Hemoglobin (Hb) plays a central role in biological oxidation by efficiently transporting O2, the vital oxidant, from the lung to the tissues and CO2, one of the major waste products of metabolism, from the tissues to the lung. Thus, understanding the molecular mechanism of how Hb regulates its functions is of biomedical significance. The two-state allosteric model of Monod, Wyman, and Changeux (MWC) and Perutz has been long considered the most plausible description of a wide variety of structural and functional data on the cooperative O2 binding to Hb under physiological conditions. Recent work performed under the auspices of this grant has challenged the fundamental assumption of the MWC/Perutz model, namely, that the O2 affinity of Hb is primarily controlled by the T/R quaternary structural transition. Work performed in our laboratory shows that a new """"""""global allostery"""""""" model is required to fully account for the large variations of oxygenation properties observed in the presence of heterotropic allosteric effectors. This """"""""global allostery"""""""" model proposes that the tertiary structural changes induced by the interactions of Hb in both T (deoxy) and R (oxy) states with heterotropic allosteric effectors primarily modulate functions of Hb such as the O2 affinity, cooperativity, and Bohr effect. This proposal aims at investigating the molecular functions of Hb based upon the """"""""global allostery"""""""" model using thermodynamic, kinetic, calorimetric, spectroscopic, structural, and computational techniques in order to establish a viable molecular mechanism for cooperativity and allostery in Hb that explains the functional behavior of Hb from a global viewpoint. Elucidation of the molecular mechanism of allostery of Hb will undoubtedly contribute to our further understanding of the mechanisms of allosteric enzymes which play vital roles in the control and regulation of metabolic processes.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL014508-38
Application #
7065607
Study Section
Physical Biochemistry Study Section (PB)
Program Officer
Peterson, Charles M
Project Start
1977-03-01
Project End
2009-06-30
Budget Start
2006-07-01
Budget End
2009-06-30
Support Year
38
Fiscal Year
2006
Total Cost
$507,479
Indirect Cost
Name
University of Pennsylvania
Department
Biochemistry
Type
Schools of Medicine
DUNS #
042250712
City
Philadelphia
State
PA
Country
United States
Zip Code
19104
Yonetani, Takashi; Laberge, Monique (2008) Protein dynamics explain the allosteric behaviors of hemoglobin. Biochim Biophys Acta 1784:1146-58
Laberge, Monique; Yonetani, Takashi (2008) Molecular dynamics simulations of hemoglobin A in different states and bound to DPG: effector-linked perturbation of tertiary conformations and HbA concerted dynamics. Biophys J 94:2737-51
Laberge, Monique; Yonetani, Takashi (2007) Common dynamics of globin family proteins. IUBMB Life 59:528-34
Egawa, Tsuyoshi; Tsuneshige, Antonio; Suematsu, Makoto et al. (2007) Method for determination of association and dissociation rate constants of reversible bimolecular reactions by isothermal titration calorimeters. Anal Chem 79:2972-8
Laberge, Monique; Kovesi, Istvan; Yonetani, Takashi et al. (2006) Normal mode analysis of the horseradish peroxidase collective motions: correlation with spectroscopically observed heme distortions. Biopolymers 82:425-9
Schay, Gusztav; Smeller, Laszlo; Tsuneshige, Antonio et al. (2006) Allosteric effectors influence the tetramer stability of both R- and T-states of hemoglobin A. J Biol Chem 281:25972-83
Suganuma, Kazuhiro; Tsukada, Kosuke; Kashiba, Misato et al. (2006) Erythrocytes with T-state-stabilized hemoglobin as a therapeutic tool for postischemic liver dysfunction. Antioxid Redox Signal 8:1847-55
Kovesi, I; Schay, G; Yonetani, T et al. (2006) High pressure reveals that the stability of interdimeric contacts in the R- and T-state of HbA is influenced by allosteric effectors: Insights from computational simulations. Biochim Biophys Acta 1764:516-21
Yokoyama, Takeshi; Neya, Saburo; Tsuneshige, Antonio et al. (2006) R-state haemoglobin with low oxygen affinity: crystal structures of deoxy human and carbonmonoxy horse haemoglobin bound to the effector molecule L35. J Mol Biol 356:790-801
Nagatomo, Shigenori; Nagai, Masako; Mizutani, Yasuhisa et al. (2005) Quaternary structures of intermediately ligated human hemoglobin a and influences from strong allosteric effectors: resonance Raman investigation. Biophys J 89:1203-13

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