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RNA helicase, DDX27 regulates skeletal muscle growth and regeneration by modulation of translational processes

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2018

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Public Library of Science
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Bennett, A. H., M. O’Donohue, S. R. Gundry, A. T. Chan, J. Widrick, I. Draper, A. Chakraborty, et al. 2018. “RNA helicase, DDX27 regulates skeletal muscle growth and regeneration by modulation of translational processes.” PLoS Genetics 14 (3): e1007226. doi:10.1371/journal.pgen.1007226. http://dx.doi.org/10.1371/journal.pgen.1007226.

Abstract

Gene expression in a tissue-specific context depends on the combined efforts of epigenetic, transcriptional and post-transcriptional processes that lead to the production of specific proteins that are important determinants of cellular identity. Ribosomes are a central component of the protein biosynthesis machinery in cells; however, their regulatory roles in the translational control of gene expression in skeletal muscle remain to be defined. In a genetic screen to identify critical regulators of myogenesis, we identified a DEAD-Box RNA helicase, DDX27, that is required for skeletal muscle growth and regeneration. We demonstrate that DDX27 regulates ribosomal RNA (rRNA) maturation, and thereby the ribosome biogenesis and the translation of specific transcripts during myogenesis. These findings provide insight into the translational regulation of gene expression in myogenesis and suggest novel functions for ribosomes in regulating gene expression in skeletal muscles.

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Biology and Life Sciences, Anatomy, Musculoskeletal System, Muscles, Skeletal Muscles, Medicine and Health Sciences, Developmental Biology, Morphogenesis, Muscle Differentiation, Experimental Organism Systems, Model Organisms, Zebrafish, Animal Models, Organisms, Eukaryota, Animals, Vertebrates, Fish, Osteichthyes, Biology and life sciences, Biochemistry, Nucleic acids, RNA, Non-coding RNA, Ribosomal RNA, Ribosomes, Cell biology, Cellular structures and organelles, Cell Biology, Cellular Types, Animal Cells, Stem Cells, Myoblasts, Cellular Structures and Organelles, Regeneration, Muscle Regeneration, Organism Development, Immunologic Techniques, Immunoassays, Immunofluorescence

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