4.8 Article

Cooperative water filling of a nonpolar protein cavity observed by high-pressure crystallography and simulation

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NATL ACAD SCIENCES
DOI: 10.1073/pnas.0508224102

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hydrophobic effect; T4 lysozyme

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  1. NIGMS NIH HHS [GM21967, R01 GM021967, DMR0225180] Funding Source: Medline

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Formation of a water-expelling nonpolar core is the paradigm of protein folding and stability. Although experiment largely confirms this picture, water buried in hydrophobic cavities is required for the function of some proteins. Hydration of the protein core has also been suggested as the mechanism of pressure-induced unfolding. We therefore are led to ask whether even the most nonpolar protein core is truly hydrophobic (i.e., waterrepelling). To answer this question we probed the hydration of an approximate to 160-angstrom(3), highly hydrophobic cavity created by mutation in T4 lysozynne by using high-pressure crystallography and molecular dynamics simulation. We show that application of modest pressure causes approximately four water molecules to enter the cavity while the protein itself remains essentially unchanged. The highly cooperative filling is primarily due to a small change in bulk water activity, which implies that changing solvent conditions or, equivalently, cavity polarity can dramatically affect interior hydration of proteins and thereby influence both protein activity and folding.

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