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Carboxypeptidase E Independently Changes Microtubule Glutamylation, Dendritic Branching, and Neuronal Migration

  • Chen Liang
  • , Damien Carrel
  • , Nisha K. Singh
  • , Liam L. Hiester
  • , Isabelle Fanget
  • , Hyuck Kim
  • , Bonnie L. Firestein

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

Neuronal migration and dendritogenesis are dependent on dynamic changes to the microtubule (MT) network. Among various factors that regulate MT dynamics and stability, post-translational modifications (PTMs) of MTs play a critical role in conferring specificity of regulatory protein binding to MTs. Thus, it is important to understand the regulation of PTMs during brain development as multiple developmental processes are dependent on MTs. In this study, we identified that carboxypeptidase E (CPE) changes tubulin polyglutamylation, a major PTM in the brain, and we examine the impact of CPE-mediated changes to polyglutamylation on cortical neuron migration and dendrite morphology. We show, for the first time, that overexpression of CPE increases the level of polyglutamylated α-tubulin while knockdown decreases the level of polyglutamylation. We also demonstrate that CPE-mediated changes to polyglutamylation are dependent on the CPE zinc-binding motif and that this motif is necessary for CPE action on p150Glued localization. However, overexpression of a CPE mutant that does not increase MT glutamylation mimics the effects of overexpression of wild type CPE on dendrite branching. Furthermore, although overexpression of wild type CPE does not alter cortical neuron migration, overexpression of the mutant may act in a dominant-negative manner as it decreases the number of neurons that reach the cortical plate (CP), as we previously reported for CPE knockdown. Overall, our data suggest that CPE changes MT glutamylation and redistribution of p150Glued and that this function of CPE is independent of its role in shaping dendrite development but plays a partial role in regulating cortical neuron migration.

Original languageEnglish
JournalASN Neuro
Volume14
DOIs
StatePublished - Jan 2022

Bibliographical note

Publisher Copyright:
© The Author(s) 2022.

Funding

The author(s) disclosed receipt of the following financial support for the research, authorship, and/or publication of this article: This work was supported by the National Science Foundation (grant number IOS-1353724), New Jersey Commission on Brain Injury Research (grant number CBIR17IRG006), National Institute of General Medical Sciences (grant number T32 GM008339-28), New Jersey Commission on Spinal Cord Research (grant number CSCR20FEL004), and an Aresty Research Center Fellowship.

FundersFunder number
National Science FoundationCBIR17IRG006, 1353724, IOS-1353724
National Institute of General Medical SciencesT32GM008339
New Jersey Commission on Spinal Cord ResearchCSCR20FEL004

    Keywords

    • carboxypeptidase E
    • p150
    • polyglutamylation
    • zinc-binding motif
    • α-tubulin

    ASJC Scopus subject areas

    • General Neuroscience
    • Clinical Neurology

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