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蛋白质中光学骨干-侧链电荷转移跃迁对二级结构和修饰敏感。

Optical backbone-sidechain charge transfer transitions in proteins sensitive to secondary structure and modifications.

机构信息

Department of Chemical Sciences, Tata Institute of Fundamental Research, Dr. Homi Bhabha Road, Colaba, Mumbai 400005, India.

出版信息

Faraday Discuss. 2018 Apr 17;207(0):115-135. doi: 10.1039/c7fd00203c.

Abstract

The absorption of light by proteins can induce charge transfer (CT) transitions in the UV-visible range of the electromagnetic spectrum. Metal-ligand complexes or active site prosthetic groups which absorb in the visible region exhibit prominent CT transitions. Furthermore, the protein backbone also exhibits CT transitions in the far UV range. In this manuscript, we present a detailed computational study of new near UV-visible CT transitions that involve amino acids with charged side chains. Specifically, using time dependent density functional theory calculations, we examine the absorption spectra of naturally charged amino acids (Lys, Glu, Arg, Asp and His), extracted from solution phase protein structures generated by classical molecular dynamics simulations, and phosphorylated amino acids (Tyr, Thr and Ser) from experimentally determined protein structures. We show that amino acids with charged sidechains present a directed electronic donor-bridge-acceptor paradigm, with the lowest energy optical excitations demonstrating peptide backbone-sidechain charge separations. The UV-visible spectral range of the backbone-sidechain CT transitions is determined by the chemical nature of the donor, bridge and acceptor groups within each amino acid, amino acid conformation and the protein secondary structure where the amino acids are located. Photoinduced CT occurs in opposite directions for the anionic and cationic amino acids along the ground state dipole moment vector for the chromophores. We find that photoinduced charge separation is more facile for the anionic amino acids (Asp, Glu, pSer, pThr and pTyr) relative to that for the cationic amino acids (Lys, Arg and Hsp). Our results provide a foundation for the development of spectroscopic markers based on the recently proposed Protein Charge Transfer Spectra (ProCharTS) which are relevant for the study of DNA-binding or intrinsically disordered proteins that are rich in charged amino acids.

摘要

蛋白质对光的吸收会在电磁光谱的紫外可见范围内诱导电荷转移 (CT) 跃迁。在可见区域吸收的金属配体络合物或活性部位辅基表现出明显的 CT 跃迁。此外,蛋白质骨架在远紫外区也表现出 CT 跃迁。在本文中,我们提出了一个详细的计算研究,涉及带有带电侧链的氨基酸的新近紫外可见 CT 跃迁。具体来说,我们使用含时密度泛函理论计算,研究了从经典分子动力学模拟生成的溶液相蛋白质结构中提取的天然带电氨基酸(Lys、Glu、Arg、Asp 和 His)以及从实验确定的蛋白质结构中提取的磷酸化氨基酸(Tyr、Thr 和 Ser)的吸收光谱。我们表明,带有带电侧链的氨基酸呈现出定向的电子给体-桥-受体范例,最低能量的光学激发表现出肽骨架-侧链电荷分离。骨架-侧链 CT 跃迁的紫外可见光谱范围取决于每个氨基酸中供体、桥和受体基团的化学性质、氨基酸构象以及氨基酸所在的蛋白质二级结构。在发色团的基态偶极矩向量上,阴离子和阳离子氨基酸的光诱导 CT 发生在相反的方向。我们发现,对于阴离子氨基酸(Asp、Glu、pSer、pThr 和 pTyr),光诱导电荷分离比阳离子氨基酸(Lys、Arg 和 Hsp)更容易。我们的结果为基于最近提出的蛋白质电荷转移光谱(ProCharTS)的光谱标记物的发展提供了基础,这对于研究富含带电氨基酸的 DNA 结合或固有无序蛋白质具有重要意义。

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