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微型血红素蛋白:结构的可设计性与功能的多样性

Mini Heme-Proteins: Designability of Structure and Diversity of Functions.

作者信息

Rai Jagdish

机构信息

Institute of Forensic Science and Criminology, Panjab University, Chandigarh, Pin code 160014. India.

出版信息

Curr Protein Pept Sci. 2017 Aug 30;18(11):1132-1140. doi: 10.2174/1389203718666170515144037.

Abstract

Natural heme proteins may have heme bound to poly-peptide chain as a cofactor via noncovalent forces or heme as a prosthetic group may be covalently bound to the proteins. Nature has used porphyrins in diverse functions like electron transfer, oxidation, reduction, ligand binding, photosynthesis, signaling, etc. by modulating its properties through diverse protein matrices. Synthetic chemists have tried to utilize these molecules in equally diverse industrial and medical applications due to their versatile electro-chemical and optical properties. The heme iron has catalytic activity which can be modulated and enhanced for specific applications by protein matrix around it. Heme proteins can be designed into novel enzymes for sterio specific catalysis ranging from oxidation to reduction. These designed heme-proteins can have applications in industrial catalysis and biosensing. A peptide folds around heme easily due to hydrophobic effect of the large aromatic ring of heme. The directional property of co-ordinate bonding between peptide and metal ion in heme further specifies the structure. Therefore heme proteins can be easily designed for targeted structure and catalytic activity. The central aromatic chemical entity in heme viz. porphyrin is a very ancient molecule. Its presence in the prebiotic soup and in all forms of life suggests that it has played a vital role in the origin and progressive evolution of living organisms. Porphyrin macrocycles are highly conjugated systems composed of four modified pyrrole subunits interconnected at their α -carbon atoms via methine (=CH-) bridges. Initial minimalist models of hemoproteins focused on effect of heme-ligand co-ordinate bonding on chemical reactivity, spectroscopy, electrochemistry and magnetic properties of heme. The great sensitivity of these spectroscopic features of heme to its surrounding makes them extremely useful in structural elucidation of designed heme-peptide complexes. Therefore heme proteins are easier to work on for designing novel proteins for industrial and medical applications.

摘要

天然血红素蛋白中的血红素可能通过非共价力作为辅因子与多肽链结合,或者作为辅基的血红素可能与蛋白质共价结合。自然界通过不同的蛋白质基质调节卟啉的性质,使其具有多种功能,如电子转移、氧化、还原、配体结合、光合作用、信号传导等。由于其多样的电化学和光学性质,合成化学家试图将这些分子用于同样多样的工业和医学应用中。血红素铁具有催化活性,其周围的蛋白质基质可对其进行调节并增强其在特定应用中的活性。血红素蛋白可被设计成新型酶,用于从氧化到还原的立体特异性催化。这些设计的血红素蛋白可应用于工业催化和生物传感。由于血红素大芳香环的疏水作用,肽很容易围绕血红素折叠。肽与血红素中金属离子之间配位键的方向性进一步确定了结构。因此,血红素蛋白可以很容易地被设计成具有特定结构和催化活性的蛋白。血红素中的中心芳香化学实体,即卟啉,是一种非常古老的分子。它存在于前生物汤和所有生命形式中,这表明它在生物体的起源和进化过程中发挥了至关重要的作用。卟啉大环是由四个修饰的吡咯亚基通过次甲基(=CH-)桥在其α-碳原子处相互连接而成的高度共轭体系。最初的血红素蛋白极简模型关注血红素-配体配位键对血红素化学反应性、光谱学、电化学和磁性的影响。血红素的这些光谱特征对其周围环境的高度敏感性使得它们在设计的血红素-肽复合物的结构解析中极其有用。因此,对于设计用于工业和医学应用的新型蛋白质来说,研究血红素蛋白更容易。

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