Tuesday, July 28, 2026
This Big Influence
  • Home
  • World
  • Podcast
  • Politics
  • Business
  • Health
  • Tech
  • Awards
  • Shop
No Result
View All Result
This Big Influence
No Result
View All Result
Home Health

Iron’s Surprising Role in Alzheimer’s Uncovered

ohog5 by ohog5
May 1, 2023
in Health
0
Iron’s Surprising Role in Alzheimer’s Uncovered
74
SHARES
1.2k
VIEWS
Share on FacebookShare on Twitter


Brain Decline Dementia Analysis Concept

Researchers have found a doable hyperlink between iron within the mind and Alzheimer’s illness utilizing a brand new imaging probe. This breakthrough might present new insights into the function of iron in Alzheimer’s and information the event of latest remedies focusing on iron redox adjustments.

What if amyloid beta plaques aren’t the principle reason for Alzheimer’s disease?

There is a growing body of evidence that iron in the brain may play a role in Alzheimer’s disease. Lending weight to that idea, a new imaging probe has for the first time shown that in the same regions of the brain where the amyloid beta plaques associated with Alzheimer’s occur, there is also an increase in iron redox, meaning the iron in these regions is more reactive in the presence of oxygen. Their imaging probe could yield even more details about the causes of Alzheimer’s and help in the search for new drugs to treat it.

A team from The University of Texas at Austin and the University of Illinois at Urbana-Champaign published a study on the new imaging technique and findings in Science Advances.

“The link between iron redox and Alzheimer’s disease has been a black box,” said Yi Lu, corresponding author and professor of chemistry at UT Austin. “The most exciting part to me is that we now have a way to shine light into this black box so that we can begin to understand this whole process in much more detail.”

Novel Iron Sensor

Schematic of a novel iron sensor. When a short strand of DNA called a DNAzyme (green) binds to a specific form of iron (e.g., Fe3+ or Fe2+), the DNAzyme cuts a second strand of DNA (red) and releases a fluorescent signal (yellow) that indicates visually the presence of the specific form of iron. Credit: David Steadman/University of Texas at Austin

About a decade ago, scientists discovered ferroptosis, a process in the body that is dependent on elevated iron levels, leads to cell death and plays a key role in neurodegenerative diseases, such as Alzheimer’s. Using magnetic resonance imaging on living Alzheimer’s patients, scientists have observed that these patients tend to have elevated iron levels in the brain, although that method doesn’t differentiate between different forms of iron. Together, these findings suggested that iron might play a role in destroying brain cells in Alzheimer’s patients.

For the new study, the researchers developed DNA-based fluorescent sensors that can detect two different forms of iron (Fe2+ and Fe3+) at the same time in cell cultures and in brain slices from mice genetically modified to mimic Alzheimer’s. One sensor glows green for Fe2+ and the other glows red for Fe3+. This is the first imaging technique that can simultaneously detect both forms of iron in cells and tissue while also indicating their quantity and spatial distribution.

“The best part about our sensor is that we can now visualize the changes of Fe2+ and Fe3+ and their ratios in each location,” said Yuting Wu, a co-first author of the study and a postdoctoral researcher in Lu’s lab at UT Austin. “We can change one parameter at a time to see if it changes the plaques or the oxidative states of iron.”

Increases in Brain Regions Containing Amyloid Plaques

Researchers developed DNA-based fluorescent sensors that can detect two different forms of iron (Fe2+ and Fe3+) at the same time in cell cultures and in brain slices from mice genetically modified to mimic Alzheimer’s (green image at right). One sensor glows green for Fe2+ and the other glows red for Fe3+. This method has for the first time shown that in the same regions of the brain where the amyloid beta plaques associated with Alzheimer’s occur (blue), there is also an increase in the ratio of Fe2+ and Fe3+. Credit: University of Texas at Austin

That ability could help them better understand why there is an increased ratio of Fe3+ to Fe2+ in the location of amyloid beta plaques and whether increased iron redox is involved in forming the plaques.

Another key question is whether the iron redox is directly involved in cell death in Alzheimer’s, or simply a byproduct. The researchers plan to explore this question in Alzheimer’s mice. If further research determines that iron and its redox changes indeed cause cell death in Alzheimer’s patients, that information could provide a potential new strategy for drug development. In other words, perhaps a drug that change the ratio Fe3+ to Fe2+ could help protect brain cells. The new imaging probe could be used to test how well drug candidates work at changing the ratio.

To develop the sensors, the scientists first hired a commercial lab to produce a library of 100 trillion short DNA strands, through a chemical process called oligonucleotide synthesis. They then conducted a screening process to find those strands that recognize — or in chemistry parlance “bind tightly to and conduct a catalytic reaction with” — a specific form of iron and not any other forms. To complete the sensors, other components were added including molecules called fluorophores that glow in a specific color when the probe recognizes the specific form of iron.

Reference: “Simultaneous Fe2+/Fe3+ imaging shows Fe3+ over Fe2+ enrichment in Alzheimer’s disease mouse brain” by uting Wu, Seyed-Fakhreddin Torabi, Ryan J. Lake, Shanni Hong, Zhengxin Yu, Peiwen Wu, Zhenglin Yang, Kevin Nelson, Weijie Guo, Gregory T. Pawel, Jacqueline Van Stappen, Xiangli Shao, Liviu M. Mirica and Yi Lu, 19 April 2023, Science Advances.
DOI: 10.1126/sciadv.ade7622

Lu, who moved his lab to UT Austin from the University of Illinois at Urbana-Champaign in the summer of 2021, collaborated with researchers there including professor of chemistry Liviu Mirica.

This work was supported by the National Institutes of Health, the Alzheimer’s Association and the Robert A. Welch Foundation. Lu holds the Richard J.V. Johnson – Welch Regents Chair in Chemistry.





Source link

You might also like

Which One Shows the Most Promise?

Cigna Healthcare Expands AI-Enabled Care Management to Reach 20% More Customers

Magnetic Nanoparticles Restore Movement in Mice With Parkinson’s-Like Symptoms

Tags: AlzheimersIronsRoleSurprisingUncovered
Share30Tweet19
ohog5

ohog5

Recommended For You

Which One Shows the Most Promise?

by ohog5
July 27, 2026
0
Which One Shows the Most Promise?

A laboratory comparability of pure compounds revealed a promising hole between their results on cancerous and wholesome cells. Credit score: ShutterstockA laboratory examine recognized curcumin because the plant...

Read more

Cigna Healthcare Expands AI-Enabled Care Management to Reach 20% More Customers

by ohog5
July 27, 2026
0
Cigna Healthcare Expands AI-Enabled Care Management to Reach 20% More Customers

What You Ought to Know Cigna Healthcare is increasing its personalised care administration applications by 20% utilizing AI-enabled capabilities and predictive analytics to determine people with rising, advanced,...

Read more

Magnetic Nanoparticles Restore Movement in Mice With Parkinson’s-Like Symptoms

by ohog5
July 25, 2026
0
Magnetic Nanoparticles Restore Movement in Mice With Parkinson’s-Like Symptoms

A brand new nanoparticle-based strategy improved motion in a mouse mannequin of Parkinson’s illness. The approach might ultimately supply a extra versatile different to standard deep mind stimulation....

Read more

Medidata Launches Medidata Plus AI Layer to Standardize Clinical Trial Data and Workflows

by ohog5
July 25, 2026
0
Medidata Launches Medidata Plus AI Layer to Standardize Clinical Trial Data and Workflows

What You Ought to Know Medidata, a Dassault Systèmes model, has launched Medidata Plus, an embedded scientific synthetic intelligence layer designed to unlock scalable AI capabilities throughout all...

Read more

Could Young Stem Cells Be the Key to Healthier Aging?

by ohog5
July 23, 2026
0
Could Young Stem Cells Be the Key to Healthier Aging?

Younger blood stem cells restored key blood-forming and immune features in aged mice with out chemotherapy or radiation. Credit score: ShutterstockA gentler stem cell transplant rejuvenated getting older...

Read more
Next Post
ManTech hires new Navy business head – Washington Technology

ManTech hires new Navy business head - Washington Technology

Leave a Reply

Your email address will not be published. Required fields are marked *

Related News

Republicans are finding out that John Fetterman punches back

Republicans are finding out that John Fetterman punches back

September 19, 2023
Mystery Solved: Scientists Discover Why Perovskite Solar Cells “Melt”

Mystery Solved: Scientists Discover Why Perovskite Solar Cells “Melt”

November 6, 2025
In Must See Video, Rachel Maddow Lays Out The Stakes For Trump In 2024

In Must See Video, Rachel Maddow Lays Out The Stakes For Trump In 2024

August 29, 2023

Browse by Category

  • Business
  • Health
  • Politics
  • Tech
  • World

Recent News

Which One Shows the Most Promise?

Which One Shows the Most Promise?

July 27, 2026
Cigna Healthcare Expands AI-Enabled Care Management to Reach 20% More Customers

Cigna Healthcare Expands AI-Enabled Care Management to Reach 20% More Customers

July 27, 2026

CATEGORIES

  • Business
  • Health
  • Politics
  • Tech
  • World

Follow Us

Recommended

  • Which One Shows the Most Promise?
  • Cigna Healthcare Expands AI-Enabled Care Management to Reach 20% More Customers
  • Magnetic Nanoparticles Restore Movement in Mice With Parkinson’s-Like Symptoms
  • Medidata Launches Medidata Plus AI Layer to Standardize Clinical Trial Data and Workflows
No Result
View All Result
  • Home
  • World
  • Podcast
  • Politics
  • Business
  • Health
  • Tech
  • Awards
  • Shop

© 2023 ThisBigInfluence

Are you sure want to unlock this post?
Unlock left : 0
Are you sure want to cancel subscription?