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生物合成修饰的四吡咯类化合物——生命的色素。

Biosynthesis of the modified tetrapyrroles-the pigments of life.

机构信息

Department of Biochemistry and Molecular Biology, The Pennsylvania State University, University Park, Pennsylvania 16802

Department of Chemistry and Biochemistry, Montana State University, Bozeman, Montana 59717.

出版信息

J Biol Chem. 2020 May 15;295(20):6888-6925. doi: 10.1074/jbc.REV120.006194. Epub 2020 Apr 2.

Abstract

Modified tetrapyrroles are large macrocyclic compounds, consisting of diverse conjugation and metal chelation systems and imparting an array of colors to the biological structures that contain them. Tetrapyrroles represent some of the most complex small molecules synthesized by cells and are involved in many essential processes that are fundamental to life on Earth, including photosynthesis, respiration, and catalysis. These molecules are all derived from a common template through a series of enzyme-mediated transformations that alter the oxidation state of the macrocycle and also modify its size, its side-chain composition, and the nature of the centrally chelated metal ion. The different modified tetrapyrroles include chlorophylls, hemes, siroheme, corrins (including vitamin B), coenzyme F, heme , and bilins. After nearly a century of study, almost all of the more than 90 different enzymes that synthesize this family of compounds are now known, and expression of reconstructed operons in heterologous hosts has confirmed that most pathways are complete. Aside from the highly diverse nature of the chemical reactions catalyzed, an interesting aspect of comparative biochemistry is to see how different enzymes and even entire pathways have evolved to perform alternative chemical reactions to produce the same end products in the presence and absence of oxygen. Although there is still much to learn, our current understanding of tetrapyrrole biogenesis represents a remarkable biochemical milestone that is summarized in this review.

摘要

经过近一个世纪的研究,现在几乎已经了解了合成这一家族化合物的 90 多种不同酶中的大多数,并且在异源宿主中表达重组操纵子已证实大多数途径是完整的。除了所催化的化学反应具有高度多样性之外,比较生物化学的一个有趣方面是观察不同的酶甚至整个途径如何进化以进行替代化学反应,从而在有氧和无氧的情况下产生相同的终产物。尽管还有很多需要了解,但我们目前对卟啉生物合成的理解代表了一个显著的生化里程碑,本文对此进行了总结。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a05/7242693/0c355ae9f07b/zbc9992023450001.jpg

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