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Proteasome inhibition suppresses schwann cell dedifferentiation in vitro and in vivo

  • Hyun Kyoung Lee
  • , Yoon Kyung Shin
  • , Junyang Jung
  • , Su Yeong Seo
  • , Sun Yong Baek
  • , Hwan Tae Park

Research output: Contribution to journalArticlepeer-review

57 Citations (Scopus)

Abstract

The ubiquitin-proteasome system (UPS), lysosomes, and autophagy are essential protein degradation systems for the regulation of a variety of cellular physiological events including the cellular response to injury. It has recently been reported that the UPS and autophagy mediate the axonal degeneration caused by traumatic insults and the retrieval of nerve growth factors. In the peripheral nerves, axonal degeneration after injury is accompanied by myelin degradation, which is tightly related to the reactive changes of Schwann cells called dedifferentiation. In this study, we examined the role of the UPS, lysosomal proteases, and autophagy in the early phase of Wallerian degeneration of injured peripheral nerves. We found that nerve injury induced an increase in the ubiquitin conjugation and lysosomal-associated membrane protein-1 expression within 1 day without any biochemical evidence for autophagy activation. Using an ex vivo explant culture of the sciatic nerve, we observed that inhibiting proteasomes or lysosomal serine proteases prevented myelin degradation, whereas this was not observed when inhibiting autophagy. Interestingly, proteasome inhibition, but not leupeptin, prevented Schwann cells from inducing dedifferentiation markers such as p75 nerve growth factor receptor and glial fibrillary acidic protein in vitro and in vivo. In addition, proteasome inhibitors induced cell cycle arrest and cellular process formation in cultured Schwann cells. Taken together, these findings indicate that the UPS plays a role in the phenotype changes of Schwann cells in response to nerve injury.

Original languageEnglish
Pages (from-to)1825-1834
Number of pages10
JournalGLIA
Volume57
Issue number16
DOIs
Publication statusPublished - 2009

Keywords

  • Demyelination
  • Glial fibrillary acidic protein
  • Nerve injury
  • Ubiquitin
  • p75

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