4.8 Article

Structure of granzyme C reveals an unusual mechanism of protease autoinhibition

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.0811968106

Keywords

protease regulation; register shift; allostery

Funding

  1. National Health and Medical Research Council (NH MRC) [490900]
  2. Australian Research Council
  3. Australian Synchrotron Research Program
  4. Scientific Research Flanders Belgium Research [G.0156.05, G.0077.06]
  5. Ghent University [BOF07/GOA/012]
  6. Inter University [IUAP06]
  7. European Union

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Proteases act in important homeostatic pathways and are tightly regulated. Here, we report an unusual structural mechanism of regulation observed by the 2.5-angstrom X-ray crystal structure of the serine protease, granzyme C. Although the active-site triad residues adopt canonical conformations, the oxyanion hole is improperly formed, and access to the primary specificity (S1) pocket is blocked through a reversible rearrangement involving Phe-191. Specifically, a register shift in the 190-strand preceding the active-site serine leads to Phe-191 filling the S1 pocket. Mutation of a unique Glu-Glu motif at positions 192-193 unlocks the enzyme, which displays chymase activity, and proteomic analysis confirms that activity of the wild-type protease can be released through interactions with an appropriate substrate. The 2.5-angstrom structure of the unlocked enzyme reveals unprecedented flexibility in the 190-strand preceding the active-site serine that results in Phe-191 vacating the S1 pocket. Overall, these observations describe a broadly applicable mechanism of protease regulation that cannot be predicted by template-based modeling or bioinformatic approaches alone.

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