How the lipid-free structure of the N-terminal truncated human apoA-I converts to the lipid-bound form: new insights from NMR and X-ray structural comparison

被引:19
作者
Wang, GS [1 ]
机构
[1] Univ Nebraska, Med Ctr, Eppley Inst Res Canc, Nebraska Med Ctr 986805, Omaha, NE 68198 USA
关键词
NMR; X-ray diffraction; high-density lipoprotein; apolipoprotein A-I; lipid binding; aromatic residues;
D O I
10.1016/S0014-5793(02)03354-9
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 X-ray structure of the N-terminal truncated human apoA-I [Borhani et a]., Proc. Natl. Acad. Sci. USA 94 (1997) 122911 and the NMR structure of intact human apoA-I [Okon et al., FEBS Lett. 517 (2002) 139] found similar repeating helices. The crystal structure is a twisted circular four-helix bundle, consisting of four molecules of apoA-I(44-243), where four copies of the lecithin: cholesterol acyltransferase (LCAT)-activating domains are located outside the ring structure, while the aromatic-rich strong lipid-binding domains are inside. This architecture suggests a lipid-binding mechanism that lipids directly enter the hole of the crystal structure. Indeed, four copies of Trp50 and Trp72 are exposed and oriented toward the center of the ring, initiating lipid binding. This is followed by the inside-out rotations of the terminal helices to make a belt with all the hydrophobic faces of the helices facing inward. Such lipid-binding induced rotations have an impact on the conformation of the lipid-free form. Indeed, the structure of residues 78-81 changes from helical (free) to disordered (bound) while the structure of residues 221-227 changes from extended to helical. (C) 2002 Published by Elsevier Science B.V. on behalf of the Federation of European Biochemical Societies.
引用
收藏
页码:157 / 161
页数:5
相关论文
共 36 条
[1]   Crystal structure of truncated human apolipoprotein A-I suggests a lipid-bound conformation [J].
Borhani, DW ;
Rogers, DP ;
Engler, JA ;
Brouillette, CG .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (23) :12291-12296
[2]   MOLECULAR-STRUCTURE OF AN APOLIPOPROTEIN DETERMINED AT 2.5-A RESOLUTION [J].
BREITER, DR ;
KANOST, MR ;
BENNING, MM ;
WESENBERG, G ;
LAW, JH ;
WELLS, MA ;
RAYMENT, I ;
HOLDEN, HM .
BIOCHEMISTRY, 1991, 30 (03) :603-608
[3]   Mouse models of atherosclerosis [J].
Breslow, JL .
SCIENCE, 1996, 272 (5262) :685-688
[4]   AMINO-ACID SEQUENCE OF HUMAN APOA-I, AN APOLIPOPROTEIN ISOLATED FROM HIGH-DENSITY LIPOPROTEINS [J].
BREWER, HB ;
FAIRWELL, T ;
LARUE, A ;
RONAN, R ;
HOUSER, A ;
BRONZERT, TJ .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1978, 80 (03) :623-630
[5]   Structural models of human apolipoprotein A-I: a critical analysis and review [J].
Brouillette, CG ;
Anantharamaiah, GM ;
Engler, JA ;
Borhani, DW .
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR AND CELL BIOLOGY OF LIPIDS, 2001, 1531 (1-2) :4-46
[6]   AROMATIC-AROMATIC INTERACTION - A MECHANISM OF PROTEIN-STRUCTURE STABILIZATION [J].
BURLEY, SK ;
PETSKO, GA .
SCIENCE, 1985, 229 (4708) :23-28
[7]   NMR studies of lipoprotein structure [J].
Cushley, RJ ;
Okon, M .
ANNUAL REVIEW OF BIOPHYSICS AND BIOMOLECULAR STRUCTURE, 2002, 31 :177-206
[8]  
Datta G, 2001, J LIPID RES, V42, P1096
[9]   PROTEIN COFACTOR OF LECITHIN-CHOLESTEROL ACYLTRANSFERASE [J].
FIELDING, CJ ;
FIELDING, PE ;
SHORE, VG .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1972, 46 (04) :1493-&
[10]  
Frank PG, 2000, J LIPID RES, V41, P853