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Regulation of DEAH-box RNA helicases by G-patch proteins

期刊

BIOLOGICAL CHEMISTRY
卷 402, 期 5, 页码 561-579

出版社

WALTER DE GRUYTER GMBH
DOI: 10.1515/hsz-2020-0338

关键词

cofactor; DEAH/RHA family; G-patch protein; pre-mRNA splicing; ribosome biogenesis; RNA helicase

资金

  1. Deutsche Forschungsgemeinschaft [SFB860]
  2. SNSF [31003A_179498]
  3. Swiss National Science Foundation (SNSF) through the National Center for Competence in Research RNA Disease
  4. Swiss National Science Foundation (SNF) [31003A_179498] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

RNA helicases of the DEAH/RHA family remodel RNA protein complexes by translocating along the RNA and exert force through ATP hydrolysis, guided by cofactor proteins.
RNA helicases of the DEAH/RHA family form a large and conserved class of enzymes that remodel RNA protein complexes (RNPs) by translocating along the RNA. Driven by ATP hydrolysis, they exert force to dissociate hybridized RNAs, dislocate bound proteins or unwind secondary structure elements in RNAs. The sub-cellular localization of DEAH-helicases and their concomitant association with different pathways in RNA metabolism, such as pre-mRNA splicing or ribosome biogenesis, can be guided by cofactor proteins that specifically recruit and simultaneously activate them. Here we review the mode of action of a large class of DEAH-specific adaptor proteins of the G-patch family. Defined only by their eponymous short glycine-rich motif, which is sufficient for helicase binding and stimulation, this family encompasses an immensely varied array of domain compositions and is linked to an equally diverse set of functions. G-patch proteins are conserved throughout eukaryotes and are even encoded within retroviruses. They are involved in mRNA, rRNA and snoRNA maturation, telomere maintenance and the innate immune response. Only recently was the structural and mechanistic basis for their helicase enhancing activity determined. We summarize the molecular and functional details of G-patch-mediated helicase regulation in their associated pathways and their involvement in human diseases.

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