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RNA localization is a key determinant of neurite-enriched proteome. | LitMetric

AI Article Synopsis

  • Protein subcellular localization is crucial for various biological processes, including the establishment of body axes and neuronal function.
  • Researchers studied neurons derived from mouse embryonic stem cells and examined protein and RNA expression as well as translation in both cell bodies and neurites, identifying thousands of proteins and transcripts.
  • The findings reveal that mRNA localization is the dominant mechanism for directing protein localization in neurites and highlight potential regulatory roles of non-coding RNAs and RNA-binding proteins in neuronal polarity.

Article Abstract

Protein subcellular localization is fundamental to the establishment of the body axis, cell migration, synaptic plasticity, and a vast range of other biological processes. Protein localization occurs through three mechanisms: protein transport, mRNA localization, and local translation. However, the relative contribution of each process to neuronal polarity remains unknown. Using neurons differentiated from mouse embryonic stem cells, we analyze protein and RNA expression and translation rates in isolated cell bodies and neurites genome-wide. We quantify 7323 proteins and the entire transcriptome, and identify hundreds of neurite-localized proteins and locally translated mRNAs. Our results demonstrate that mRNA localization is the primary mechanism for protein localization in neurites that may account for half of the neurite-localized proteome. Moreover, we identify multiple neurite-targeted non-coding RNAs and RNA-binding proteins with potential regulatory roles. These results provide further insight into the mechanisms underlying the establishment of neuronal polarity.Subcellular localization of RNAs and proteins is important for polarized cells such as neurons. Here the authors differentiate mouse embryonic stem cells into neurons, and analyze the local transcriptome, proteome, and translated transcriptome in their cell bodies and neurites, providing a unique resource for future studies on neuronal polarity.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5605627PMC
http://dx.doi.org/10.1038/s41467-017-00690-6DOI Listing

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