Toxicity inhibitors protect lipid membranes from disruption by Aβ42

Ravit Malishev1, Sukhendu Nandi1, Sofiya Kolusheva2

  • 1Department of Chemistry, Ben Gurion University of the Negev , Beer Sheva 84105, Israel.

Insights

Researchers investigated how Alzheimer's disease (AD) inhibitors affect amyloid-beta (Aβ) interactions with cell membranes. Preventing Aβ42 membrane binding significantly reduces toxicity, suggesting a key therapeutic target for AD.

Area of Science:

  • Neuroscience
  • Biochemistry
  • Molecular Biology

Background:

  • Alzheimer's disease (AD) pathogenesis involves amyloid-beta protein (Aβ) interactions with cellular membranes.
  • Current therapeutic strategies primarily target Aβ self-assembly, often overlooking its membrane interactions.

Purpose of the Study:

  • To investigate the impact of three distinct Aβ42 toxicity inhibitors on its membrane interactions.
  • To determine if inhibiting Aβ42-membrane interactions contributes to the overall toxicity reduction.

Main Methods:

  • Utilized biophysical experiments to assess the effects of Aβ(39-42), EGCG, and CLR01 on Aβ42 membrane interactions.
  • Examined how pre-incubation of inhibitors with Aβ42 influences membrane disruption.

Main Results:

  • Each inhibitor modulated Aβ42 membrane interactions differently.
  • Pre-incubation of Aβ42 with inhibitors attenuated their individual membrane interactions.
  • All three compounds significantly inhibited Aβ42 membrane interactions, correlating with reduced toxicity.

Conclusions:

  • Interference with Aβ42-membrane interactions is a crucial mechanism for toxicity inhibition.
  • Therapeutic strategies for AD should consider targeting Aβ42 membrane interactions alongside assembly inhibition.

Related Concept Videos

Alzheimer's Disease: Treatment01:22

Alzheimer's Disease: Treatment

Alzheimer's Disease (AD), a neurodegenerative disorder, is pathologically identified by amyloid plaques and neurofibrillary tangles composed of tau protein. AD pharmacotherapy aims to manage cognitive symptoms, delay disease progression, and treat behavioral symptoms. The treatment is primarily symptomatic and palliative, with no definitive disease-modifying therapy available. Cholinesterase inhibitors, including donepezil (Aricept), rivastigmine (Exelon), and galantamine (Razadyne), are...
1.2K
Enzyme Inhibition01:30

Enzyme Inhibition

Inhibitors are molecules that reduce enzyme activity by binding to the enzyme. In a normally functioning cell, enzymes are regulated by a variety of inhibitors. Drugs and other toxins can also inhibit enzymes. Some inhibitors bind to the enzyme’s active site, while others inhibit enzymatic activity by binding to other sites on the protein structure.
95.1K
Antidotes01:17

Antidotes

Antidotes are medicinal substances used to counteract the harmful effects of toxins or drugs in the body. They function in various ways, each uniquely designed to combat specific toxic compounds.
Specific antidotes operate by inhibiting the enzymes that control biochemical pathways, reducing the production of harmful metabolites.
An example of an antidote is atropine, which counteracts the detrimental effects of cholinesterase inhibitors. It achieves this by deactivating muscarinic receptors,...
1.3K
Antifungal Agents01:15

Antifungal Agents

Amphotericin B is a broad-spectrum antifungal agent that exploits structural differences between fungal and mammalian cell membranes. Its amphipathic structure—featuring a hydrophobic polyene-lactone ring and a hydrophilic region containing mycosamine and carboxylic acid groups—enables selective binding to ergosterol, a sterol predominantly found in fungal plasma membranes. This selective interaction underlies the drug’s antifungal activity, although weak binding to...
62
Drug toxicity: Drug–Drug Interaction01:30

Drug toxicity: Drug–Drug Interaction

Drug–drug interactions can precipitate toxicity through multiple mechanisms. Absorption interactions alter how drugs enter the body, exemplified when ranitidine increases the absorption of basic drugs, while cholestyramine decreases the levels of propranolol. Protein binding interactions occur when drugs share the same binding sites on plasma proteins. Drugs like aspirin and warfarin, when bound in excess, can lead to increased free drug concentrations, enhancing the potential for...
341
Anticholinesterase Agents: Poisoning and Treatment01:26

Anticholinesterase Agents: Poisoning and Treatment

Anticholinesterases, also known as cholinesterase inhibitors, work by blocking the breakdown of acetylcholine, leading to its accumulation in the synaptic cleft. This accumulation indirectly enhances both muscarinic and nicotinic actions. These agents are classified as reversible or irreversible based on their mechanism of action.     
Irreversible agents form a strong bond with the cholinesterase enzyme, making it inactive. The breakdown of the phosphorylated enzyme is...
2.0K