Cargando…

Enhanced Rishirilide Biosynthesis by a Rare In-Cluster Phosphopantetheinyl Transferase in Streptomyces xanthophaeus

Phosphopantetheinyl transferases (PPTases) play important roles in activating apo-acyl carrier proteins (apo-ACPs) and apo-peptidyl carrier proteins (apo-PCPs) in both primary and secondary metabolism. PPTases catalyze the posttranslational modifications of those carrier proteins by covalent attachm...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Songya, Fan, Shuai, Zhu, Jing, Zhou, Liying, Yan, Xiaohui, Yang, Zhaoyong, Si, Tong, Liu, Tao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9769936/
https://www.ncbi.nlm.nih.gov/pubmed/36326495
http://dx.doi.org/10.1128/spectrum.03247-22
_version_ 1784854481741021184
author Zhang, Songya
Fan, Shuai
Zhu, Jing
Zhou, Liying
Yan, Xiaohui
Yang, Zhaoyong
Si, Tong
Liu, Tao
author_facet Zhang, Songya
Fan, Shuai
Zhu, Jing
Zhou, Liying
Yan, Xiaohui
Yang, Zhaoyong
Si, Tong
Liu, Tao
author_sort Zhang, Songya
collection PubMed
description Phosphopantetheinyl transferases (PPTases) play important roles in activating apo-acyl carrier proteins (apo-ACPs) and apo-peptidyl carrier proteins (apo-PCPs) in both primary and secondary metabolism. PPTases catalyze the posttranslational modifications of those carrier proteins by covalent attachment of the 4′-phosphopantetheine group to a conserved serine residue. The protein-protein interactions between a PPTase and a cognate acyl or peptidyl carrier protein have important regulatory functions in microbial biosynthesis, but the molecular mechanism underlying their specific recognition remains elusive. In this study, we identified a new rishirilide biosynthetic gene cluster with a rare in-cluster PPTase from Streptomyces xanthophaeus no2. The function of this Sfp-type PPTase, SxrX, in rishirilide production was confirmed using genetic mutagenesis and biochemical characterization. We applied molecular modeling and site-directed mutagenesis to identify key residues mediating the protein-protein interaction between SxrX and its cognate ACP. In addition, six natural products were isolated from wild-type S. xanthophaeus no2 and the ΔsxrX mutant, including rishirilide A and lupinacidin A, that exhibited antimicrobial and anticancer activities, respectively. SxrX is the first Sfp-type PPTase identified from an aromatic polyketide biosynthetic gene cluster and shown to be responsible for high-level production of rishirilide derivatives. IMPORTANCE Genome mining has been a vital means for natural product drug discovery in the postgenomic era. The rishirilide-type polyketides have attracted attention due to their potent bioactivity, but the poor robustness of production hosts has limited further research and development. This study not only identifies a hyperproducer of rishirilides but also reveals a rare, in-cluster PPTase SxrX that plays an important role in boosting rishirilide biosynthesis. Experimental and computational investigations revealed new insights on the protein-protein interaction between SxrX and its cognate ACP with wide implications for understanding polyketide biosynthesis.
format Online
Article
Text
id pubmed-9769936
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-97699362022-12-22 Enhanced Rishirilide Biosynthesis by a Rare In-Cluster Phosphopantetheinyl Transferase in Streptomyces xanthophaeus Zhang, Songya Fan, Shuai Zhu, Jing Zhou, Liying Yan, Xiaohui Yang, Zhaoyong Si, Tong Liu, Tao Microbiol Spectr Research Article Phosphopantetheinyl transferases (PPTases) play important roles in activating apo-acyl carrier proteins (apo-ACPs) and apo-peptidyl carrier proteins (apo-PCPs) in both primary and secondary metabolism. PPTases catalyze the posttranslational modifications of those carrier proteins by covalent attachment of the 4′-phosphopantetheine group to a conserved serine residue. The protein-protein interactions between a PPTase and a cognate acyl or peptidyl carrier protein have important regulatory functions in microbial biosynthesis, but the molecular mechanism underlying their specific recognition remains elusive. In this study, we identified a new rishirilide biosynthetic gene cluster with a rare in-cluster PPTase from Streptomyces xanthophaeus no2. The function of this Sfp-type PPTase, SxrX, in rishirilide production was confirmed using genetic mutagenesis and biochemical characterization. We applied molecular modeling and site-directed mutagenesis to identify key residues mediating the protein-protein interaction between SxrX and its cognate ACP. In addition, six natural products were isolated from wild-type S. xanthophaeus no2 and the ΔsxrX mutant, including rishirilide A and lupinacidin A, that exhibited antimicrobial and anticancer activities, respectively. SxrX is the first Sfp-type PPTase identified from an aromatic polyketide biosynthetic gene cluster and shown to be responsible for high-level production of rishirilide derivatives. IMPORTANCE Genome mining has been a vital means for natural product drug discovery in the postgenomic era. The rishirilide-type polyketides have attracted attention due to their potent bioactivity, but the poor robustness of production hosts has limited further research and development. This study not only identifies a hyperproducer of rishirilides but also reveals a rare, in-cluster PPTase SxrX that plays an important role in boosting rishirilide biosynthesis. Experimental and computational investigations revealed new insights on the protein-protein interaction between SxrX and its cognate ACP with wide implications for understanding polyketide biosynthesis. American Society for Microbiology 2022-11-03 /pmc/articles/PMC9769936/ /pubmed/36326495 http://dx.doi.org/10.1128/spectrum.03247-22 Text en Copyright © 2022 Zhang et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Zhang, Songya
Fan, Shuai
Zhu, Jing
Zhou, Liying
Yan, Xiaohui
Yang, Zhaoyong
Si, Tong
Liu, Tao
Enhanced Rishirilide Biosynthesis by a Rare In-Cluster Phosphopantetheinyl Transferase in Streptomyces xanthophaeus
title Enhanced Rishirilide Biosynthesis by a Rare In-Cluster Phosphopantetheinyl Transferase in Streptomyces xanthophaeus
title_full Enhanced Rishirilide Biosynthesis by a Rare In-Cluster Phosphopantetheinyl Transferase in Streptomyces xanthophaeus
title_fullStr Enhanced Rishirilide Biosynthesis by a Rare In-Cluster Phosphopantetheinyl Transferase in Streptomyces xanthophaeus
title_full_unstemmed Enhanced Rishirilide Biosynthesis by a Rare In-Cluster Phosphopantetheinyl Transferase in Streptomyces xanthophaeus
title_short Enhanced Rishirilide Biosynthesis by a Rare In-Cluster Phosphopantetheinyl Transferase in Streptomyces xanthophaeus
title_sort enhanced rishirilide biosynthesis by a rare in-cluster phosphopantetheinyl transferase in streptomyces xanthophaeus
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9769936/
https://www.ncbi.nlm.nih.gov/pubmed/36326495
http://dx.doi.org/10.1128/spectrum.03247-22
work_keys_str_mv AT zhangsongya enhancedrishirilidebiosynthesisbyarareinclusterphosphopantetheinyltransferaseinstreptomycesxanthophaeus
AT fanshuai enhancedrishirilidebiosynthesisbyarareinclusterphosphopantetheinyltransferaseinstreptomycesxanthophaeus
AT zhujing enhancedrishirilidebiosynthesisbyarareinclusterphosphopantetheinyltransferaseinstreptomycesxanthophaeus
AT zhouliying enhancedrishirilidebiosynthesisbyarareinclusterphosphopantetheinyltransferaseinstreptomycesxanthophaeus
AT yanxiaohui enhancedrishirilidebiosynthesisbyarareinclusterphosphopantetheinyltransferaseinstreptomycesxanthophaeus
AT yangzhaoyong enhancedrishirilidebiosynthesisbyarareinclusterphosphopantetheinyltransferaseinstreptomycesxanthophaeus
AT sitong enhancedrishirilidebiosynthesisbyarareinclusterphosphopantetheinyltransferaseinstreptomycesxanthophaeus
AT liutao enhancedrishirilidebiosynthesisbyarareinclusterphosphopantetheinyltransferaseinstreptomycesxanthophaeus