Protective effects of reduced dynamin-related protein 1 against amyloid beta-induced mitochondrial dysfunction and

Maria Manczak1, Ramesh Kandimalla1, David Fry1

  • 1Garrison Institute on Aging, Texas Tech University Health Sciences Center, MS, Lubbock, TX, USA.

Human Molecular Genetics
|September 29, 2016
PubMed

Insights

Reducing dynamin-related protein (Drp1) expression protected against amyloid beta (Aβ) toxicity in Alzheimer's disease models. This reduction improved mitochondrial function and synaptic activity, offering potential therapeutic avenues for AD.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Genetics

Background:

  • Alzheimer's disease (AD) is characterized by amyloid beta (Aβ) induced mitochondrial and synaptic toxicities.
  • Aβ causes mitochondrial fragmentation, impairing neuronal function in AD.
  • The mitochondrial fission protein dynamin-related protein (Drp1) interacts with Aβ, with this interaction increasing as AD progresses.

Purpose of the Study:

  • To investigate the protective effects of reduced dynamin-related protein (Drp1) expression against Aβ-induced mitochondrial and synaptic damage in Alzheimer's disease (AD).
  • To test the hypothesis that partial Drp1 deficiency inhibits Drp1-Aβ interactions, thereby protecting against Aβ-induced toxicities and maintaining neuronal function.

Main Methods:

  • Generated double mutant (APPXDrp1+/-) mice by crossing Drp1+/- mice with APP transgenic mice (Tg2576 line).
  • Measured mRNA and protein levels of genes involved in mitochondrial dynamics, biogenesis, and synaptic function using RT-PCR and immunoblotting.
  • Assessed mitochondrial function and soluble Aβ levels via biochemical methods and ELISA in different mouse lines.

Main Results:

  • APPXDrp1+/- mice exhibited reduced expression of fission genes (Drp1, Fis1) and increased expression of fusion (Mfn1, Mfn2, Opa1), biogenesis (Nrf1, Nrf2, PGC1α, TFAM), and synaptic genes.
  • Mitochondrial dysfunction was reduced, and mitochondrial function was enhanced in APPXDrp1+/- mice compared to APP mice.
  • Soluble Aβ levels were significantly reduced in APPXDrp1+/- mice, indicating that reduced Drp1 decreases Aβ production.

Conclusions:

  • Partial reduction of Drp1 mitigates Aβ production, alleviates mitochondrial dysfunction, and preserves mitochondrial dynamics, biogenesis, and synaptic activity in an AD mouse model.
  • These findings suggest that targeting Drp1 could be a promising therapeutic strategy for Alzheimer's disease.

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