Thursday, March 05, 2026

What if boosting neurons’ energy could delay Alzheimer’s and dementia?

Mitochondrial activity defects are suspected to play a role in neurodegenerative diseases. Yet until now, it has been difficult to determine whether this dysfunction is a cause of neuronal decline or merely a consequence of it. By stimulating these tiny cellular structures with a novel tool, researchers have managed to improve memory in animal models, opening the door to promising new therapeutic strategies. 

Mitochondria are small organelles located inside our cells. Their job is simple but vital: to produce the energy cells need to function properly. The brain, as the body’s most energy-hungry organ, depends heavily on this supply. Neurons require a constant flow of energy from mitochondria to communicate with one another. When mitochondrial activity falters, neurons lack the fuel they need to operate effectively.

Neurodegenerative diseases are marked by the gradual deterioration of neuronal function, eventually leading to the death of brain cells. In conditions such as Alzheimer’s disease, neuronal degeneration – the stage that precedes cell death – is accompanied by reduced mitochondrial activity. What remained unclear, however, was whether these mitochondrial alterations actively drive the disease process or simply reflect damage already underway.

Without the proper tools, establishing a clear cause-and-effect relationship proved challenging.

Recently, in a study published in Nature Neuroscience, researchers from Inserm and the University of Bordeaux, in collaboration with scientists from the University of Moncton in Canada, developed an unprecedented method to selectively stimulate mitochondrial activity.

A specific and innovative tool

The researchers hypothesized that if stimulating mitochondria led to an improvement in symptoms in animal models, this would suggest that mitochondrial dysfunction occurs before neuronal loss in neurodegenerative conditions.

In earlier work, the team had identified the specific role of certain proteins known as G proteins. These proteins are responsible for transmitting information within cells and were shown to modulate mitochondrial activity in the brain.

Building on this foundation, the scientists engineered an artificial receptor called mitoDREADD-Gs. This receptor can directly activate G proteins within mitochondria, thereby enhancing mitochondrial activity in a targeted way.

This breakthrough provided, for the first time, a means to precisely control mitochondrial function inside neurons.

Mitochondria as a potential therapeutic target

When mitoDREADD-Gs was stimulated, mitochondrial activity increased, and memory improved in mouse models of dementia. According to Giovanni Marsicano, an Inserm research director and co-senior author of the study, this is the first research to demonstrate a direct causal link between mitochondrial dysfunction and symptoms associated with neurodegenerative diseases. The findings suggest that impaired mitochondrial activity may be at the origin of neuronal degeneration.

Étienne Hébert-Chatelain, professor at the University of Moncton and co-senior author, emphasized that while these results still need confirmation, they shed light on the essential role mitochondria play in maintaining healthy brain function. In the long term, the tool developed by the team could help identify the molecular and cellular mechanisms responsible for dementia and accelerate the discovery of effective therapeutic targets.

Luigi Bellocchio, Inserm researcher and co-senior author, explained that the next step is to evaluate the effects of sustained mitochondrial stimulation. The goal is to determine whether continuous activation could influence the symptoms of neurodegenerative diseases and, ultimately, delay or even halt neuronal loss if mitochondrial function is fully restored.

Taken together, these findings position mitochondria not just as passive victims of cellular decline, but as active players in the progression of brain disorders. By restoring the cell’s energy production system, scientists may be able to intervene earlier in the disease process – potentially slowing degeneration before irreversible damage occurs.

While much work remains to be done, this research marks a significant step forward. It suggests that targeting mitochondrial function could become a powerful strategy in the fight against neuronal degeneration and memory impairment. For patients and families affected by these devastating conditions, even a modest delay in progression would represent meaningful progress – and this innovative approach offers a new reason for cautious optimism.

 

 

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

 

 

 

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Monday, January 05, 2026

Mitochondria Dump Their Rubbish DNA, And It Could Be Costing Us Our Health

Researchers have discovered a key molecular process that may contribute to chronic inflammation as we age. If this process can be accurately targeted, it could unlock ways to stay healthier in our later years.

The discovery centers on the unique strands of DNA contained within our mitochondria, the power stations of our cells. By banishing their 'mtDNA' into the surrounding cytoplasm, mitochondria can cause inflammation. Yet just how or why this happens has never been well understood.

In this study, researchers led by a team from the Max Planck Institute for Biology of Ageing in Germany analyzed tissue samples from humans and test animals, using mice genetically engineered to be models of aging and disease.

Researchers have discovered a key molecular process that may contribute to chronic inflammation as we age. If this process can be accurately targeted, it could unlock ways to stay healthier in our later years.

The discovery centers on the unique strands of DNA contained within our mitochondria, the power stations of our cells. By banishing their 'mtDNA' into the surrounding cytoplasm, mitochondria can cause inflammation. Yet just how or why this happens has never been well understood.

In this study, researchers led by a team from the Max Planck Institute for Biology of Ageing in Germany analyzed tissue samples from humans and test animals, using mice genetically engineered to be models of aging and disease.

Past research has shown that deoxyribonucleotides become less abundant as we grow older, meaning there are fewer genetic building blocks in older cells and in tissues that are senescent, or effectively retired from active duty.

This latest investigation reveals that a lack of these building blocks causes mtDNA to pick up ribonucleotides instead, which may explain why mitochondria reject 'imperfect' copies of this molecule.

That rejection is potentially one of the key drivers behind the inflammation that comes with old age, and the negative health consequences associated with it – from certain types of cancer to neurodegenerative diseases like Alzheimer's.

 

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

 

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Scientists Discover a Way to 'Recharge' Aging Human Cells

New research shows how human cells can be effectively 'recharged' by replacing their internal batteries – microscopic power stations called mitochondria – and the discovery could have wide-ranging benefits across healthcare and medical treatments.

The stacks of mitochondria in most of our cells naturally decline in numbers, slow down, and wear out with age. Once they start operating below peak capacity, they can contribute to multiple diseases everywhere from the heart to the brain.

In this latest study, researchers from Texas A&M University used special flower-shaped particles called nanoflowers to scavenge damaging oxygen molecules, triggering genes that increase the number of mitochondria in human stem cells. 

Crucially, those energy-boosted stem cells could then share their mitochondria with old and damaged neighboring cells. It's more of a battery swap than a recharge, but it means existing cells that have stopped functioning can get back to work.

"We have trained healthy cells to share their spare batteries with weaker ones," says biomedical engineer Akhilesh Gaharwar.

"By increasing the number of mitochondria inside donor cells, we can help aging or damaged cells regain their vitality – without any genetic modification or drugs."

Made from the compound molybdenum disulfide, the nanoflowers were developed with tiny holes that made them act like sponges capable of soaking up stressful reactive oxygen species in target tissues. This removal was found to trigger the expression of genes that kick mitochondria production up several notches in the experiment's stem cells.

Stem cells are naturally built to share mitochondria, but in these lab experiments, they had many more power stations to spare than normal, which improved the recharging effect on other cells.

Around two times more mitochondria were shared than would normally be expected, the researchers report, and smooth muscle cells, found in the heart, increased by three- to four-fold. In heart cells exposed to damaging chemotherapy, the survival rate of the treated cells improved significantly.

The researchers suggest the approach could be used to rejuvenate cells anywhere in the body: close to the heart for cardiovascular problems, for example, or directly into muscle for cases of muscular dystrophy.

"It's pretty promising in terms of being able to be used for a whole wide variety of cases, and this is just kind of the start," says geneticist John Soukar.

"We could work on this forever and find new things and new disease treatments every day."

This is all very positive, but the researchers themselves admit they're still at the early stages. While the current study supports the possibility of using nanoparticles to enhance mitochondria transfer, the next step is to get it working in animals and people.

Those future tests should tell us more about where the beneficial stem cells could be implanted in the body, and what level of dose would be safe and appropriate. The longer-term impacts of the process also need to be studied.

"This is an early but exciting step toward recharging aging tissues using their own biological machinery," says Gaharwar.

"If we can safely boost this natural power-sharing system, it could one day help slow or even reverse some effects of cellular aging."

The research has been published in PNAS.

 

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

 

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