Discovering a uniform functional trade-off of the CBC-type 2,3-oxidosqualene cyclases and deciphering its chemical logic.

Zhang, Fan; Wang, Yunpeng; Yue, Jingyang; Zhang, Rongrong; Hu, Yong-Er; Huang, Ruoshi; Ji, Ai-Jia; Hess, B Andes et al. · Sci Adv · 2023

basic_science · Level V

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Abstract

Many functionally promiscuous plant 2,3-oxidosqualene cyclases (OSCs) have been found, but complete functional reshaping is rarely reported. In this study, we have identified two new plant OSCs: a unique protostadienol synthase (<i>Ao</i>PDS) and a common cycloartenol synthase (<i>Ao</i>CAS) from <i>Alisma orientale</i> (Sam.) Juzep. Multiscale simulations and mutagenesis experiments revealed that threonine-727 is an essential residue responsible for protosta-13 (17),24-dienol biosynthesis in <i>Ao</i>PDS and that the F726T mutant completely reshapes the native function of <i>Ao</i>CAS into a PDS function to yield almost exclusively protosta-13 (17),24-dienol. Unexpectedly, various native functions were uniformly reshaped into a PDS function by introducing the phenylalanine → threonine substitution at this conserved position in other plant and non-plant chair-boat-chair-type OSCs. Further computational modeling elaborated the trade-off mechanisms of the phenylalanine → threonine substitution that leads to the PDS activity. This study demonstrates a general strategy for functional reshaping by using a plastic residue based on the decipherment of the catalytic mechanism.

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