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Nicol, X.

Publications and source records attributed to Nicol, X..

2 recordsLinked to original sources

A key role for p60-Katanin in axon navigation is conditioned by the tubulin polyglutamylase TTLL6

The microtubule cytoskeleton is a major driving force of neuronal circuit development. Fine-tuned remodelling of this network by selective activation of microtubule-regulating proteins, including microtubule severers, emerged as a central process in neuronal wiring. Tubulin posttranslational modifications control both microtubule properties and the activities of their interacting proteins. However, whether and how tubulin posttranslational modifications may contribute to neuronal connectivity has not yet been addressed. During zebrafish embryogenesis, we show that the microtubule severers p60-katanin and spastin play specific roles in axon guidance and identify a key role for tubulin polyglutamylation in their functional specificity. Furthermore, our work reveals that polyglutamylases with undistinguishable activities in vitro, TTLL6 and TTLL11, play exclusive roles in axon navigation by selectively tuning p60-katanin and spastin activities. We confirm the selectivity of TTLL11 towards spastin activation in mammalian cortical neurons and establish its relevance in preventing axonal degeneration triggered by spastin haploinsufficiency. Our work thus provides mechanistic insight on the control of microtubule-driven neuronal development and homeostasis, and opens novel avenues for developing therapeutic strategies in spastin-associated hereditary spastic paraplegia.

developmental biology↗

Properties of the axial current of retinal ganglion cells at spike initiation

The action potential of most vertebrate neurons initiates in the axon initial segment (AIS), and is then transmitted to the soma where it is regenerated by somatodendritic sodium channels. For successful transmission, the AIS must produce a strong axial current, so as to depolarize the soma to the threshold for somatic regeneration. Theoretically, this axial current depends on AIS geometry and Na+ conductance density. We measured the axial current of mouse RGCs using whole-cell recordings with post-hoc AIS labeling. We found that this current is large, implying high Na+ conductance density, and carries a charge that co-varies with capacitance so as to depolarize the soma by ~30 mV. Additionally, we observed that the axial current attenuates strongly with depolarization, consistent with sodium channel inactivation, but temporally broadens so as to preserve the transmitted charge. Thus, the AIS appears to be organized so as to reliably backpropagate the axonal action potential.

neuroscience↗