激进的
氧化剂
单加氧酶
溶解循环
氧化还原
稳健性(进化)
酶
催化作用
化学
组合化学
生物化学
生物
有机化学
遗传学
基因
细胞色素P450
病毒
作者
Iván Ayuso‐Fernández,Tom Z. Emrich‐Mills,Ole Golten,Zarah Forsberg,Kelsi R. Hall,László G. Nagy,Morten Sørlie,Åsmund K. Røhr,Vincent G. H. Eijsink
标识
DOI:10.1101/2025.06.16.659879
摘要
Abstract Enzymes known as lytic polysaccharide monooxygenases (LPMOs) are exceptionally powerful small redox enzymes that master the controlled generation and productive use of potentially damaging hydroxyl radicals in what is essentially a H 2 O 2 -driven peroxygenase reaction. We have used ancestral sequence reconstruction and enzyme resurrection to unravel evolutionary steps leading to this unprecedented catalytic power. Real-time monitoring of copper re-oxidation and amino acid radical formation showed evolutionary improvement of both the capacity to avoid futile turnover of H 2 O 2 and the ability to scavenge damaging radicals resulting from such turnover through a hole hopping pathway. These results show how selective pressure imposed by the need for generating a highly oxidizing intermediate shapes metalloenzymes, involving large parts of the enzyme, well beyond the catalytic center.
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