VDAC1 regulates neuronal cell loss after retinal trauma injury by a mitochondria-independent pathway

Erica de Sousa1, Marília Inês Móvio1, Théo Henrique de Lima-Vasconcellos1

  • 1Neurogenetics Laboratory, Centro de Matemática, Computação e Cognição, Universidade Federal do ABC, São Bernardo do Campo, SP, Brazil.

Cell Death & Disease
|April 22, 2022
PubMed

Insights

Voltage-dependent anion channel 1 (VDAC1) regulates neuronal survival in the retina. Inhibiting VDAC1 oligomerization with DIDS offers neuroprotection after traumatic injury by reducing apoptosis and modulating microglial activation.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Ophthalmology

Background:

  • Voltage-dependent anion channel 1 (VDAC1) is a mitochondrial porin regulating cell survival and death signals.
  • The specific roles of VDAC1 in the nervous system, particularly the retina, are not well understood.
  • Neuronal survival and retinal morphology are sensitive to VDAC1 levels.

Purpose of the Study:

  • To investigate the role of VDAC1 in the rat retina, especially after traumatic injury.
  • To explore the therapeutic potential of VDAC1 inhibition in retinal injury models.
  • To understand VDAC1's regulation and impact on neuroinflammation.

Main Methods:

  • Studied VDAC1 expression and localization in rat retinas post-mechanical injury.
  • Utilized in vitro models of oxidative stress and mechanical injury in primary retinal cells.
  • Assessed the effects of VDAC1 inhibition using 4'-diisothiocyano-2,2'-disulfonic acid stilbene (DIDS).
  • Evaluated cell viability, apoptosis, microglial activation, and cytokine profiles.

Main Results:

  • VDAC1 levels significantly impact neuronal survival and retinal structure.
  • Mechanical trauma led to VDAC1 upregulation in the plasma membrane and ER, with multimer assembly.
  • DIDS treatment rescued cell viability in vitro and reduced apoptosis and microglial polarization in vivo.
  • DIDS application modulated the early inflammatory response post-lesion.

Conclusions:

  • Fine-tuning VDAC1 is crucial for neuronal survival.
  • Pharmacological inhibition of VDAC1, particularly its plasma membrane accumulation, provides neuroprotection after retinal trauma.
  • VDAC1 is a potential therapeutic target for neuronal disorders involving cell death and survival signaling.