A (4R)- or a (4S)-fluoroproline residue in position xaa of the (Xaa-Yaa-Gly) collagen repeat severely affects triple-helix formation

被引:54
作者
Barth, D [1 ]
Milbradt, AG [1 ]
Renner, C [1 ]
Moroder, L [1 ]
机构
[1] Max Planck Inst Biochem, D-82152 Martinsried, Germany
关键词
circular dichroism; collagen peptides; fluoroproline; NMR spectroscopy; triple helix;
D O I
10.1002/cbic.200300702
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The triple-helical fold of collagen requires the presence of a glycine residue at every third position in the peptide sequence and is stabilized by proline and (4R)-4-hydroxyproline residues in positions Xaa and Yaa of the (Xaa-Yaa-Gly) triplets, respectively. Regular down/up puckering of these Xaa/Yaa residues is possibly responsible for the tight packing of the three peptide strands, which have a polyproline-II-like structure, into the supercoiled helix. (4R)-Configured electronegative substituents such as a hydroxy group or a fluorine substituent on the pyrrolidine ring of the residue in the Yaa position favor the up pucker and thus significantly stabilize the triple helix. A similar effect was expected from the corresponding (4S)-isomers in the Xaa positions, but the opposite effect has been observed with (4S)-hydroxyproline, a result that has been speculatively attributed to steric effects. In this study, (4R)- and (4S)- fluoroproline residues were introduced into the Xaa position and potential steric effects were this avoided. Contrary to expectations, (4S)-fluoroproline prevents triple-helix formation, whereas (4R)- fluoroproline stabilizes the polyPro II conformation, but without supercoiling of the three strands. The latter observation suggests that folding of the single chains into a polyproline II helix is not directly associated with triple helix formation and that fine tuning of van der Waals contacts, electrostatic interactions, and stereo-electronic effects is required for optimal packing into a triple helix.
引用
收藏
页码:79 / 86
页数:8
相关论文
共 72 条
[1]   Glycosylation/hydroxylation-induced stabilization of the collagen triple helix -: 4-trans-hydroxyproline in the Xaa position can stabilize the triple helix [J].
Bann, JG ;
Bächinger, HP .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (32) :24466-24469
[2]   The role of cystine knots in collagen folding and stability, part I.: Conformational properties of (Pro-Hyp-Gly)5 and (Pro-(4S)-FPro-Gly)5 model trimers with an artificial cystine knot [J].
Barth, D ;
Musiol, H ;
Schütt, M ;
Fiori, S ;
Milbradt, AG ;
Renner, C ;
Moroder, L .
CHEMISTRY-A EUROPEAN JOURNAL, 2003, 9 (15) :3692-3702
[3]   The role of cystine knots in collagen folding and stability, part II.: Conformational properties of (Pro-Hyp-Gly)n model trimers with N- and C-terminal collagen type III cystine knots [J].
Barth, D ;
Kyrieleis, O ;
Frank, S ;
Renner, C ;
Moroder, L .
CHEMISTRY-A EUROPEAN JOURNAL, 2003, 9 (15) :3703-3714
[4]   MLEV-17-BASED TWO-DIMENSIONAL HOMONUCLEAR MAGNETIZATION TRANSFER SPECTROSCOPY [J].
BAX, A ;
DAVIS, DG .
JOURNAL OF MAGNETIC RESONANCE, 1985, 65 (02) :355-360
[5]   Supercoiled protein motifs:: The collagen triple-helix and the α-helical coiled coil [J].
Beck, K ;
Brodsky, B .
JOURNAL OF STRUCTURAL BIOLOGY, 1998, 122 (1-2) :17-29
[6]   HYDRATION STRUCTURE OF A COLLAGEN PEPTIDE [J].
BELLA, J ;
BRODSKY, B ;
BERMAN, HM .
STRUCTURE, 1995, 3 (09) :893-906
[7]   CRYSTAL-STRUCTURE AND MOLECULAR-STRUCTURE OF A COLLAGEN-LIKE PEPTIDE AT 1.9-ANGSTROM RESOLUTION [J].
BELLA, J ;
EATON, M ;
BRODSKY, B ;
BERMAN, HM .
SCIENCE, 1994, 266 (5182) :75-81
[8]  
BERG RA, 1970, J BIOL CHEM, V245, P5759
[9]  
BERG RA, 1973, BIOCHEM BIOPH RES CO, V52, P115, DOI 10.1016/0006-291X(73)90961-3
[10]   Crystal structure of the collagen triple helix model [(Pro-Pro-Gly)10]3 [J].
Berisio, R ;
Vitagliano, L ;
Mazzarella, L ;
Zagari, A .
PROTEIN SCIENCE, 2002, 11 (02) :262-270