Substrate specificities of two ketosynthases in eukaryotic microalgal and prokaryotic marine bacterial DHA synthases

K Kaito Ogata (Biological Chemistry and Engineering Course, Graduate School of Chemical Sciences and Engineering, Hokkaido University) R Riku Nakama (Biological Chemistry and Engineering Course, Graduate School of Chemical Sciences and Engineering, Hokkaido University) H Hiyu Kobayashi (Biological Chemistry and Engineering Course, Graduate School of Chemical Sciences and Engineering, Hokkaido University) T Tomoya Kawata (Biological Chemistry and Engineering Course, Graduate School of Chemical Sciences and Engineering, Hokkaido University) C Chitose Maruyama (Graduate School of Bioscience and Biotechnology, Fukui Prefectural University, Eiheiji-cho, Fukui 910-1195, Japan) T Takeshi Tsunoda (Division of Applied Chemistry, Graduate School of Engineering, Hokkaido University) T Tetsuro Ujihara (Kyowa Hakko Bio Co. Ltd.) Y Yoshimitsu Hamano (Graduate School of Bioscience and Biotechnology, Fukui Prefectural University, Eiheiji-cho, Fukui 910-1195, Japan) Y Yasushi Ogasawara (Graduate School of Engineering) T Tohru Dairi (Graduate School of Engineering)

Abstract

Highly reducing iterative polyketide synthases (HR-iPKSs) are huge enzyme complexes with multiple catalytic domains that biosynthesize polyketides by intrinsically programmed iterative carbon chain extensions and reductions. Unlike most HR-iPKSs, which possess a single ketosynthase (KS) domain for all carbon chain elongations, polyunsaturated fatty acid (PUFA) synthases contain two KS domains. We previously examined the substrate specificities of two KS domains of prokaryotic marine PUFA synthases with several acyl-ACP intermediates and showed that the two KS domains are utilized differentially depending on the carbon chain length. In this study, we investigated two KS domains in a eukaryotic microalgal DHA synthase, KS A and KS B , which show low similarities to those of prokaryotic marine enzymes, together with almost all the acyl-ACP intermediates. C6-, C12-, and C18-ACPs were exclusively accepted by KS A while KS B utilized C-8. C14- and C20-ACPs. In contrast, both KS A and KS B showed activities against C2-, C4-, and C10-ACPs. A general tendency was observed in which both the prokaryotic KS and the eukaryotic KS recognized the acyl structures in the vicinity of the thioester in ACP substrates except for short-chain substrates.

Article Details

Volume / Issue Vol. 122, Issue 12
Published March 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

K

Kaito Ogata

Biological Chemistry and Engineering Course, Graduate School of Chemical Sciences and Engineering, Hokkaido University

R

Riku Nakama

Biological Chemistry and Engineering Course, Graduate School of Chemical Sciences and Engineering, Hokkaido University

H

Hiyu Kobayashi

Biological Chemistry and Engineering Course, Graduate School of Chemical Sciences and Engineering, Hokkaido University

T

Tomoya Kawata

Biological Chemistry and Engineering Course, Graduate School of Chemical Sciences and Engineering, Hokkaido University

C

Chitose Maruyama

Graduate School of Bioscience and Biotechnology, Fukui Prefectural University, Eiheiji-cho, Fukui 910-1195, Japan

T

Takeshi Tsunoda

Division of Applied Chemistry, Graduate School of Engineering, Hokkaido University

T

Tetsuro Ujihara

Kyowa Hakko Bio Co. Ltd.

Y

Yoshimitsu Hamano

Graduate School of Bioscience and Biotechnology, Fukui Prefectural University, Eiheiji-cho, Fukui 910-1195, Japan

Y

Yasushi Ogasawara

Graduate School of Engineering

T

Tohru Dairi

Graduate School of Engineering