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Secondary Forces in Protein Folding

Journal

ACS CHEMICAL BIOLOGY
Volume 14, Issue 8, Pages 1677-1686

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acschembio.9b00339

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Funding

  1. National Institutes of Health [R01 GM044783]

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A complete inventory of the forces governing protein folding is critical for productive protein modeling, including structure prediction and de novo design, as well as understanding protein misfolding diseases of clinical significance. The dominant contributors to protein folding include the hydrophobic effect and conventional hydrogen bonding, along with Coulombic and van der Waals interactions. Over the past few decades, important additional contributors have been identified, including C-H center dot center dot center dot O hydrogen bonding, n ->pi* interactions, C5 hydrogen bonding, chalcogen bonding, and interactions involving aromatic rings (cation-pi, X-H center dot center dot center dot pi, pi-pi, anion-pi, and sulfur-arene). These secondary contributions fall into two general classes: (1) weak but abundant interactions of the protein main chain and (2) strong but less frequent interactions involving protein side chains. Though interactions with high individual energies play important roles in specifying nonlocal molecular contacts and ligand binding, we estimate that weak but abundant interactions are likely to make greater overall contributions to protein folding, particularly at the level of secondary structure. Further research is likely to illuminate additional roles of these noncanonical interactions and could also reveal contributions yet unknown.

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