Menadione sodium bisulfite inhibits the toxic aggregation of amyloid-β(1-42)

Yu Zhang1, Yudan Zhao1, Zhuoyi Wang1

  • 1Tongji School of Pharmacy, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China.

Insights

Menadione sodium bisulfite (MSB) inhibits amyloid-beta 42 aggregation, a key factor in Alzheimer's disease (AD). MSB shows therapeutic potential by reducing toxic protein clumps and improving lifespan in model organisms.

Area of Science:

  • Neuroscience
  • Biochemistry
  • Pharmacology

Background:

  • Protein misfolding and aggregation, particularly amyloid-beta 1-42 (Aβ42), are implicated in Alzheimer's disease (AD) pathogenesis.
  • 1,4-naphthoquinone (NQ) demonstrates anti-aggregation properties but suffers from toxicity and poor solubility.
  • Menadione sodium bisulfite (MSB), a clinically used vitamin K3 derivative, shares structural similarities with NQ.

Purpose of the Study:

  • To investigate the potential of MSB as an inhibitor of Aβ42 amyloid formation.
  • To explore the therapeutic efficacy of MSB in cellular and organismal models of Alzheimer's disease.

Main Methods:

  • In vitro studies assessing MSB's effect on Aβ42 aggregation kinetics and secondary structure.
  • Cell-based assays using cells with pathogenic APP mutations to evaluate intracellular Aβ aggregation.
  • In vivo studies using Caenorhabditis elegans expressing human Aβ42 to assess lifespan extension.

Main Results:

  • MSB dose-dependently inhibited Aβ42 amyloid formation and delayed the conversion to β-sheet structures.
  • MSB attenuated the membrane-disrupting effects of Aβ42 aggregates.
  • The quinone backbone, not lipophilicity, was identified as crucial for MSB's inhibitory activity.
  • MSB reduced intracellular Aβ aggregation in cells with an Osaka APP mutation.
  • MSB treatment significantly extended the lifespan of Aβ42-expressing C. elegans.

Conclusions:

  • MSB effectively inhibits Aβ42 aggregation and its associated toxicity.
  • MSB demonstrates therapeutic potential in cellular and animal models relevant to Alzheimer's disease.
  • MSB and its derivatives warrant further investigation as potential therapeutic agents for AD prevention or treatment.

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