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Insights into acylation mechanisms: co‐expression of serine carboxypeptidase‐like acyltransferases and their non‐catalytic companion paralogs

Serine carboxypeptidase‐like acyltransferases (SCPL‐ATs) play a vital role in the diversification of plant metabolites. Galloylated flavan‐3‐ols highly accumulate in tea (Camellia sinensis), grape (Vitis vinifera), and persimmon (Diospyros kaki). To date, the biosynthetic mechanism of these compound...

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Autores principales: Yao, Shengbo, Liu, Yajun, Zhuang, Juhua, Zhao, Yue, Dai, Xinlong, Jiang, Changjuan, Wang, Zhihui, Jiang, Xiaolan, Zhang, Shuxiang, Qian, Yumei, Tai, Yuling, Wang, Yunsheng, Wang, Haiyan, Xie, De‐Yu, Gao, Liping, Xia, Tao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9541279/
https://www.ncbi.nlm.nih.gov/pubmed/35437852
http://dx.doi.org/10.1111/tpj.15782
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author Yao, Shengbo
Liu, Yajun
Zhuang, Juhua
Zhao, Yue
Dai, Xinlong
Jiang, Changjuan
Wang, Zhihui
Jiang, Xiaolan
Zhang, Shuxiang
Qian, Yumei
Tai, Yuling
Wang, Yunsheng
Wang, Haiyan
Xie, De‐Yu
Gao, Liping
Xia, Tao
author_facet Yao, Shengbo
Liu, Yajun
Zhuang, Juhua
Zhao, Yue
Dai, Xinlong
Jiang, Changjuan
Wang, Zhihui
Jiang, Xiaolan
Zhang, Shuxiang
Qian, Yumei
Tai, Yuling
Wang, Yunsheng
Wang, Haiyan
Xie, De‐Yu
Gao, Liping
Xia, Tao
author_sort Yao, Shengbo
collection PubMed
description Serine carboxypeptidase‐like acyltransferases (SCPL‐ATs) play a vital role in the diversification of plant metabolites. Galloylated flavan‐3‐ols highly accumulate in tea (Camellia sinensis), grape (Vitis vinifera), and persimmon (Diospyros kaki). To date, the biosynthetic mechanism of these compounds remains unknown. Herein, we report that two SCPL‐AT paralogs are involved in galloylation of flavan‐3‐ols: CsSCPL4, which contains the conserved catalytic triad S‐D‐H, and CsSCPL5, which has the alternative triad T‐D‐Y. Integrated data from transgenic plants, recombinant enzymes, and gene mutations showed that CsSCPL4 is a catalytic acyltransferase, while CsSCPL5 is a non‐catalytic companion paralog (NCCP). Co‐expression of CsSCPL4 and CsSCPL5 is likely responsible for the galloylation. Furthermore, pull‐down and co‐immunoprecipitation assays showed that CsSCPL4 and CsSCPL5 interact, increasing protein stability and promoting post‐translational processing. Moreover, phylogenetic analyses revealed that their homologs co‐exist in galloylated flavan‐3‐ol‐ or hydrolyzable tannin‐rich plant species. Enzymatic assays further revealed the necessity of co‐expression of those homologs for acyltransferase activity. Evolution analysis revealed that the mutations of the CsSCPL5 catalytic residues may have taken place about 10 million years ago. These findings show that the co‐expression of SCPL‐ATs and their NCCPs contributes to the acylation of flavan‐3‐ols in the plant kingdom.
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spelling pubmed-95412792022-10-14 Insights into acylation mechanisms: co‐expression of serine carboxypeptidase‐like acyltransferases and their non‐catalytic companion paralogs Yao, Shengbo Liu, Yajun Zhuang, Juhua Zhao, Yue Dai, Xinlong Jiang, Changjuan Wang, Zhihui Jiang, Xiaolan Zhang, Shuxiang Qian, Yumei Tai, Yuling Wang, Yunsheng Wang, Haiyan Xie, De‐Yu Gao, Liping Xia, Tao Plant J Original Articles Serine carboxypeptidase‐like acyltransferases (SCPL‐ATs) play a vital role in the diversification of plant metabolites. Galloylated flavan‐3‐ols highly accumulate in tea (Camellia sinensis), grape (Vitis vinifera), and persimmon (Diospyros kaki). To date, the biosynthetic mechanism of these compounds remains unknown. Herein, we report that two SCPL‐AT paralogs are involved in galloylation of flavan‐3‐ols: CsSCPL4, which contains the conserved catalytic triad S‐D‐H, and CsSCPL5, which has the alternative triad T‐D‐Y. Integrated data from transgenic plants, recombinant enzymes, and gene mutations showed that CsSCPL4 is a catalytic acyltransferase, while CsSCPL5 is a non‐catalytic companion paralog (NCCP). Co‐expression of CsSCPL4 and CsSCPL5 is likely responsible for the galloylation. Furthermore, pull‐down and co‐immunoprecipitation assays showed that CsSCPL4 and CsSCPL5 interact, increasing protein stability and promoting post‐translational processing. Moreover, phylogenetic analyses revealed that their homologs co‐exist in galloylated flavan‐3‐ol‐ or hydrolyzable tannin‐rich plant species. Enzymatic assays further revealed the necessity of co‐expression of those homologs for acyltransferase activity. Evolution analysis revealed that the mutations of the CsSCPL5 catalytic residues may have taken place about 10 million years ago. These findings show that the co‐expression of SCPL‐ATs and their NCCPs contributes to the acylation of flavan‐3‐ols in the plant kingdom. John Wiley and Sons Inc. 2022-05-07 2022-07 /pmc/articles/PMC9541279/ /pubmed/35437852 http://dx.doi.org/10.1111/tpj.15782 Text en © 2022 The Authors. The Plant Journal published by Society for Experimental Biology and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Articles
Yao, Shengbo
Liu, Yajun
Zhuang, Juhua
Zhao, Yue
Dai, Xinlong
Jiang, Changjuan
Wang, Zhihui
Jiang, Xiaolan
Zhang, Shuxiang
Qian, Yumei
Tai, Yuling
Wang, Yunsheng
Wang, Haiyan
Xie, De‐Yu
Gao, Liping
Xia, Tao
Insights into acylation mechanisms: co‐expression of serine carboxypeptidase‐like acyltransferases and their non‐catalytic companion paralogs
title Insights into acylation mechanisms: co‐expression of serine carboxypeptidase‐like acyltransferases and their non‐catalytic companion paralogs
title_full Insights into acylation mechanisms: co‐expression of serine carboxypeptidase‐like acyltransferases and their non‐catalytic companion paralogs
title_fullStr Insights into acylation mechanisms: co‐expression of serine carboxypeptidase‐like acyltransferases and their non‐catalytic companion paralogs
title_full_unstemmed Insights into acylation mechanisms: co‐expression of serine carboxypeptidase‐like acyltransferases and their non‐catalytic companion paralogs
title_short Insights into acylation mechanisms: co‐expression of serine carboxypeptidase‐like acyltransferases and their non‐catalytic companion paralogs
title_sort insights into acylation mechanisms: co‐expression of serine carboxypeptidase‐like acyltransferases and their non‐catalytic companion paralogs
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9541279/
https://www.ncbi.nlm.nih.gov/pubmed/35437852
http://dx.doi.org/10.1111/tpj.15782
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