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Published on: October 30, 2014
Myosin Va Regulates Terminal Translocation in the Neocortex by Controlling the Trafficking of Neuropilin-1
Takao Kohno1, Rimi Okino2, Minqian Li2
1Department of Biomedical Science, Graduate School of Pharmaceutical Sciences, Nagoya City University, Nagoya, Aichi 467-8603, Japan tkohno@phar.nagoya-cu.ac.jp mhattori@phar.nagoya-cu.ac.jp.
Abstract:
Proper neocortex formation relies on the precisely regulated migration of neurons into distinct cortical layers. This process requires the timely surface expression of receptors that decode extracellular guidance cues. Yet, the molecular machinery governing receptor trafficking in migrating neurons remains largely unclear. Here, we identified the motor protein myosin Va (Myo5a) as a key regulator of Neuropilin-1 (Nrp1) trafficking in the early postnatal neocortex. Both male and female mice were used for this study. Myo5a localized to the apical dendrites of superficial layer neurons, with expression increasing during cortical maturation. Functional inhibition of Myo5a led to a terminal translocation defect in superficial layer neurons, thereby preventing their proper entry into NeuN-negative regions of the neocortex. Additionally, Myo5a inhibition led to Nrp1 accumulation within the Golgi apparatus and a significant reduction in its surface expression. Remarkably, overexpression of Nrp1 or VLDLR fully rescued the terminal translocation defects and dendritic abnormalities caused by Myo5a inhibition, demonstrating that Myo5a-dependent Nrp1 trafficking underlies proper Reelin receptor availability during this process. Overall, these results reveal a pivotal Myo5a-Nrp1 trafficking pathway that governs the final stage of neuronal migration, offering a molecular mechanism for the spatial and temporal regulation of receptor dynamics essential for precise cortical layering.
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