The Difference in the Cytoskeletal Machinery of Growth Cones of Growing Axons and Leading Processes

Dev Neurosci. 2022;44(6):455-465. doi: 10.1159/000522200. Epub 2022 Jan 31.

Abstract

Neuronal migration and axon elongation in the developing brain are essential events for neural network formation. Leading processes of migrating neurons and elongating axons have growth cones at their tips. Cytoskeletal machinery for advance of growth cones of the two processes has been thought the same. In this study, we compared axonal-elongating growth cones and leading-process growth cones in the same conditions that manipulated filopodia, lamellipodia, and drebrin, the latter mediates actin filament-microtubule interaction. Cerebral cortex (CX) neurons and medial ganglionic eminence (MGE) neurons from embryonic mice were cultured on less-adhesive cover glasses. Inhibition of filopodia formation by triple knockdown of mammalian-enabled, Ena-VASP-like, and vasodilator-stimulated phosphoprotein or double knockdown of Daam1 and fascin affected axon formation of CX neurons but did not affect the morphology of leading process of MGE neurons. On the other hand, treatment with CK666, to inhibit lamellipodia formation, did not affect axons but destroyed the leading-process growth cones. When drebrin was knocked down, the morphology of CX neurons remained unchanged, but the leading processes of MGE neurons became shorter. In vivo assay of radial migration of CX neurons revealed that drebrin knockdown inhibited migration, while it did not affect axon elongation. These results showed that the filopodia-microtubule system is the main driving machinery in elongating growth cones, while the lamellipodia-drebrin-microtubule system is the main system in leading-process growth cones of migrating neurons.

Keywords: Axon guidance; Cytoskeleton; Drebrin; Growth cone; Migration.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Axons*
  • Cell Movement / physiology
  • Growth Cones* / physiology
  • Mammals
  • Mice
  • Microfilament Proteins
  • Neurogenesis
  • Neurons
  • rho GTP-Binding Proteins

Substances

  • Daam1 protein, mouse
  • Microfilament Proteins
  • rho GTP-Binding Proteins