Site-specific NMR monitoring of cis-trans isomerization in the folding of the proline-rich collagen triple helix

被引:57
作者
Buevich, AV
Dai, QH
Liu, XY
Brodsky, B
Baum, J
机构
[1] Rutgers State Univ, Dept Chem, Piscataway, NJ 08854 USA
[2] Univ Med & Dent New Jersey, Robert Wood Johnson Med Sch, Dept Biochem, Piscataway, NJ 08854 USA
关键词
D O I
10.1021/bi992584r
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
Understanding the folding of the proline-rich collagen triple helix requires consideration of the effects of proline cis-trans isomerization and may shed light on the misfolding of collagen in connective tissue diseases, Folding was monitored in real time by heteronuclear 2D NMR spectroscopy for the N-15 labeled positions in the triple-helical peptide T1-892 [GPAGPAGPVGPAGARGPAGPOGPOGPOG POGV]. In the equilibrium unfolded monomer form, each labeled residue showed multiple peaks with interconversion rates consistent with cis-trans isomerization of Gly-Pro and Pro-Hyp bonds. Realtime NMR studies on the folding of T1-892 showed slow decay of monomer peaks and a concomitant increase in trimer peaks. Gly25 in the C-terminal rich (Gly-Pro-Hyp)(4) domain folds first, consistent with its being a nucleation domain. Analysis of the kinetics indicates that the folding of Gly25 is biphasic and the slower step represents cis-trans isomerization of imino acids. This illustrates that nucleation is limited by cis-trans isomerization. Monitoring Gly6, Gly10, Ala12, and Gly13 monomer and trimer peaks captures the C- to N-terminal propagation of the triple helix, which is also limited by Gly-Pro cis-trans isomerization events. The zipper-like nature of the propagation process is confirmed by the slower rate of folding of Ala6 compared to Gly13, reflecting the larger number of isomerization events encountered by the more N-terminal Ala6. The cis-trans isomerization events at multiple proline residues is a complex statistical process which can be visualized by these NMR studies.
引用
收藏
页码:4299 / 4308
页数:10
相关论文
共 55 条
[1]  
[Anonymous], 2018, Protein nmr spectroscopy: principles and practice
[2]   THERMAL-STABILITY AND FOLDING OF THE COLLAGEN TRIPLE HELIX AND THE EFFECTS OF MUTATIONS IN OSTEOGENESIS IMPERFECTA ON THE TRIPLE HELIX OF TYPE-I COLLAGEN [J].
BACHINGER, HP ;
MORRIS, NP ;
DAVIS, JM .
AMERICAN JOURNAL OF MEDICAL GENETICS, 1993, 45 (02) :152-162
[3]  
BACHINGER HP, 1987, J BIOL CHEM, V262, P17144
[4]   FOLDING MECHANISM OF THE TRIPLE HELIX IN TYPE-III COLAGEN AND TYPE-III PN-COLLAGEN - ROLE OF DISULFIDE BRIDGES AND PEPTIDE-BOND ISOMERIZATION [J].
BACHINGER, HP ;
BRUCKNER, P ;
TIMPL, R ;
PROCKOP, DJ ;
ENGEL, J .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1980, 106 (02) :619-632
[5]   ROLE OF CIS-TRANS ISOMERIZATION OF PEPTIDE-BONDS IN COIL REVERSIBLE TRIPLE HELIX CONVERSION OF COLLAGEN [J].
BACHINGER, HP ;
BRUCKNER, P ;
TIMPL, R ;
ENGEL, J .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1978, 90 (03) :605-613
[6]   A protein folding intermediate of ribonuclease T1 characterized at high resolution by 1D and 2D real-time NMR spectroscopy [J].
Balbach, J ;
Steegborn, C ;
Schindler, T ;
Schmid, FX .
JOURNAL OF MOLECULAR BIOLOGY, 1999, 285 (02) :829-842
[7]   FOLLOWING PROTEIN-FOLDING IN REAL-TIME USING NMR-SPECTROSCOPY [J].
BALBACH, J ;
FORGE, V ;
VANNULAND, NAJ ;
WINDER, SL ;
HORE, PJ ;
DOBSON, CM .
NATURE STRUCTURAL BIOLOGY, 1995, 2 (10) :865-870
[8]   THE ROLE OF HYDROXYPROLINE IN COLLAGEN FOLDING - CONFORMATIONAL ENERGY CALCULATIONS ON OLIGOPEPTIDES CONTAINING PROLINE AND HYDROXYPROLINE [J].
BANSAL, M ;
ANANTHANARAYANAN, VS .
BIOPOLYMERS, 1988, 27 (02) :299-312
[9]   Real-time NMR investigations of triple-helix folding and collagen folding diseases [J].
Baum, J ;
Brodsky, B .
FOLDING & DESIGN, 1997, 2 (04) :R53-R60
[10]  
BAUM J, 1999, IN PRESS PROTEIN FOL