4.8 Article

BNIP3L-mediated mitophagy is required for mitochondrial remodeling during the differentiation of optic nerve oligodendrocytes

期刊

AUTOPHAGY
卷 17, 期 10, 页码 3140-3159

出版社

TAYLOR & FRANCIS INC
DOI: 10.1080/15548627.2020.1871204

关键词

ATG9A; autophagy; autophagy flux; co-culture; demyelinating diseases; glial cells; mitochondrial dynamics; myelin; oligodendrocyte lineage cells; retinal ganglion cell axons

资金

  1. Eunice Kennedy Shriver National Institute of Child Health and Human Development [NIH R21HD059008-01]
  2. Knights Templar Eye Foundation
  3. National Eye Institute [P30EY001765, 1K99EY029011]
  4. National Institutes of Health [NIH P30 EY08098]
  5. Jennifer Salvitti Davis Chair in Ophthalmology, University of Pittsburgh
  6. Research to Prevent Blindness
  7. University of Pittsburgh

向作者/读者索取更多资源

The differentiation of oligodendrocyte lineage cells involves autophagy and mitochondrial dynamics, with BNIP3L playing a crucial role in the regulation of mitochondrial function and cell viability. Targeting BNIP3L-mediated mitophagy could be a novel therapeutic approach for promoting myelin repair in optic nerve demyelinating diseases.
Retinal ganglion cell axons are heavily myelinated (98%) and myelin damage in the optic nerve (ON) severely affects vision. Understanding the molecular mechanism of oligodendrocyte progenitor cell (OPC) differentiation into mature oligodendrocytes will be essential for developing new therapeutic approaches for ON demyelinating diseases. To this end, we developed a new method for isolation and culture of ON-derived oligodendrocyte lineage cells and used it to study OPC differentiation. A critical aspect of cellular differentiation is macroautophagy/autophagy, a catabolic process that allows for cell remodeling by degradation of excess or damaged cellular molecules and organelles. Knockdown of ATG9A and BECN1 (pro-autophagic proteins involved in the early stages of autophagosome formation) led to a significant reduction in proliferation and survival of OPCs. We also found that autophagy flux (a measure of autophagic degradation activity) is significantly increased during progression of oligodendrocyte differentiation. Additionally, we demonstrate a significant change in mitochondrial dynamics during oligodendrocyte differentiation, which is associated with a significant increase in programmed mitophagy (selective autophagic clearance of mitochondria). This process is mediated by the mitophagy receptor BNIP3L (BCL2/adenovirus E1B interacting protein 3-like). BNIP3L-mediated mitophagy plays a crucial role in the regulation of mitochondrial network formation, mitochondrial function and the viability of newly differentiated oligodendrocytes. Our studies provide novel evidence that proper mitochondrial dynamics is required for establishment of functional mitochondria in mature oligodendrocytes. These findings are significant because targeting BNIP3L-mediated programmed mitophagy may provide a novel therapeutic approach for stimulating myelin repair in ON demyelinating diseases.

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