Skip to main content
bioRxiv
  • Home
  • About
  • Submit
  • ALERTS / RSS
Advanced Search
New Results

Major orchestration of shikimate, early phenylpropanoid and stilbenoid pathways by Subgroup 2 R2R3-MYBs in grapevine

Luis Orduña, Miaomiao Li, David Navarro-Payá, Chen Zhang, Antonio Santiago, Pablo Romero, Živa Ramšak, Gabriele Magon, Janine Höll, Patrik Merz, Kristina Gruden, Alessandro Vannozzi, Dario Cantu, Jochen Bogs, Darren C. J. Wong, Shao-shan Carol Huang, View ORCID ProfileJosé Tomás Matus
doi: https://doi.org/10.1101/2020.12.31.424746
Luis Orduña
1Institute for Integrative Systems Biology (I2SysBio), Universitat de València-CSIC, Paterna, 46908, Valencia, Spain
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Miaomiao Li
2Center for Genomics and Systems Biology, Department of Biology, New York University, USA
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
David Navarro-Payá
1Institute for Integrative Systems Biology (I2SysBio), Universitat de València-CSIC, Paterna, 46908, Valencia, Spain
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Chen Zhang
1Institute for Integrative Systems Biology (I2SysBio), Universitat de València-CSIC, Paterna, 46908, Valencia, Spain
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Antonio Santiago
1Institute for Integrative Systems Biology (I2SysBio), Universitat de València-CSIC, Paterna, 46908, Valencia, Spain
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Pablo Romero
1Institute for Integrative Systems Biology (I2SysBio), Universitat de València-CSIC, Paterna, 46908, Valencia, Spain
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Živa Ramšak
3Department of Biotechnology and Systems Biology, National Institute of Biology, Večna pot 111, 1000 Ljubljana, Slovenia
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Gabriele Magon
5Department of Agronomy, Food, Natural resources, Animals, and Environment (DAFNAE), University of Padova, Legnaro 35020, Italy
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Janine Höll
4Dienstleistungszentrum Ländlicher Raum Rheinpfalz, Viticulture and Enology Group, Neustadt/W, Germany
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Patrik Merz
4Dienstleistungszentrum Ländlicher Raum Rheinpfalz, Viticulture and Enology Group, Neustadt/W, Germany
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Kristina Gruden
3Department of Biotechnology and Systems Biology, National Institute of Biology, Večna pot 111, 1000 Ljubljana, Slovenia
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Alessandro Vannozzi
5Department of Agronomy, Food, Natural resources, Animals, and Environment (DAFNAE), University of Padova, Legnaro 35020, Italy
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Dario Cantu
6Department of Viticulture and Enology, University of California Davis, Davis, California, USA
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Jochen Bogs
4Dienstleistungszentrum Ländlicher Raum Rheinpfalz, Viticulture and Enology Group, Neustadt/W, Germany
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Darren C. J. Wong
7Ecology and Evolution, Research School of Biology, The Australian National University, Acton, Australia
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Shao-shan Carol Huang
2Center for Genomics and Systems Biology, Department of Biology, New York University, USA
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
José Tomás Matus
1Institute for Integrative Systems Biology (I2SysBio), Universitat de València-CSIC, Paterna, 46908, Valencia, Spain
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • ORCID record for José Tomás Matus
  • For correspondence: tomas.matus@gmail.com
  • Abstract
  • Full Text
  • Info/History
  • Metrics
  • Supplementary material
  • Data/Code
  • Preview PDF
Loading

Abstract

The stilbenoid pathway is responsible for the production of resveratrol and its derivatives in grapevine. A few transcription factors (TFs) have been previously identified as regulators of this pathway but the extent of this control is yet to be fully understood. Here we demonstrate how DNA affinity purification sequencing (DAP-Seq) allows for genome-wide TF binding site interrogation in a non-model species. We obtained 5,190 and 4,443 binding events assigned to 4,041 and 3,626 genes for MYB14 and MYB15, respectively (around 40% of peaks being located within -10kb of transcription start sites). DAP-Seq of MYB14 and MYB15 was combined with aggregate gene centred co-expression networks built from more than 1,400 transcriptomic datasets from leaves, fruits and flowers to narrow down bound genes to a set of high confidence targets. The analysis of MYB14, MYB15 and MYB13, a third uncharacterised member of Subgroup 2 (S2), showed that in addition to the few previously known stilbene synthase (STS ) targets, these three regulators bind to 30 out of 47 STS family genes. Moreover all three MYBs bind to several PAL, C4H and 4CL genes, in addition to shikimate pathway genes, the WRKY03 stilbenoid co-regulator and novel resveratrol-modifying gene candidates amongst which ROMT2 -3 were validated enzymatically. A high proportion of DAP-Seq bound genes was induced in the activated transcriptomes of transient MYB15 -overexpressing stilbenoid-producing grapevine leaves, validating our methodological approach for identifying gene regulatory networks of specialised metabolism. Overall, MYB genes from Subgroup 2 appear to play a key role in binding and directly regulating several primary and secondary metabolic steps leading to an increased flux towards stilbenoid production.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • This version presents additional analyses including: leaf-derived gene co-expression networks, stilbenoid elicitiation experiments in grape cell cultures and novel-enzyme characterizations.

  • http://tomsbiolab.com/scriptsandfiles

  • https://tomsbiolab.com/vitviz

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
Back to top
PreviousNext
Posted August 23, 2021.
Download PDF

Supplementary Material

Data/Code
Email

Thank you for your interest in spreading the word about bioRxiv.

NOTE: Your email address is requested solely to identify you as the sender of this article.

Enter multiple addresses on separate lines or separate them with commas.
Major orchestration of shikimate, early phenylpropanoid and stilbenoid pathways by Subgroup 2 R2R3-MYBs in grapevine
(Your Name) has forwarded a page to you from bioRxiv
(Your Name) thought you would like to see this page from the bioRxiv website.
CAPTCHA
This question is for testing whether or not you are a human visitor and to prevent automated spam submissions.
Share
Major orchestration of shikimate, early phenylpropanoid and stilbenoid pathways by Subgroup 2 R2R3-MYBs in grapevine
Luis Orduña, Miaomiao Li, David Navarro-Payá, Chen Zhang, Antonio Santiago, Pablo Romero, Živa Ramšak, Gabriele Magon, Janine Höll, Patrik Merz, Kristina Gruden, Alessandro Vannozzi, Dario Cantu, Jochen Bogs, Darren C. J. Wong, Shao-shan Carol Huang, José Tomás Matus
bioRxiv 2020.12.31.424746; doi: https://doi.org/10.1101/2020.12.31.424746
Digg logo Reddit logo Twitter logo Facebook logo Google logo LinkedIn logo Mendeley logo
Citation Tools
Major orchestration of shikimate, early phenylpropanoid and stilbenoid pathways by Subgroup 2 R2R3-MYBs in grapevine
Luis Orduña, Miaomiao Li, David Navarro-Payá, Chen Zhang, Antonio Santiago, Pablo Romero, Živa Ramšak, Gabriele Magon, Janine Höll, Patrik Merz, Kristina Gruden, Alessandro Vannozzi, Dario Cantu, Jochen Bogs, Darren C. J. Wong, Shao-shan Carol Huang, José Tomás Matus
bioRxiv 2020.12.31.424746; doi: https://doi.org/10.1101/2020.12.31.424746

Citation Manager Formats

  • BibTeX
  • Bookends
  • EasyBib
  • EndNote (tagged)
  • EndNote 8 (xml)
  • Medlars
  • Mendeley
  • Papers
  • RefWorks Tagged
  • Ref Manager
  • RIS
  • Zotero
  • Tweet Widget
  • Facebook Like
  • Google Plus One

Subject Area

  • Plant Biology
Subject Areas
All Articles
  • Animal Behavior and Cognition (3609)
  • Biochemistry (7590)
  • Bioengineering (5533)
  • Bioinformatics (20833)
  • Biophysics (10347)
  • Cancer Biology (7998)
  • Cell Biology (11663)
  • Clinical Trials (138)
  • Developmental Biology (6619)
  • Ecology (10227)
  • Epidemiology (2065)
  • Evolutionary Biology (13648)
  • Genetics (9557)
  • Genomics (12860)
  • Immunology (7932)
  • Microbiology (19576)
  • Molecular Biology (7678)
  • Neuroscience (42193)
  • Paleontology (309)
  • Pathology (1259)
  • Pharmacology and Toxicology (2208)
  • Physiology (3272)
  • Plant Biology (7064)
  • Scientific Communication and Education (1295)
  • Synthetic Biology (1953)
  • Systems Biology (5435)
  • Zoology (1119)