October 05, 2026 04:36 am (IST)
Follow us:
facebook-white sharing button
twitter-white sharing button
instagram-white sharing button
youtube-white sharing button
Asian Games 2026: India beat Pakistan to clinch gold in men's cricket | flydubai cockpit attack: Deleted posts expose Omani co-pilot’s views on women, alleged extremist past | flydubai cockpit horror: Omani co-pilot Hamam al-Hammami attacked Captain Smit Machchhar with crash axe, tried to seize control | flydubai temporarily suspends all Israel flights after co-pilot’s alleged cockpit attack, crash attempt | Grounded in Oman over ‘radical views’, then hired by flydubai: What we know about Omani pilot Hamam al-Hammami | ‘Hanuman Chalisa gave me courage’: Smit Machchhar recounts flydubai cockpit battle to PM Modi | PM Modi speaks to Flydubai pilot Smit Machchhar who foiled crash plot, praises his courage | Putin praises Modi’s ‘good ideas’ to end Ukraine war, thanks Indian PM for peace efforts | Flydubai cockpit attack: Injured Indian pilot Smit Machchhar airlifted to Abu Dhabi | India backs brave flydubai pilot Smit Machchhar, Ambassador meets family after cockpit attack

Researchers discover drug that could combat brain cell death in those with Alzheimer’s disease

| @indiablooms | Oct 28, 2018, at 06:18 pm

New York, Oct 28 (IBNS): One of the hallmark traits of Alzheimer’s disease, a debilitating disorder marked by memory deficits and general cognitive decline, is the accumulation in the brain of a protein called b-amyloid. These proteins form “plaques” and bind to unique proteins on the surface of brain cells called receptors, causing widespread cell death.

Now, UCLA researchers have discovered a drug that blocks b-amyloid plaques from attaching to brain cells, preventing the extensive cell death. The study was published in the journal Nature Chemistry.

Dr. Lin Jiang, assistant professor of neurology, working with David Eisenberg, a professor of chemistry and biochemistry and of biological chemistry at UCLA, identified the plaque binding site of b-amyloid to its receptor by determining the three-dimensional structure. Knowledge of this interaction is a critical first step toward finding a drug to prevent the interaction between the toxic proteins and brain cells. Jiang and his team then used computer software to assist them in the drug selection process.

“We were searching for a molecule that could block the receptor like a shield, preventing b-amyloid from binding to and killing brain cells,” Jiang said.

In order to find molecular candidates to block the b-amyloid/brain cell interaction, Jiang and colleagues searched a library containing more than 32,000 molecules. This list contained drugs that are approved for human use, are currently in clinical trial, or are naturally occurring. This meant that many characteristics of the drug candidates were already known and they were safe for human use.

From this list of molecules, one drug, ALI6, showed promising results in cell-based experiments.

Jiang and his team cultured mouse brain cells and exposed them to the toxic b-amyloid proteins, then treated some cells with ALI6 and compared levels of cell death between groups. ALI6 treatment almost completely prevented the cell death caused by b-amyloid, suggesting that the drug could eventually be explored to treat Alzheimer’s disease.

ALI6 is a promising candidate. Not only is it non-toxic but it can also move from the bloodstream to the brain, a critical trait for any drug aimed at treating central nervous system disorders such as Alzheimer’s disease. In addition, ALI6 offers a distinct advantage over other treatments.

“Currently, many drugs are aimed at preventing the b-amyloid proteins from accumulating and forming into plaques because that is the dangerous form of the protein,” Jiang said. “However, when a person is diagnosed with Alzheimer’s, many of the b-amyloid plaques have already formed, so the time window for treatment is already closing.”

Alzheimer’s disease is the sixth-leading cause of death in the United States, with an estimated 5.5 million people currently living with the disease.

The findings of this study would need to be confirmed in further tests in animals before human studies could begin.

The study’s other authors include: Qin Cao, Woo Shik Shin, Henry Chan, Celine Vuong, Bethany Dubois, Binsen Li, Kevin Murray, Michael Sawaya, Juli Feigon and Douglas Black, all of UCLA.

This study was funded by the Turken Research Award and departmental recruitment funds to Jiang; as well as grants from the National Institutes of Health, Department of Energy and Howard Hughes Medical Institute to Eisenberg.

 

Image: Wikimedia Commons

Support Our Journalism

We cannot do without you.. your contribution supports unbiased journalism

IBNS is not driven by any ism- not wokeism, not racism, not skewed secularism, not hyper right-wing or left liberal ideals, nor by any hardline religious beliefs or hyper nationalism. We want to serve you good old objective news, as they are. We do not judge or preach. We let people decide for themselves. We only try to present factual and well-sourced news.

Support objective journalism for a small contribution.