Efa6 protects axons and regulates their growth and branching by inhibiting microtubule polymerisation at the cortex

Yue Qu1, Ines Hahn1, Meredith Lees1

  • 1Manchester Academic Health Science Centre, Faculty of Biology, Medicine and Health, School of Biological Sciences, The University of Manchester, Manchester, United Kingdom.

Elife
|November 14, 2019
PubMed

Insights

Cortical collapse factors, like Drosophila Efa6, regulate neuron microtubule (MT) dynamics. Loss of Efa6 promotes axon growth, while its overexpression inhibits it, revealing roles in branching and preventing atrophy.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Molecular Biology

Background:

  • Cortical collapse factors influence microtubule (MT) dynamics at the plasma membrane.
  • Their roles in neuronal development, including axon growth and regeneration, are implicated by studies on Efa6 in *C. elegans* and Kif21A in mammals.
  • The precise mechanisms by which these factors affect axon growth remain poorly understood.

Purpose of the Study:

  • To investigate the function of *Drosophila* Efa6 in regulating MT dynamics and axon growth in fly neurons.
  • To elucidate the molecular mechanisms underlying Efa6's role in neuronal development.

Main Methods:

  • Investigated the function of *Drosophila* Efa6 in fly neurons.
  • Utilized in vitro and cell-based assays to study the MT elimination domain (MTED) of Efa6.
  • Examined phenotypes associated with Efa6 loss-of-function and overexpression in neurons.

Main Results:

  • *Drosophila* Efa6 directly inhibits MTs via its N-terminal MTED, which binds tubulin and halts MT growth.
  • Cytoplasmic MTED fragments disrupt microtubule networks in fibroblasts and axons.
  • Loss of Efa6 increases explorative MTs, promoting axon growth but causing excessive branching and atrophy; Efa6 overexpression yields opposite effects.

Conclusions:

  • *Drosophila* Efa6 links molecular functions of cortical collapse factors to sub-cellular MT regulation and axon growth.
  • Efa6 plays critical roles in regulating axon branching and preventing axonal atrophy.
  • The MTED serves as a tool for compartmentalized MT inhibition when fused to specific protein domains.

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