Deciphering the Metabolic Pathway Difference Between Saccharopolyspora pogona and Saccharopolyspora spinosa by Comparative Proteomics and Metabonomics

Butenyl-spinosyn, a secondary metabolite produced by Saccharopolyspora pogona, exhibits strong insecticidal activity than spinosyn. However, the low synthesis capacity and unknown metabolic characteristics of butenyl-spinosyn in wild-type S. pogona limit its broad application and metabolic engineeri...

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Main Authors: Jie Rang, Haocheng He, Shuangqin Yuan, Jianli Tang, Zhudong Liu, Ziyuan Xia, Tahir Ali Khan, Shengbiao Hu, Ziquan Yu, Yibo Hu, Yunjun Sun, Weitao Huang, Xuezhi Ding, Liqiu Xia
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-03-01
Series:Frontiers in Microbiology
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fmicb.2020.00396/full
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spelling doaj-3cce2b1c100d42b8ac98fb0ec9dbad722020-11-25T02:38:06ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2020-03-011110.3389/fmicb.2020.00396525647Deciphering the Metabolic Pathway Difference Between Saccharopolyspora pogona and Saccharopolyspora spinosa by Comparative Proteomics and MetabonomicsJie RangHaocheng HeShuangqin YuanJianli TangZhudong LiuZiyuan XiaTahir Ali KhanShengbiao HuZiquan YuYibo HuYunjun SunWeitao HuangXuezhi DingLiqiu XiaButenyl-spinosyn, a secondary metabolite produced by Saccharopolyspora pogona, exhibits strong insecticidal activity than spinosyn. However, the low synthesis capacity and unknown metabolic characteristics of butenyl-spinosyn in wild-type S. pogona limit its broad application and metabolic engineering. Here, we showed that S. pogona exhibited increased glucose consumption ability and growth rate compared with S. spinosa, but the production of butenyl-spinosyn was much lower than that of spinosyn. To further elucidate the metabolic mechanism of these different phenotypes, we performed a comparative proteomic and metabolomic study on S. pogona and S. spinosa to identify the change in the abundance levels of proteins and metabolites. We found that the abundance of most proteins and metabolites associated with glucose transport, fatty acid metabolism, tricarboxylic acid cycle, amino acid metabolism, energy metabolism, purine and pyrimidine metabolism, and target product biosynthesis in S. pogona was higher than that in S. spinosa. However, the overall abundance of proteins involved in butenyl-spinosyn biosynthesis was much lower than that of the high-abundance protein chaperonin GroEL, such as the enzymes related to rhamnose synthesis. We speculated that these protein and metabolite abundance changes may be directly responsible for the above phenotypic changes in S. pogona and S. spinosa, especially affecting butenyl-spinosyn biosynthesis. Further studies revealed that the over-expression of the rhamnose synthetic genes and methionine adenosyltransferase gene could effectively improve the production of butenyl-spinosyn by 2.69- and 3.03-fold, respectively, confirming the reliability of this conjecture. This work presents the first comparative proteomics and metabolomics study of S. pogona and S. spinosa, providing new insights into the novel links of phenotypic change and metabolic difference between two strains. The result will be valuable in designing strategies to promote the biosynthesis of butenyl-spinosyn by metabolic engineering.https://www.frontiersin.org/article/10.3389/fmicb.2020.00396/fullSaccharopolyspora pogonaSaccharopolyspora spinosabutenyl-spinosynspinosyncomparative proteomic analysismetabolic pathway
collection DOAJ
language English
format Article
sources DOAJ
author Jie Rang
Haocheng He
Shuangqin Yuan
Jianli Tang
Zhudong Liu
Ziyuan Xia
Tahir Ali Khan
Shengbiao Hu
Ziquan Yu
Yibo Hu
Yunjun Sun
Weitao Huang
Xuezhi Ding
Liqiu Xia
spellingShingle Jie Rang
Haocheng He
Shuangqin Yuan
Jianli Tang
Zhudong Liu
Ziyuan Xia
Tahir Ali Khan
Shengbiao Hu
Ziquan Yu
Yibo Hu
Yunjun Sun
Weitao Huang
Xuezhi Ding
Liqiu Xia
Deciphering the Metabolic Pathway Difference Between Saccharopolyspora pogona and Saccharopolyspora spinosa by Comparative Proteomics and Metabonomics
Frontiers in Microbiology
Saccharopolyspora pogona
Saccharopolyspora spinosa
butenyl-spinosyn
spinosyn
comparative proteomic analysis
metabolic pathway
author_facet Jie Rang
Haocheng He
Shuangqin Yuan
Jianli Tang
Zhudong Liu
Ziyuan Xia
Tahir Ali Khan
Shengbiao Hu
Ziquan Yu
Yibo Hu
Yunjun Sun
Weitao Huang
Xuezhi Ding
Liqiu Xia
author_sort Jie Rang
title Deciphering the Metabolic Pathway Difference Between Saccharopolyspora pogona and Saccharopolyspora spinosa by Comparative Proteomics and Metabonomics
title_short Deciphering the Metabolic Pathway Difference Between Saccharopolyspora pogona and Saccharopolyspora spinosa by Comparative Proteomics and Metabonomics
title_full Deciphering the Metabolic Pathway Difference Between Saccharopolyspora pogona and Saccharopolyspora spinosa by Comparative Proteomics and Metabonomics
title_fullStr Deciphering the Metabolic Pathway Difference Between Saccharopolyspora pogona and Saccharopolyspora spinosa by Comparative Proteomics and Metabonomics
title_full_unstemmed Deciphering the Metabolic Pathway Difference Between Saccharopolyspora pogona and Saccharopolyspora spinosa by Comparative Proteomics and Metabonomics
title_sort deciphering the metabolic pathway difference between saccharopolyspora pogona and saccharopolyspora spinosa by comparative proteomics and metabonomics
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2020-03-01
description Butenyl-spinosyn, a secondary metabolite produced by Saccharopolyspora pogona, exhibits strong insecticidal activity than spinosyn. However, the low synthesis capacity and unknown metabolic characteristics of butenyl-spinosyn in wild-type S. pogona limit its broad application and metabolic engineering. Here, we showed that S. pogona exhibited increased glucose consumption ability and growth rate compared with S. spinosa, but the production of butenyl-spinosyn was much lower than that of spinosyn. To further elucidate the metabolic mechanism of these different phenotypes, we performed a comparative proteomic and metabolomic study on S. pogona and S. spinosa to identify the change in the abundance levels of proteins and metabolites. We found that the abundance of most proteins and metabolites associated with glucose transport, fatty acid metabolism, tricarboxylic acid cycle, amino acid metabolism, energy metabolism, purine and pyrimidine metabolism, and target product biosynthesis in S. pogona was higher than that in S. spinosa. However, the overall abundance of proteins involved in butenyl-spinosyn biosynthesis was much lower than that of the high-abundance protein chaperonin GroEL, such as the enzymes related to rhamnose synthesis. We speculated that these protein and metabolite abundance changes may be directly responsible for the above phenotypic changes in S. pogona and S. spinosa, especially affecting butenyl-spinosyn biosynthesis. Further studies revealed that the over-expression of the rhamnose synthetic genes and methionine adenosyltransferase gene could effectively improve the production of butenyl-spinosyn by 2.69- and 3.03-fold, respectively, confirming the reliability of this conjecture. This work presents the first comparative proteomics and metabolomics study of S. pogona and S. spinosa, providing new insights into the novel links of phenotypic change and metabolic difference between two strains. The result will be valuable in designing strategies to promote the biosynthesis of butenyl-spinosyn by metabolic engineering.
topic Saccharopolyspora pogona
Saccharopolyspora spinosa
butenyl-spinosyn
spinosyn
comparative proteomic analysis
metabolic pathway
url https://www.frontiersin.org/article/10.3389/fmicb.2020.00396/full
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