4.2 Article

High-Resolution Structures of Collagen-Like Peptides [(Pro-Pro-Gly)4-Xaa-Yaa-Gly-(Pro-Pro-Gly)4]: Implications for Triple-Helix Hydration and Hyp(X) Puckering

Journal

BIOPOLYMERS
Volume 91, Issue 5, Pages 361-372

Publisher

WILEY
DOI: 10.1002/bip.21138

Keywords

collagen; triple helix; hydration; Hyp(X) puckering; model peptide

Funding

  1. Ministry of Education, Culture, Sports, Science, and Technology [18054017]
  2. Japan Society for the promotion of Science [16550107, 19330059]
  3. Shriners Hospital for Children
  4. Grants-in-Aid for Scientific Research [19330059, 18054017, 16550107] Funding Source: KAKEN

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Structures of (Pro-Pro-Gly)(4)-Xaa-Yaa-Gly-(Pro-Pro-Gly)(4) (ppg9-XYG) where (Xaa, Yaa) = (Pro, Hyp), (Hyp, Pro) or (Hyp, Hyp) were analyzed at high resolution using synchrotron radiation. Molecular and crystal structures of these peptides are very similar to those of the (Pro-Pro-Gly)(9) peptide. Vie results obtained in this study, together with those obtained from related compounds, indicated the puckering propensity of the Hyp in the X position: (1) Hyp(X) residues involved in the Hyp(X):Pro(Y) stacking pairs prefer the down-puckering conformation, as in ppg9-OPG, and ppg9-OOG (2) Hyp(X) residues involved in the Hyp(X):Hyp(Y) stacking pairs prefer the up-puckering conformation if there is no specific reason to adopt the down-puckering conformation. Water molecules in these peptide crystals tire classified into two groups, the 1st and 2nd hydration waters. Water molecules in the 1st hydration group have direct hydrogen bonds with peptide oxygen atoms, whereas those in the 2nd hydration group do not. Compared with globular proteins, the number of water molecules in the 2nd hydration shell of the ppg9-XYG peptides is very large, likely due to the unique rodlike molecular structure of collagen model peptides. In the collagen helix, the amino acid residues in the X and Y positions must protrude outside of the triple helix, which forces even the hydrophobic side chains, such as Pro, to be exposed to the surrounding water molecules. Therefore, most of the waters in the 2nd hydration shell tire covering hydrophobic Pro side chains by forming clathrate structures. (C) 2009 Wiley Periodicals, Inc, Biopolymers 91: 361-372, 2009.

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