Human Deiminases: Isoforms, Substrate Specificities, Kinetics, and Detection.

Q1 Medicine
Bushra Amin, Wolfgang Voelter
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引用次数: 9

Abstract

Peptidylarginine deiminase (PAD) enzymes are of enormous interest in biomedicine. They catalyze the conversion of a positively-charged guanidinium at an arginine side chain into a neutral ureido group. As a result of this conversion, proteins acquire the non-ribosomally encoded amino acid "citrulline". This imposes critical influences on the structure and function of the target molecules. In multiple sclerosis, myelin hyper-citrullination promotes demyelination by reducing its compaction and triggers auto-antibody production. Immune responses to citrulline-containing proteins play a central role in the pathogenesis of autoimmune diseases. Moreover, auto-antibodies, specific to citrullinated proteins, such as collagen type I and II and filaggrin, are early detectable in rheumatoid arthritis, serving as diagnostic markers of the disease. Despite their significance, little is understood about the role in demyelinating disorders, diversified cancers, and auto-immune diseases. To impart their biological and pathological effects, it is crucial to better understand the reaction mechanism, kinetic properties, substrate selection, and specificities of peptidylarginine deiminase isoforms.Many aspects of PAD biochemistry and physiology have been ignored in past, but, herein is presented a comprehensive survey to improve our current understandings of the underlying mechanism and regulation of PAD enzymes.

人类脱亚胺酶:异构体,底物特异性,动力学和检测。
肽精氨酸脱亚胺酶(PAD)在生物医学领域具有广泛的应用前景。它们催化在精氨酸侧链上带正电的胍转化为中性的尿醛基。作为这种转化的结果,蛋白质获得非核糖体编码的氨基酸“瓜氨酸”。这对靶分子的结构和功能产生了重要的影响。在多发性硬化症中,髓磷脂高瓜氨酸化通过降低其压实度来促进脱髓鞘,并触发自身抗体的产生。对含瓜氨酸蛋白的免疫反应在自身免疫性疾病的发病机制中起着核心作用。此外,对瓜氨酸化蛋白(如I型和II型胶原蛋白和聚丝蛋白)特异性的自身抗体在类风湿关节炎中可以早期检测到,作为该疾病的诊断标记。尽管它们具有重要意义,但人们对脱髓鞘疾病、多种癌症和自身免疫性疾病的作用知之甚少。为了了解它们的生物学和病理学作用,更好地了解肽精氨酸脱亚胺酶同工型的反应机制、动力学性质、底物选择和特异性是至关重要的。PAD生物化学和生理学的许多方面在过去被忽视,但是,本文提出了一个全面的调查,以提高我们目前对PAD酶的潜在机制和调控的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.40
自引率
0.00%
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