Ca-based allosteric switches and shape shifting in RGLG1 VWA domain.

Comput Struct Biotechnol J

Provincial University Key Laboratory of Cellular Stress Response and Metabolic Regulation, College of Life Science, Fujian Normal University, Fuzhou 350117, China.

Published: March 2020

AI Article Synopsis

  • RGLG1 is an E3 ubiquitin ligase involved in ABA signaling and the regulation of apical dominance, with newly discovered crystal structures of its VWA domain showing unique calcium-binding sites.
  • The binding of calcium ions significantly influences the conformational state of the VWA domain, stabilizing it in an open state, while removal of calcium causes it to close, revealing an allosteric regulation mechanism distinct from what has been previously documented in integrins.
  • MD simulations and structural comparisons further indicate that the open state of RGLG1 VWA has a higher affinity for ligands than the closed state, with new insights into the open-closed transition offering a fresh perspective on VWA proteins and their vital biological roles.

Article Abstract

RGLG1 is an E3 ubiquitin ligase in that participates in ABA signaling and regulates apical dominance. Here, we present crystal structures of RGLG1 VWA domain, revealing two novel calcium ions binding sites (NCBS1 and NCBS2). Furthermore, the structures with guided mutagenesis in NCBS1 prove that Ca ions play important roles in controlling conformational change of VWA, which is stabilized in open state with Ca bound and converted to closed state after Ca removal. This allosteric regulation mechanism is distinct from the ever reported one involving the C-terminal helix in integrin α and β I domains. The mutation of a key residue in NCBS2 do not abolish its Ca-binding potential, with no conformational change. MD simulations reveals that open state of RGLG1 VWA has higher ligand affinity than its closed state, consisting with integrin. Structural comparison of ion-free-MIDAS with Mg-MIDAS reveals that Mg binding to MIDAS does not induce conformational change. With acquisition of first structure of plant VWA domain in both open state and closed state, we carefully analyze the conformational change and propose a totally new paradigm for its transition of open-closed states, which will be of great value for guiding future researches on VWA proteins and their important biological significance.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7155146PMC
http://dx.doi.org/10.1016/j.csbj.2020.03.023DOI Listing

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