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Van Dyck, A.

Publications and source records attributed to Van Dyck, A..

2 recordsLinked to original sources

Successful axonal regeneration is driven by evolutionarily conserved metabolic reprogramming

Unlike mammals, zebrafish can regrow axons after injury and restore circuit function in the central nervous system (CNS). Mitochondria have been identified as key players in this process, but how different metabolic pathways work together to sustain regeneration remains unclear. Using RNA sequencing of adult zebrafish retinal ganglion cells after optic nerve crush injury, we found that oxidative phosphorylation is downregulated during axonal regrowth. Simultaneously, the thioredoxin antioxidant system was upregulated, likely to limit oxidative damage. Additionally, we observed an integrated upregulation of glycolysis and the pentose phosphate pathway during the initial regrowth phases, possibly to provide energy and supplying NADPH for biosynthesis and antioxidant responses. We show that this metabolic reprogramming is evolutionarily conserved, as a comparable one occurs in the pro-regenerative mammalian Pten and Socs3 co-deletion model. Inhibiting glycolysis and thioredoxin in zebrafish impairs axonal regrowth, suggesting that targeting these pathways could enhance CNS regeneration in mammals.

neuroscience↗

Local glycolysis supports injury-induced axonal regeneration

Successful axonal regeneration following injury requires the effective allocation of energy. Mitochondria play a pivotal role, accumulating at the tips of growing axons to fuel regeneration. However, how axons withstand the initial disruption in mitochondrial energy production caused by the injury, and subsequently initiate regrowth is poorly understood. Using retinal cultures in a multicompartment microfluidic device, we observed increased regrowth and enhanced mitochondrial trafficking in the axons of retinal ganglion cells with the deletion of both Pten and Socs3. While wild-type axons relied on mitochondrial metabolism, after injury, in the absence of Pten and Socs3, energy production was demonstrated to be supported by local glycolysis. Slowing down glycolysis in these axons impaired both regrowth and energy production. Together, these observations reveal that glycolytic ATP, combined with sustained mitochondrial transport, is essential for injury-induced axonal regrowth, providing new insights into the metabolic underpinnings of axonal regeneration.

neuroscience↗