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X-ray absorption spectroscopic investigation of the electronic structure differences in solution and crystalline oxyhemoglobin

机译:X射线吸收光谱研究溶液和结晶氧合血红蛋白的电子结构差异

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摘要

Hemoglobin (Hb) is the heme-containing O2 transport protein essential for life in all vertebrates. The resting high-spin (S = 2) ferrous form, deoxy-Hb, combines with triplet O2, forming diamagnetic (S = 0) oxy-Hb. Understanding this electronic structure is the key first step in understanding transition metal–O2 interaction. However, despite intense spectroscopic and theoretical studies, the electronic structure description of oxy-Hb remains elusive, with at least three different descriptions proposed by Pauling, Weiss, and McClure-Goddard, based on theory, spectroscopy, and crystallography. Here, a combination of X-ray absorption spectroscopy and extended X-ray absorption fine structure, supported by density functional theory calculations, help resolve this debate. X-ray absorption spectroscopy data on solution and crystalline oxy-Hb indicate both geometric and electronic structure differences suggesting that two of the previous descriptions are correct for the Fe–O2 center in oxy-Hb. These results support the multiconfigurational nature of the ground state developed by theoretical results. Additionally, it is shown here that small differences in hydrogen bonding and solvation effects can tune the ground state, tipping it into one of the two probable configurations. These data underscore the importance of solution spectroscopy and show that the electronic structure in the crystalline form may not always reflect the true ground-state description in solution.
机译:血红蛋白(Hb)是在所有脊椎动物中生活必不可少的含血红素的O2转运蛋白。静止的高自旋(S = 2)亚铁形式脱氧Hb与三重态O2结合,形成抗磁性(S = 0)氧Hb。了解这种电子结构是了解过渡金属与O2相互作用的关键的第一步。然而,尽管进行了广泛的光谱和理论研究,但氧合六溴环十二烷的电子结构描述仍然难以捉摸,Pauling,Weiss和McClure-Goddard至少基于理论,光谱学和晶体学提出了三种不同的描述。在这里,结合X射线吸收光谱法和扩展的X射线吸收精细结构,并得到密度泛函理论计算的支持,有助于解决这一争论。溶液和结晶氧-Hb的X射线吸收光谱数据表明几何结构和电子结构均不同,这表明前面的两个描述对于氧-Hb中的Fe-O2中心是正确的。这些结果支持了理论结果所开发的基态的多构性质。另外,这里显示出氢键和溶剂化作用的微小差异可以调节基态,使其处于两种可能的构型之一。这些数据强调了溶液光谱学的重要性,并表明结晶形式的电子结构可能并不总是反映溶液中真实的基态描述。

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