Lessons from the post-genomic era: Globin diversity beyond oxygen binding and transport

珠蛋白 神经红蛋白 生物 真核生物 肌红蛋白 氧气输送 基因组 遗传学 脊椎动物 血红蛋白 进化生物学 计算生物学 生物化学 基因 化学 氧气 有机化学
作者
Anna Keppner,Darko Maric,Miguel Correia,Teng Wei Koay,Ilaria M.C. Orlando,Serge N. Vinogradov,David Hoogewijs
出处
期刊:Redox biology [Elsevier BV]
卷期号:37: 101687-101687 被引量:38
标识
DOI:10.1016/j.redox.2020.101687
摘要

Vertebrate hemoglobin (Hb) and myoglobin (Mb) were among the first proteins whose structures and sequences were determined over 50 years ago. In the subsequent pregenomic period, numerous related proteins came to light in plants, invertebrates and bacteria, that shared the myoglobin fold, a signature sequence motif characteristic of a 3-on-3 α-helical sandwich. Concomitantly, eukaryote and bacterial globins with a truncated 2-on-2 α-helical fold were discovered. Genomic information over the last 20 years has dramatically expanded the list of known globins, demonstrating their existence in a limited number of archaeal genomes, a majority of bacterial genomes and an overwhelming majority of eukaryote genomes. In vertebrates, 6 additional globin types were identified, namely neuroglobin (Ngb), cytoglobin (Cygb), globin E (GbE), globin X (GbX), globin Y (GbY) and androglobin (Adgb). Furthermore, functions beyond the familiar oxygen transport and storage have been discovered within the vertebrate globin family, including NO metabolism, peroxidase activity, scavenging of free radicals, and signaling functions. The extension of the knowledge on globin functions suggests that the original roles of bacterial globins must have been enzymatic, involved in defense against NO toxicity, and perhaps also as sensors of O2, regulating taxis away or towards high O2 concentrations. In this review, we aimed to discuss the evolution and remarkable functional diversity of vertebrate globins with particular focus on the variety of non-canonical expression sites of mammalian globins and their according impressive variability of atypical functions.
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