The Role in Cell Binding of a β1-bend within the Triple Helical Region in Collagen αl(I) Chain: Structural and Biological Evidence for Conformational Tautomerism on Fiber Surface
- 1 April 1997
- journal article
- research article
- Published by Taylor & Francis in Journal of Biomolecular Structure and Dynamics
- Vol. 14 (5) , 547-560
- https://doi.org/10.1080/07391102.1997.10508155
Abstract
In its physiological solid state, type I collagen serves as a host for many types of cells. Only the molecules on fiber surface are available for interaction. In this interfacial environment, the conformation of a cell binding domain can be expected to fluctuate between the collagen fold and a distinctive non-collagen molecular marker for recognition and allosteric binding. If the cell binding domain can be localized in contiguous residues within the exposed half of a turn of the triple helix (approximately 15 residues), the need for extensive structural modification and unraveling of the triple helix is avoided. We examined the conformational preferences and biological activity of a synthetic 15- residue peptide (P-15), analogous to the sequence 766GTPGPQGIAGQRGVV780 in the al (I) chain. Theoretical studies showed a high potential for a stable β-bend for the central GIAG sequence. The flanking sequences showed facile transition to extended conformations. Circular dichroism of the synthetic peptide in anisotropic solvents confirmed the presence of β-strand and β-bend structures. P-15 inhibited fibroblast binding to collagen in a concentration dependent manner, with near maximal inhibition occurring at a concentration of 7.2×10−6 M. The temporal pattern of cell attachment was altered markedly in the presence of P-15. No inhibition was seen with a peptide P-15 (AI), an analogue of P-15 with the central IA residues reversed to AI or with collagen-related peptides (Pro-Pro-Gly)10, (Pro-Pro-Gly)10, and polyproline, and with several unrelated peptides. Our studies suggest a molecular mechanism for cell binding to collagen fibers based on a conformational transition in collagen molecules on the fiber surface. Since the energy barrier between the collagen fold and β-strand conformation is low, a local conformational change may be possible in molecules on the fiber surface because of their location in an anisotropic environment. Our observations also suggest that the sequence incorporated in P-15 may be a specific ligand for cells. Unlike other reported cell binding peptides, the residues involved in this interaction are non-polar.Keywords
This publication has 51 references indexed in Scilit:
- Importance of Environment in Determining Secondary Structure in ProteinsBiochemistry, 1994
- The MIDAS display systemJournal of Molecular Graphics, 1988
- Hepatocyte adhesion to collagenExperimental Cell Research, 1986
- Studies of repeating synthetic peptides designed to adopt a cross‐β conformationInternational Journal of Peptide and Protein Research, 1985
- Prediction of chain flexibility in proteinsThe Science of Nature, 1985
- Hydroxylation of proline in polytripeptide models of collagen: stereochemistry of polytripeptide-prolyl hydroxylase interactionBiochemistry, 1978
- The importance of coulombic interactions for the induction of β structure in lysine oligomers by sodium dodecyl sulfateBiopolymers, 1976
- Effect of chain length and concentration of anionic surfactants on the conformational transitions of poly(L-ornithine) and poly(L-lysine) in aqueous solutionBiochemical and Biophysical Research Communications, 1973
- Conformational properties of poly-L-proline from II in dilute solutionJournal of the American Chemical Society, 1971
- Stereochemistry of polypeptide chain configurationsJournal of Molecular Biology, 1963