Protein dynamics, folding and misfolding: from basic physical chemistry to human conformational diseases

被引:57
作者
Ferreira, ST [1 ]
De Felice, FG [1 ]
机构
[1] Fed Univ Rio De Janeiro, Inst Ciencias Biomed, Dept Bioquim Med, BR-21944590 Rio De Janeiro, Brazil
关键词
deterministic behavior; molecular individuality; conformational disease; amyloidosis; prion; spongiform encephalopathy; Alzheimer's disease;
D O I
10.1016/S0014-5793(01)02491-7
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
Proteins exhibit a variety of motions ranging from amino acid side-chain rotations to the motions of large domains, Recognition of their conformational flexibility has led to the view that protein molecules undergo fast dynamic interconversion between different conformational substates, This proposal has received support from a wide variety of experimental techniques and from computer simulations of protein dynamics. More recently, studies of the subunit dissociation of oligomeric proteins induced by hydrostatic pressure have shown that the characteristic times for subunit exchange between oligomers and for interconversion between different conformations may be rather slow (hours or days). In such cases, proteins cannot be treated as an ensemble of rapidly interconverting conformational substates, but rather as a persistently heterogeneous population of different long-lived conformers. This is reminiscent of the deterministic behavior exhibited by macroscopic bodies, and may have important implications for our understanding of protein folding and biological functions. Here, we propose that the deterministic behavior of proteins may be closely related to the genesis of conformational diseases, a class of pathological conditions that includes transmissible spongiform encephalopathies, Alzheimer's disease and other amyloidosis, (C) 2001 Published by Elsevier Science B,V, on behalf of the Federation of European Biochemical Societies.
引用
收藏
页码:129 / 134
页数:6
相关论文
共 50 条
[1]   INTERPRETATION OF FLUORESCENCE DECAYS IN PROTEINS USING CONTINUOUS LIFETIME DISTRIBUTIONS [J].
ALCALA, JR ;
GRATTON, E ;
PRENDERGAST, FG .
BIOPHYSICAL JOURNAL, 1987, 51 (06) :925-936
[2]   DOES AGENT OF SCRAPIE REPLICATE WITHOUT NUCLEIC ACID [J].
ALPER, T ;
CRAMP, WA ;
HAIG, DA ;
CLARKE, MC .
NATURE, 1967, 214 (5090) :764-&
[3]   PRINCIPLES THAT GOVERN FOLDING OF PROTEIN CHAINS [J].
ANFINSEN, CB .
SCIENCE, 1973, 181 (4096) :223-230
[4]   PROTEIN STATES AND PROTEIN QUAKES [J].
ANSARI, A ;
BERENDZEN, J ;
BOWNE, SF ;
FRAUENFELDER, H ;
IBEN, IET ;
SAUKE, TB ;
SHYAMSUNDER, E ;
YOUNG, RD .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1985, 82 (15) :5000-5004
[5]   KINETICS VERSUS THERMODYNAMICS IN PROTEIN-FOLDING [J].
BAKER, D ;
AGARD, DA .
BIOCHEMISTRY, 1994, 33 (24) :7505-7509
[6]   IDENTIFICATION OF A PROTEIN THAT PURIFIES WITH THE SCRAPIE PRION [J].
BOLTON, DC ;
MCKINLEY, MP ;
PRUSINER, SB .
SCIENCE, 1982, 218 (4579) :1309-1311
[7]   TRANSMISSION OF BOVINE SPONGIFORM ENCEPHALOPATHY AND SCRAPIE TO MICE - STRAIN VARIATION AND THE SPECIES BARRIER [J].
BRUCE, M ;
CHREE, A ;
MCCONNELL, I ;
FOSTER, J ;
PEARSON, G ;
FRASER, H .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 1994, 343 (1306) :405-411
[8]  
CARERI G, 1984, FLUCTUATING ENZYME, pCH10
[9]   Conformational diversity in a yeast prion dictates its seeding specificity [J].
Chien, P ;
Weissman, JS .
NATURE, 2001, 410 (6825) :223-227
[10]   The molecular biology of prion propagation [J].
Clarke, AR ;
Jackson, GS ;
Collinge, J .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES B-BIOLOGICAL SCIENCES, 2001, 356 (1406) :185-194