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Published on: September 11, 2013
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.
Abstract:
The voltage-dependent anion channel 1 (VDAC1) was first described as a mitochondrial porin that mediates the flux of metabolites and ions, thereby integrating both cell survival and death signals. In the nervous system, the functional roles of VDAC1 remain poorly understood. Herein, the rat retina was employed to study VDAC1. First, it was observed that even subtle changes in VDAC1 levels affect neuronal survival, inducing severe alterations in the retinal morphology. We next examined the regulation of VDAC1 after traumatic retinal injury. After mechanical trauma, SOD1 translocates towards the nucleus, which is insufficient to contain the consequences of oxidative stress, as determined by the evaluation of protein carbonylation. Using in vitro models of oxidative stress and mechanical injury in primary retinal cell cultures, it was possible to determine that inhibition of VDAC1 oligomerization by 4'-diisothiocyano-2,2'-disulfonic acid stilbene (DIDS) rescues cell viability, impacting microglial cell activation. We next focused on the regulation of VDAC1 after retinal mechanical injury. VDAC1 was promptly upregulated 2 h after lesion in the plasma membrane and endoplasmic reticulum rather than in the mitochondria, and multimers of VDAC1 were assembled after lesion. DIDS intraocular application decreased apoptosis and prevented microglial polarization, which confirmed in vitro observations. Considering the role of microglia in neuroinflammation, multiplex evaluation of cytokines showed that DIDS application disorganized the inflammatory response 2 h after the lesion, matching the fast regulation of VDAC1. Taken together, data disclosed that fine regulation of VDAC1 influences neuronal survival, and pharmacological inhibition after trauma injury has neuroprotective effects. This protection may be attributed to the effects on VDAC1 abnormal accumulation in the plasma membrane, thereby controlling the activation of microglial cells. We concluded that VDAC1 is a putative therapeutic target in neuronal disorders since it integrates both death and survival cellular signaling.
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.

