Time-resolved absorption and UV resonance Raman spectra reveal stepwise formation of T quaternary contacts in the allosteric pathway of hemoglobin

被引:62
作者
Balakrishnan, G [1 ]
Case, MA [1 ]
Pevsner, A [1 ]
Zhao, XJ [1 ]
Tengroth, C [1 ]
McLendon, GL [1 ]
Spiro, TG [1 ]
机构
[1] Princeton Univ, Dept Chem, Princeton, NJ 08544 USA
关键词
hemoglobin; allostery; protein dynamics; resonance Raman; transient absorption;
D O I
10.1016/j.jmb.2004.05.012
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
Hemoglobin undergoes a series of molecular changes on the nanosecond and microsecond time-scale following photodissociation of CO ligands. USA We have monitored these processes with a combination of transient absorption and resonance Raman (RR) spectroscopy. The latter have been acquired at higher data rates than previously available, thanks to kilohertz Ti: sapphire laser technology, with frequency-quadrupling into the ultraviolet. As a result of improved resolution of the UVRR time-course, a new intermediate has been identified in the pathway from the R (HbCO) to the T (deoxyHb) state. This intermediate is not detected via absorption transients, since the change in heme absorption is insignificant, but its lifetime agrees with a reported magnetic circular dichroism transient, which has been attributed to a quaternary tryptophan interaction. The new UVRR data allow elaboration of the allosteric pathway by establishing that the T-state quaternary contacts are formed in two well-separated steps, with time constants of 2.9 mus and 21 mus, instead of a single 20 mus process. The first step involves the "hinge" region contacts, as monitored by the Trpbeta37... Aspalpha94 H-bond, while the second involves the "switch" region, as monitored by the Tyralpha42... Aspbeta99 H-bond. A working model for the allosteric pathway is presented. (C) 2004 Elsevier Ltd. All rights reserved.
引用
收藏
页码:843 / 856
页数:14
相关论文
共 82 条
[1]  
Antonini E., 1971, Hemoglobin and myoglobin in their reactions with ligands
[2]   HEMOGLOBIN - STRUCTURAL-CHANGES RELATED TO LIGAND-BINDING AND ITS ALLOSTERIC MECHANISM [J].
BALDWIN, J ;
CHOTHIA, C .
JOURNAL OF MOLECULAR BIOLOGY, 1979, 129 (02) :175-+
[3]   Monitoring the allosteric transition and CO rebinding in hemoglobin with time-resolved FTIR spectroscopy [J].
Chen, RP ;
Spiro, TG .
JOURNAL OF PHYSICAL CHEMISTRY A, 2002, 106 (14) :3413-3419
[4]   APPLICATION OF LINEAR FREE-ENERGY RELATIONS TO PROTEIN CONFORMATIONAL-CHANGES - THE QUATERNARY STRUCTURAL-CHANGE OF HEMOGLOBIN [J].
EATON, WA ;
HENRY, ER ;
HOFRICHTER, J .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1991, 88 (10) :4472-4475
[5]   Allosteric transition pathways in the lactose repressor protein core domains: Asymmetric motions in a homodimer [J].
Flynn, TC ;
Swint-Kruse, L ;
Kong, YF ;
Booth, C ;
Matthews, KS ;
Ma, JP .
PROTEIN SCIENCE, 2003, 12 (11) :2523-2541
[6]   TRANSIENT RAMAN-STUDY OF CO-HEMOPROTEIN PHOTOLYSIS - ORIGIN OF THE QUANTUM YIELD [J].
FRIEDMAN, JM ;
LYONS, KB .
NATURE, 1980, 284 (5756) :570-572
[7]  
FRIEDMAN JM, 1980, HEMOGLOBIN OXYGEN BI
[8]  
Gold TB, 2002, STUD COMP INT DEV, V37, P124
[9]   The effect of water on the rate of conformational change in protein allostery [J].
Goldbeck, RA ;
Paquette, SJ ;
Kliger, DS .
BIOPHYSICAL JOURNAL, 2001, 81 (05) :2919-2934
[10]   Allosteric intermediates in hemoglobin .2. Kinetic modeling of HbCO photolysis [J].
Goldbeck, RA ;
Paquette, SJ ;
Bjorling, SC ;
Kliger, DS .
BIOCHEMISTRY, 1996, 35 (26) :8628-8639