4.3 Article

The GSK3-MAP1B pathway controls neurite branching and microtubule dynamics

期刊

MOLECULAR AND CELLULAR NEUROSCIENCE
卷 72, 期 -, 页码 9-21

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.mcn.2016.01.001

关键词

DRG neurons; Cell neurobiology; Cytoskeleton; Microtubule-associated protein 1B; Neurite outgrowth; Regeneration; GSK signaling; Acetylated microtubules; Detyrosinated microtubules; Tyrosinated microtubules; Nocodazole; SB216763 GSK inhibitor; COS-7 cells; MAP1B-knockout mice; Tubulin-tyrosine ligase (TTL)-deficient mice

资金

  1. IRME (Institut de Recherche pour la Moelle epiniere et l'Encephale)
  2. AFM fellowship (Association Francaise contre les Myopathies)
  3. Neuropole de Recherche Francilien (AO-NERF-PD) [CP 10-686]

向作者/读者索取更多资源

The microtubule-associated protein MAP1B plays a key role in axon regeneration. We investigated the role of GSK3-mediated MAP1B phosphorylation in local fine-tuning of neurite branching and the underlying microtubule (MT) dynamics. In wildtype adult dorsal root ganglia (DRG) neurons, MAP1B phosphorylation is locally reduced at branching points, and branching dynamics from growth cones and distal neurite shafts is increased upon GSK3 inhibition. While map1b-/- neurites, that display increased branching, are not affected by GSK3 inhibition, transfection of map1b-/- neurons with full-length map1b-cDNA restores the wildtype branching phenotype, demonstrating that MAP1B is a key effector downstream of GSK3. Experiments in mutant mice lacking tyrosinated MTs indicate a preferential association of phospho-MAP1B with tyrosinated MTs. Interestingly, inhibition of GSK3-mediated MAP1B phosphorylation in map1b-cDNA-transfected fibroblasts protects both tyrosinated and acetylated MTs from nocodazole-induced depolymerization, while detyrosinated MTs are less abundant in the presence of MAP1B. Our data thus provide new insight into the molecular link between GSK3, MAP1B, neurite branching and MT stability regulation. We suggest that, at branching points, MAP1B undergoes a fine regulation of both its phosphorylation and sub-cellular amounts, in order to modulate the local balance between acetylated, detyrosinated, and tyrosinated microtubule pools. (C) 2016 Elsevier Inc. All rights reserved.

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