PsyPost
  • Mental Health
  • Social Psychology
  • Cognitive Science
  • Neuroscience
  • About
No Result
View All Result
Join
My Account
PsyPost
No Result
View All Result
Home Exclusive Mental Health Dementia Alzheimer's Disease

Mitochondrial dysfunction could be an overlooked culprit in Alzheimer’s disease

by Afshan Malik
April 14, 2023
Reading Time: 4 mins read
(Photo credit: Adobe Stock)

(Photo credit: Adobe Stock)

Share on TwitterShare on Facebook

Scientists have been working to understand the root causes of dementia and Alzheimer’s disease for decades now. But one of the reasons we don’t yet have a cure for this disease is because of the complexity of the human brain – alongside the complexity of the disease itself.

One of the leading theories in the field suggests that Alzheimer’s disease is caused by the abnormal accumulation of two proteins called amyloid beta and tau in the brain, resulting in plaques and tangles. Amyloid plaques are clumps that form between neurons, which can damage surrounding cells, while tau tangles block communication between nerve cells.

For years now, scientists have been trying to understand how the accumulation of these proteins begins and how this affects brain health, leading to memory loss. Despite the huge amount of research that’s happened to date, there’s not been much success in treating and preventing Alzheimer’s disease.

This has led many experts in the field to wonder whether there’s something else we should also be looking at in the brain when it comes to understanding and curing Alzheimer’s disease.

A recent article in New Scientist describes an idea which could be important in the field of brain health. This article highlights an alternative theory: that damage to mitochondria (the energy-producing structures within cells) could actually be the cause of Alzheimer’s.

Energy deficit

Mitochondria are found in virtually all the body’s cells. They use both oxygen and breakdown products from food to make a high energy molecule known as adenosine triphosphate (ATP). ATP is like your cells’ energy currency – kind of like a rechargeable battery. Our cells use ATP for the energy needed to carry out everyday functions and maintain their own health. Once used up, mitochondria can reload it with energy.

Mitochondria also have a host of other functions important for cellular health, such as telling the cell’s nucleus (the cell’s hub of genetic information) to carry out important functions, and sending signals to other cells. They’re also packed full of antioxidants – molecules that protect cells from damage.

Mitochondria are particularly important for the brain. The human brain only accounts for around 2% of our total body weight, yet even at rest, the brain uses around 20% of the body’s total energy expenditure. As the control centre of the body, the brain needs this energy in order to carry out its many important functions which make virtually everything we do possible – whether that’s blinking, smiling or memorising a poem.

Google News Preferences Add PsyPost to your preferred sources

So, our brain cells – particularly our neurons, the brain cells that send and receive signals from our brain to the rest of the body – have high energy needs. This is why each neuron can contain thousands of mitochondria.

It’s thought that neurons are formed at birth and do not get regenerated at any point in a person’s life. Instead, their mitochondria and cellular parts are constantly turning over and being renewed. This ensures that their mitochondria remain healthy – which in turns ensures the neuron can function properly. Essentially, this means that as long as the mitochondria are healthy, the neuron is too.

But what would happen if the mitochondria stopped being able to produce enough energy for our cells to carry out their functions and repair damage? This would mean the cells may start to accumulate damage. In neurons, this could result in damage – and even death.

This is the foundation of the mitochondrial cascade hypothesis.

Mitochondrial loss

The mitochondrial cascade hypothesis was actually first published by scientist and clinician professor Russell Swerdlow in 2004. This landmark article reviewed numerous studies which had previously found evidence of mitochondrial damage in Alzheimer’s disease. In the paper, Swerdlow proposed a new theory suggesting that problems with mitochondria and their function could provide an alternative explanation for why Alzheimer’s disease develops.

However, despite increasing evidence showing mitochondrial loss in the neurons of patients with Alzheimer’s, the idea that mitochondrial dysfunction could be a cause has remained on the fringes of dementia research. There are many reasons why this is the case.

First, a large proportion of the limited funding given to dementia research in the past few decades has gone to scientists studying amyloid beta and tau. This was thanks to promising studies in the field which suggested that removing or reducing the amount of amyloid beta and tau in the brain could have an effect on cognitive function.

Second, until relatively recently the methods used to study mitochondria in humans have been limited – meaning that we’ve also been limited in our ability to detect, prevent or cure mitochondrial dysfunction. But developments in the field may soon make it possible to transfer healthy mitochondria into cells. This could therefore allow us to study what would happen if we replaced damaged mitochondria in the neurons of patients with Alzheimer’s disease.

But while it’s clear that problems with the brain’s mitochondria are linked to neurodegenerative diseases, there are still many questions we need to answer before we can start developing treatments. For example, we need to understand what damages the brain’s mitochondria, and how to prevent this damage.

Dementia is a complex disease. This may mean there isn’t a one-size-fits-all cure for it. It could be the case that we may need to target multiple different mechanisms in order to treat the disease.The Conversation

 

This article is republished from The Conversation under a Creative Commons license. Read the original article.

TweetSendScanShareSendPinShareShareShareShareShare

Follow PsyPost

The latest research, however you prefer to read it.

Daily newsletter

One email a day. The newest research, nothing else.

Google News

Get PsyPost stories in your Google News feed.

Add PsyPost to Google News
RSS feed

Use your favorite reader.

Copy RSS URL
Social media
Support independent science journalism

Ad-free reading, full archives, and weekly deep dives for members.

Become a member

Trending

  • A specific thinking style explains why dark personality traits are linked to creativity
  • Adolescent narcissism brings brief popularity but not likeability among peers, study finds
  • A 20-minute workout protects memory after sleep loss just as well as a 90-minute nap
  • How personality and social context shape adolescent loneliness
  • Weightlifting offers large antidepressant effects for young women with anxiety, regardless of intensity

Science of Money

  • Why highly adaptable business clients aren’t always the most satisfied
  • The four ways underdog startups survive corporate giants
  • How AI-generated plain English changes investor interest in mutual funds
  • What 18 years of brokerage data reveals about selling losing stocks
  • When edgy brands meet manipulative consumers: The backfire effect of dark personalities

Recent

  • Researchers launch global tracking project to measure the daily mental health impacts of cannabis
  • New study challenges the core assumption behind the world’s most widely used implicit bias test
  • Common antidepressants might help liver cells clear a dangerous type of cholesterol
  • Massive study of over a million people identifies hundreds of genetic variants linked to personality
  • A child’s genetic profile for ADHD can predict their parents’ risk of separation
  • Universal two-child policy linked to increased depression among Chinese women
  • Are gender differences really power differences? Large-scale analysis finds strong behavioral parallels
  • Body roundness index linked to depression risk in older adults with dementia
  • A specific thinking style explains why dark personality traits are linked to creativity
  • Private touch matters more than public affection for relationship quality

PsyPost is a psychology and neuroscience news website dedicated to reporting the latest research on human behavior, cognition, and society. (READ MORE...)

  • Mental Health
  • Neuroimaging
  • Personality Psychology
  • Social Psychology
  • Artificial Intelligence
  • Cognitive Science
  • Psychopharmacology
  • Contact us
  • Disclaimer
  • Privacy policy
  • Terms and conditions

(c) PsyPost Media Inc

Welcome Back!

Login to your account below

Forgotten Password?

Retrieve your password

Please enter your username or email address to reset your password.

Log In

Add New Playlist

Subscribe
  • My Account
  • Cognitive Science Research
  • Mental Health Research
  • Social Psychology Research
  • Drug Research
  • Relationship Research
  • About PsyPost
  • Contact
  • Privacy Policy

(c) PsyPost Media Inc