4.8 Article

Probing allosteric regulations with coevolution-driven molecular simulations

Journal

SCIENCE ADVANCES
Volume 7, Issue 37, Pages -

Publisher

AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/sciadv.abj0786

Keywords

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Funding

  1. European Union's Horizon 2020 Framework Programme for Research and Innovation [720270, 785907]
  2. Catalan Ris3Cat CECH project
  3. Spanish Ministerio de Ciencia e Innovacion [BFU2017-86760-P]
  4. BioExcel Center of Excellence (Horizon 2020 Framework Programme) [823830]
  5. European Regional Development Fund
  6. Severo Ochoa Award of Excellence from the MINECO
  7. Ramon y Cajal [RYC2019-026768-I]

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The study utilizes coevolutionary information, multiscale molecular simulations, and free-energy methods to quantify allosteric regulations of protein complexes, revealing a simple ON/OFF regulation of AC by stimulatory and inhibitory G proteins. The approach provides a general strategy for exploring uncharted functional space in complex biomolecular regulations.
Protein-mediated allosteric regulations are essential in biology, but their quantitative characterization continues to posit formidable challenges for both experiments and computations. Here, we combine coevolutionary information, multiscale molecular simulations, and free-energy methods to interrogate and quantify the allosteric regulation of functional changes in protein complexes. We apply this approach to investigate the regulation of adenylyl cyclase (AC) by stimulatory and inhibitory G proteins-a prototypical allosteric system that has long escaped from in-depth molecular characterization. We reveal a surprisingly simple ON/OFF regulation of AC functional dynamics through multiple pathways of information transfer. The binding of G proteins reshapes the free-energy landscape of AC following the classical population-shift paradigm. The model agrees with structural and biochemical data and reveals previously unknown experimentally consistent intermediates. Our approach showcases a general strategy to explore uncharted functional space in complex biomolecular regulations.

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