them still better with more exercise."

Exercise’s effects on muscle stem cells and tissue repair come down to a tiny protein called cyclin D1, the study explains. Voluntary aerobic exercise restored cyclin D1 levels in dormant stem cells back to youthful levels, effectively accelerating muscle stem cell regeneration.

Discovering cyclinD1's critical role means researchers may be able to target the protein therapeutically or develop a drug that creates these positive de-aging effects, the researchers say.

But before any kind of anti-aging pill or prescribed exercise-regime comes down the pipeline, more research in humans is needed. 


Abstract: Ageing impairs tissue repair. This defect is pronounced in skeletal muscle, whose regeneration by muscle stem cells (MuSCs) is robust in young-adult animals, but inefficient in older organisms. Despite this functional decline, old MuSCs are amenable to rejuvenation through strategies that improve the systemic milieu, such as heterochronic parabiosis. One such strategy, exercise, has long been appreciated for its benefits on healthspan, but its effects on aged stem-cell function in the context of tissue regeneration are incompletely understood. Here, we show that exercise in the form of voluntary wheel running accelerates muscle repair in old mice and improves old MuSC function. Through transcriptional profiling and genetic studies, we discovered that the restoration of old MuSC activation ability hinges on restoration of Cyclin D1, whose expression declines with age in MuSCs. Pharmacologic studies revealed that Cyclin D1 maintains MuSC activation capacity by repressing TGF-β signalling. Taken together, these studies demonstrate that voluntary exercise is a practicable intervention for old MuSC rejuvenation. Furthermore, this work highlights the distinct role of Cyclin D1 in stem-cell quiescence.


This is only for your information, kindly take the advice of your doctor for medicines, exercises and so on.     

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Sunday, September 22, 2019

Brain cancer in kids can be treated with leukemia drug

In a recent study, researchers suggested a new use of leukemia drug, nilotinib to heal a deadly pediatric brain cancer called medulloblastoma.

In the study, published in September -- the team demonstrated how use of a single drug, in this case nilotinib, specifically targets cancer cells that have an abnormal activation of a cell communication system, called the Hedgehog pathway, via two different mechanisms, making it more effective and less toxic than combining drugs.


"We discovered a previously unknown activity of nilotinib that may be leveraged to treat a large fraction of cases of medulloblastoma, a type of childhood brain cancer," said senior author.

"While more research is needed, this pharmaceutical could potentially be used for several cancer types with an overactive cell-signaling pathway," added the author.


Several types of basal cell carcinoma, myeloid leukemia, rhabdomyosarcoma, pancreatic adenocarcinoma, glioblastoma and one-third of medulloblastoma cases have impairment in the Hedgehog signaling pathway, a key cellular system that regulates embryonic development and adult tissue regeneration.

As a result of this impairment, the cancer cells overproduce a cell-surface receptor called Smoothened. Malignancies with this abnormality account for a quarter of all cancer deaths said Abagyan.

"Only a fraction of patients with this subtype of medulloblastoma respond well to current therapies that only target Smoothened," said the author.

"Knowing that dysregulation of the Hedgehog pathway is important to the maintenance of cancer stem cells and that it plays a critical role in several cancers, we wanted to find a single drug that inhibits this pathway in addition to several other essential anti-cancer activities," added Abagyan.

In the study, researchers discovered that mice bearing human medulloblastoma tumours saw tumour growth reduced and no drug resistance occurring. Nilotinib simultaneously inhibits Smoothened and several protein kinases critical for tumor growth.



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Thursday, March 19, 2015

New way to regenerate heart tissue found.

In a discovery that may pave the way for regeneration of damaged heart tissue, scientists have successfully stimulated the mouse heart to grow new cells.

Researchers have shown that a subset of RNA molecules, called microRNAs, is important for cardiomyocyte cell proliferation during development and is sufficient to induce proliferation in cardiomyocytes in the adult heart.

The team found that the loss of the microRNA cluster miR302-367 in mice led to decreased cardiomyocyte cell proliferation during development.

In contrast, increased expression of the microRNA cluster in adult hearts led to a reactivation of proliferation in the normally non-reproducing adult cardiomyocytes.

This reactivation occurred, in part, through repression of a pathway called Hippo that governs cell proliferation and organ size.

“The Hippo pathway normally represses cell proliferation when it is turned on,” said Ed Morrisey, from the University of Pennsylvania.

“The cluster miR302-367 targets three of the major kinase components in the Hippo pathway, reducing pathway activity, which allows cardiomyocytes to re-enter the cell cycle and begin to regrow heart muscle. This is a case of repressing a repressor,” he said.

In adult mice, re-expression of the microRNA cluster reactivated the cell cycle in cardiomyocytes, resulting in reduced scar formation after an experimental myocardial infarction injury was induced in the mice.

There was also an increase in the number of heart muscle cells in these same mice.

However, long-term expression of more than several months of the microRNA cluster caused heart muscle cells to de-differentiation and become less functional.

“This suggested to us that persistent reactivation of the cell cycle in adult cardiomyocytes could be harmful and causes the heart to fail,” he said.

The investigators surmised that cardiomyocytes likely need to de-differentiate to divide, but they may lose their ability to contract over time.

“We overcame this limitation by injecting synthetic microRNAs with a short half-life called mimics into the mice,” he says.

Mimic treatment for seven days after cardiac infarction led to the desired increase in cardiomyocyte proliferation and re-growth of new heart muscle, which resulted in decreased fibrosis and improved heart function after injury.

Importantly, the team found that the transient seven-day treatment did not lead to the progressive loss of cardiac function as seen in the genetic models of increased microRNA expression.

The findings appear in the journal Science Translational Medicine.

THIS IS ONLY FOR INFORMATION, ALWAYS CONSULT YOU PHYSICIAN BEFORE HAVING ANY PARTICULAR FOOD/ MEDICATION/EXERCISE/OTHER REMEDIES.








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