4.5 Article

Chromosome-level genome assembly of Gynostemma pentaphyllum provides insights into gypenoside biosynthesis

期刊

DNA RESEARCH
卷 28, 期 5, 页码 -

出版社

OXFORD UNIV PRESS
DOI: 10.1093/dnares/dsab018

关键词

Gynostemma pentaphyllum; genome assembly; gypenoside biosynthesis; co-expression; regulatory network

资金

  1. Natural Science Foundation of Guangxi Zhuang Autonomous Region [2020GXNSFBA297025, GuiKe AA18118015]
  2. Guangxi Middle-aged and Young Teachers' Basic Ability Promotion Project [2020KY07039]
  3. Guangxi University of Chinese Medicine Scientific Research fund [2019BS007]
  4. Guangxi Key Laboratory of Zhuang and Yao Ethnic Medicine Open Project Fund [20-065-14]
  5. Youth Innovation Research Team Project of Guangxi University of Chinese Medicine [2018QT001]

向作者/读者索取更多资源

This study reported a high-quality genome of Gynostemma pentaphyllum and revealed the biosynthetic pathway and potential regulatory network of gypenoside. Through tissue-specific gene co-expression network analysis, four UGTs genes were found to be involved in leaf-specific gypenoside biosynthesis.
Gynostemma pentaphyllum (Thunb.) Makino is an economically valuable medicinal plant belonging to the Cucurbitaceae family that produces the bioactive compound gypenoside. Despite several transcriptomes having been generated for G. pentaphyllum, a reference genome is still unavailable, which has limited the understanding of the gypenoside biosynthesis and regulatory mechanism. Here, we report a high-quality G. pentaphyllum genome with a total length of 582Mb comprising 1,232 contigs and a scaffold N50 of 50.78Mb. The G. pentaphyllum genome comprised 59.14% repetitive sequences and 25,285 protein-coding genes. Comparative genome analysis revealed that G. pentaphyllum was related to Siraitia grosvenorii, with an estimated divergence time dating to the Paleogene (similar to 48 million years ago). By combining transcriptome data from seven tissues, we reconstructed the gypenoside biosynthetic pathway and potential regulatory network using tissue-specific gene co-expression network analysis. Four UDP-glucuronosyltransferases (UGTs), belonging to the UGT85 subfamily and forming a gene cluster, were involved in catalyzing glycosylation in leaf-specific gypenoside biosynthesis. Furthermore, candidate biosynthetic genes and transcription factors involved in the gypenoside regulatory network were identified. The genetic information obtained in this study provides insights into gypenoside biosynthesis and lays the foundation for further exploration of the gypenoside regulatory mechanism.

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