AI Article Synopsis

  • Circular RNAs (circRNAs) are a novel class of regulatory RNAs that are generated from mRNAs and play important roles in cellular functions, yet their roles in living organisms are not well understood due to challenges in studying them.
  • Researchers focused on identifying conserved circRNAs between mice and humans that can be genetically manipulated, specifically targeting circRNA cZfp292 to investigate its physiological roles.
  • The study found that depleting cZfp292 affected endothelial cell morphology and behavior under flow conditions, highlighting its interaction with the protein SDOS and revealing its crucial role in shaping endothelial responses to fluid dynamics.

Article Abstract

Background: Circular RNAs (circRNAs) are generated by back splicing of mostly mRNAs and are gaining increasing attention as a novel class of regulatory RNAs that control various cellular functions. However, their physiological roles and functional conservation in vivo are rarely addressed, given the inherent challenges of their genetic inactivation. Here, we aimed to identify locus conserved circRNAs in mice and humans, which can be genetically deleted due to retained intronic elements not contained in the mRNA host gene to eventually address functional conservation.

Methods And Results: Combining published endothelial RNA-sequencing data sets with circRNAs of the circATLAS databank, we identified locus-conserved circRNA retaining intronic elements between mice and humans. CRISPR/Cas9 mediated genetic depletion of the top expressed circRNA cZfp292 resulted in an altered endothelial morphology and aberrant flow alignment in the aorta in vivo. Consistently, depletion of cZNF292 in endothelial cells in vitro abolished laminar flow-induced alterations in cell orientation, paxillin localization and focal adhesion organization. Mechanistically, we identified the protein SDOS (syndesmos) to specifically interact with cZNF292 in endothelial cells by RNA-affinity purification and subsequent mass spectrometry analysis. Silencing of SDOS or its protein binding partner Syndecan-4, or mutation of the SDOS-cZNF292 binding site, prevented laminar flow-induced cytoskeletal reorganization thereby recapitulating cZfp292 knockout phenotypes.

Conclusions: Together, our data reveal a hitherto unknown role of cZNF292/cZfp292 in endothelial flow responses, which influences endothelial shape.

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Source
http://dx.doi.org/10.1161/CIRCRESAHA.121.320029DOI Listing

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