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Allosteric Activation of Bacterial Swi2/Snf2 (Switch/Sucrose Non-fermentable) Protein RapA by RNA Polymerase: BIOCHEMICAL AND STRUCTURAL STUDIES. | LitMetric

AI Article Synopsis

  • Members of the Swi2/Snf2 family, like RapA, use ATPase activity to assist in gene expression by managing nucleic acid-protein complexes, particularly during transcription in bacteria.
  • RapA interacts with RNA polymerase (RNAP) to enhance its ATPase activity, and through crystal structure studies, researchers discovered the dynamic nature of RapA's N-terminal domain, leading to further investigations of its activity and structure.
  • The study revealed a new conformation of RapA, detailed its binding site on RNAP, and found that the interaction with RNAP stimulates RapA's ATPase activity, crucial for RNAP recycling, thereby improving our understanding of RapA's role and Swi2/Snf2 protein regulation.

Article Abstract

Members of the Swi2/Snf2 (switch/sucrose non-fermentable) family depend on their ATPase activity to mobilize nucleic acid-protein complexes for gene expression. In bacteria, RapA is an RNA polymerase (RNAP)-associated Swi2/Snf2 protein that mediates RNAP recycling during transcription. It is known that the ATPase activity of RapA is stimulated by its interaction with RNAP. It is not known, however, how the RapA-RNAP interaction activates the enzyme. Previously, we determined the crystal structure of RapA. The structure revealed the dynamic nature of its N-terminal domain (Ntd), which prompted us to elucidate the solution structure and activity of both the full-length protein and its Ntd-truncated mutant (RapAΔN). Here, we report the ATPase activity of RapA and RapAΔN in the absence or presence of RNAP and the solution structures of RapA and RapAΔN either ligand-free or in complex with RNAP. Determined by small-angle x-ray scattering, the solution structures reveal a new conformation of RapA, define the binding mode and binding site of RapA on RNAP, and show that the binding sites of RapA and σ(70) on the surface of RNAP largely overlap. We conclude that the ATPase activity of RapA is inhibited by its Ntd but stimulated by RNAP in an allosteric fashion and that the conformational changes of RapA and its interaction with RNAP are essential for RNAP recycling. These and previous findings outline the functional cycle of RapA, which increases our understanding of the mechanism and regulation of Swi2/Snf2 proteins in general and of RapA in particular. The new structural information also leads to a hypothetical model of RapA in complex with RNAP immobilized during transcription.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4583045PMC
http://dx.doi.org/10.1074/jbc.M114.618801DOI Listing

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