Identification and Successful Negotiation of a Metabolic Checkpoint in Direct Neuronal Reprogramming
- PMID: 26748418
- DOI: 10.1016/j.stem.2015.12.003
Identification and Successful Negotiation of a Metabolic Checkpoint in Direct Neuronal Reprogramming
Abstract
Despite the widespread interest in direct neuronal reprogramming, the mechanisms underpinning fate conversion remain largely unknown. Our study revealed a critical time point after which cells either successfully convert into neurons or succumb to cell death. Co-transduction with Bcl-2 greatly improved negotiation of this critical point by faster neuronal differentiation. Surprisingly, mutants with reduced or no affinity for Bax demonstrated that Bcl-2 exerts this effect by an apoptosis-independent mechanism. Consistent with a caspase-independent role, ferroptosis inhibitors potently increased neuronal reprogramming by inhibiting lipid peroxidation occurring during fate conversion. Genome-wide expression analysis confirmed that treatments promoting neuronal reprogramming elicit an anti-oxidative stress response. Importantly, co-expression of Bcl-2 and anti-oxidative treatments leads to an unprecedented improvement in glial-to-neuron conversion after traumatic brain injury in vivo, underscoring the relevance of these pathways in cellular reprograming irrespective of cell type in vitro and in vivo.
Copyright © 2016 Elsevier Inc. All rights reserved.
Comment in
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Stressed out? Healing Tips for Newly Reprogrammed Neurons.Cell Stem Cell. 2016 Mar 3;18(3):297-9. doi: 10.1016/j.stem.2016.02.008. Cell Stem Cell. 2016. PMID: 26942845
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Redox homeostasis: unlocking the bottleneck in glia-to-neuron conversion.Stem Cell Investig. 2017 Feb 9;4:7. doi: 10.21037/sci.2017.01.07. eCollection 2017. Stem Cell Investig. 2017. PMID: 28217709 Free PMC article. No abstract available.
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