Biological importance of arginine: A comprehensive review of the roles in structure, disorder, and functionality of peptides and proteins

生物化学 精氨酸 化学 蛋白质精氨酸甲基转移酶5 氨基酸 精氨酸酶 鸟氨酸 蛋白质折叠 甲基化 DNA 甲基转移酶
作者
Munishwar N. Gupta,Vladimir N. Uversky
出处
期刊:International Journal of Biological Macromolecules [Elsevier]
卷期号:257: 128646-128646 被引量:15
标识
DOI:10.1016/j.ijbiomac.2023.128646
摘要

Arginine shows Jekyll and Hyde behavior in several respects. It participates in protein folding via ionic and H-bonds and cation-pi interactions; the charge and hydrophobicity of its side chain make it a disorder-promoting amino acid. Its methylation in histones; RNA binding proteins; chaperones regulates several cellular processes. The arginine-centric modifications are important in oncogenesis and as biomarkers in several cardiovascular diseases. The cross-links involving arginine in collagen and cornea are involved in pathogenesis of tissues but have also been useful in tissue engineering and wound-dressing materials. Arginine is a part of active site of several enzymes such as GTPases, peroxidases, and sulfotransferases. Its metabolic importance is obvious as it is involved in production of urea, NO, ornithine and citrulline. It can form unusual functional structures such as molecular tweezers in vitro and sprockets which engage DNA chains as part of histones in vivo. It has been used in design of cell-penetrating peptides as drugs. Arginine has been used as an excipient in both solid and injectable drug formulations; its role in suppressing opalescence due to liquid-liquid phase separation is particularly very promising. It has been known as a suppressor of protein aggregation during protein refolding. It has proved its usefulness in protein bioseparation processes like ion-exchange, hydrophobic and affinity chromatographies. Arginine is an amino acid, whose importance in biological sciences and biotechnology continues to grow in diverse ways.
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