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Schizophrenia and autism-associated mutations and disrupted m6A signal by YTHDF1 cause defects in microtubule function and neurodevelopment

Roy, R.; Li, X.; Hou, S.; Fujiwara, Y.; Sukegawa, M.; Hong, W.-T.; Oomoto, I.; Ito, H.; Joshi, K.; Fan, R.; Nagata, K.-i.; Lai, K.-o.; Wang, D. O.

2020-11-14 neuroscience
10.1101/2020.11.14.382556 bioRxiv
Show abstract

Subcellular mRNA localization and local translation are crucial for spatially regulated gene expression in neurons. However, the precise mechanisms governing the selective transport and translation of mRNAs contributing to processes such as axonal growth and branching are only partially understood. Here, we present evidence of N6-methyladenosine (m6A)-mediated translational control of the RNA-binding protein, APC, influencing cytoskeletal dynamics at the growth cone. Our findings demonstrate that m6A modifications occur on Apc mRNA, facilitating its recognition by YTHDF1 to promote APC translation in neuronal somata. Additionally, we observe that disrupting the m6A pathway impairs the transport and local translation of {beta}-actin mRNA in the axon and growth cones, a deficiency that can be rescued by the exogenous expression of APC protein in cultured neurons. Furthermore, we establish the essential role of YTHDF1 in axon development, particularly in callosal projection neurons during cortical development. Our findings suggest a novel mechanism involving m6A-mediated regulation of APC protein translation, linking epitranscriptomics to axonal mRNA targeting, cytoskeletal dynamics, and axon development.

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