4.4 Article

Insights into the solution structure of human deoxyhemoglobin in the absence and presence of an allosteric effector

期刊

BIOCHEMISTRY
卷 46, 期 35, 页码 9973-9980

出版社

AMER CHEMICAL SOC
DOI: 10.1021/bi700935z

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  1. NCRR NIH HHS [S10RR-017815] Funding Source: Medline
  2. NHLBI NIH HHS [R01HL-024525, R01 HL024525-27, R01 HL024525] Funding Source: Medline
  3. NIGMS NIH HHS [P41GM066340, P41 GM066340] Funding Source: Medline

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We present a nuclear magnetic resonance (NMR) study in solution of the structures of human normal hemoglobin (Hb A) in the deoxy or unligated form in the absence and presence of an allosteric effector, inositol hexaphosphate (IHP), using N-15-H-1 residual dipolar coupling (RDC) measurements. There are several published crystal structures for deoxyhemoglobin A (deoxy-Hb A), and it has been reported that the functional properties of Hb A in single crystals are different from those in solution. Carbonmonoxyhemoglobin A (HbCO A) can also be crystallized in several structures. Our recent RDC studies of HbCO A in the absence and presence of IHP have shown that the solution structure of this Hb molecule is distinctly different from its classical crystal structures (R and R2). To have a better understanding of the structure-function relationship of Hb A under physiological conditions, we need to evaluate its structures in both ligated and unligated states in solution. Here, the intrinsic paramagnetic property of deoxy-Hb A has been exploited for the measurement of RDCs using the magnetic-field dependence of the apparent one-bond H-1-N-15 J couplings. Our RDC analysis suggests that the quaternary and tertiary structures of deoxy-Hb A in solution differ from its recently determined high-resolution crystal structures. Upon binding of IHP, structural changes in deoxy-Hb A are also observed, and these changes are largely within the alpha(1)beta(1) (or alpha(2)beta(2)) dimer itself. These new structural findings allow us to gain a deeper insight into the structure-function relationship of this interesting allosteric protein.

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