DESIGN AND SYNTHESIS OF A HELIX HEPARIN-BINDING PEPTIDE

被引:43
作者
FERRAN, DS
SOBEL, M
HARRIS, RB
机构
[1] VIRGINIA COMMONWEALTH UNIV,MED COLL VIRGINIA,DEPT BIOCHEM & MOLEC BIOPHYS,BOX 614,RICHMOND,VA 23298
[2] VIRGINIA COMMONWEALTH UNIV,MED COLL VIRGINIA,DEPT SURG,DIV VASC SURG,RICHMOND,VA 23298
关键词
D O I
10.1021/bi00136a014
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
Elaboration of heparin-protein-binding interactions is necessary to understand how heparin modulates protein function. Thc heparin-binding domain of some proteins is postulated to be a helix structure which presents a surface of high positive charge density. Thus, a synthetic 19-residue peptide designed to be alpha-helical in character was synthesized, and its interaction with heparin was studied. The peptide was shown to be 75% helix by circular dichroism (CD) spectrometry in neutral pH buffer (at 2-degrees-C); helicity increased to nearly 85% under high ionic strength conditions or to nearly 100% in 75% ethanol. Increasing the temperature of the solution caused a change in the spectral envelope consistent with a coil transition of the peptide. The midpoint of the transition (i.e., the temperature at which the helix content was determined to be 50%) was 25-degrees-C, and the determined van't Hoff enthalpy change (DELTA-H(vH)) was 3.2 kcal/mol of peptide. By CD, heparin increases the helix content of the peptide to 100% and increases the apparent thermal stability of the peptide by about 1 kcal/mol. The melting point for the helix/coil transition of the heparin-peptide complex was 50-degrees-C. The thermal coefficient of the transition (almost-equal-yo 300 deg.cm2.dmol-1.degrees-C-1) was essentially the same for the peptide alone or the peptide-heparin complex. Dissociation of the complex under high ionic strength conditions was also observed in the CD experiment. Biological assays showed less heparin-binding activity than expected (micromolar K(D) values), but this was attributed to the absence of critical lysyl residues in the peptide. Nonetheless, this type of helix peptide can serve as a framework for the design of other peptides which might bind heparin(s) with unique, specific biological properties.
引用
收藏
页码:5010 / 5016
页数:7
相关论文
共 45 条
[1]  
ATKINS R, 1976, HEPARIN CHEM CHEM US, P155
[2]  
BIENKOWSKI MJ, 1985, J BIOL CHEM, V260, P356
[3]   MOLECULAR MODELING OF PROTEIN-GLYCOSAMINOGLYCAN INTERACTIONS [J].
CARDIN, AD ;
WEINTRAUB, HJR .
ARTERIOSCLEROSIS, 1989, 9 (01) :21-32
[4]  
CARDIN AD, 1990, Patent No. 901004481
[5]   ALPHA-1-ANTITRYPSIN AND THE SERPINS - VARIATION AND COUNTERVARIATION [J].
CARRELL, R ;
TRAVIS, J .
TRENDS IN BIOCHEMICAL SCIENCES, 1985, 10 (01) :20-24
[6]   CULTURED ENDOTHELIAL-CELLS PRODUCE A HEPARIN-LIKE INHIBITOR OF SMOOTH-MUSCLE CELL-GROWTH [J].
CASTELLOT, JJ ;
ADDONIZIO, ML ;
ROSENBERG, R ;
KARNOVSKY, MJ .
JOURNAL OF CELL BIOLOGY, 1981, 90 (02) :372-379
[7]   LARGE DIFFERENCES IN THE HELIX PROPENSITIES OF ALANINE AND GLYCINE [J].
CHAKRABARTTY, A ;
SCHELLMAN, JA ;
BALDWIN, RL .
NATURE, 1991, 351 (6327) :586-588
[8]   CIRCULAR DICHROIC ANALYSIS OF PROTEIN CONFORMATION - INCLUSION OF BETA-TURNS [J].
CHANG, CT ;
WU, CSC ;
YANG, JT .
ANALYTICAL BIOCHEMISTRY, 1978, 91 (01) :13-31
[9]   THE STRUCTURE OF HUMAN ACIDIC FIBROBLAST GROWTH-FACTOR AND ITS INTERACTION WITH HEPARIN [J].
COPELAND, RA ;
JI, HL ;
HALFPENNY, AJ ;
WILLIAMS, RW ;
THOMPSON, KC ;
HERBER, WK ;
THOMAS, KA ;
BRUNER, MW ;
RYAN, JA ;
MARQUISOMER, D ;
SANYAL, G ;
SITRIN, RD ;
YAMAZAKI, S ;
MIDDAUGH, CR .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1991, 289 (01) :53-61
[10]  
Fasman G. D., 1989, PREDICTION PROTEIN S, P193