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A hormone-activated mobile RNAi pathway defends plant stem cells from virus infection

View ORCID ProfileMarco Incarbone, Gabriele Bradamante, Florian Pruckner, Tobias Wegscheider, Wilfried Rozhon, Vu Nguyen, Ruben Gutzat, Thomas Lendl, Stuart MacFarlane, Michael Nodine, View ORCID ProfileOrtrun Mittelsten Scheid
doi: https://doi.org/10.1101/2022.12.18.520928
Marco Incarbone
1Gregor Mendel Institute of Molecular Plant Biology (GMI), Austrian Academy of Sciences, Vienna BioCenter (VBC), Vienna, Austria
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  • ORCID record for Marco Incarbone
  • For correspondence: marco.incarbone@gmi.oeaw.ac.at
Gabriele Bradamante
1Gregor Mendel Institute of Molecular Plant Biology (GMI), Austrian Academy of Sciences, Vienna BioCenter (VBC), Vienna, Austria
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Florian Pruckner
1Gregor Mendel Institute of Molecular Plant Biology (GMI), Austrian Academy of Sciences, Vienna BioCenter (VBC), Vienna, Austria
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Tobias Wegscheider
1Gregor Mendel Institute of Molecular Plant Biology (GMI), Austrian Academy of Sciences, Vienna BioCenter (VBC), Vienna, Austria
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Wilfried Rozhon
2Department of Agriculture, Ecotrophology, and Landscape Development, Anhalt University of Applied Sciences, Bernburg, Saxony-Anhalt, Germany
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Vu Nguyen
1Gregor Mendel Institute of Molecular Plant Biology (GMI), Austrian Academy of Sciences, Vienna BioCenter (VBC), Vienna, Austria
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Ruben Gutzat
1Gregor Mendel Institute of Molecular Plant Biology (GMI), Austrian Academy of Sciences, Vienna BioCenter (VBC), Vienna, Austria
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Thomas Lendl
3Research Institute of Molecular Pathology (IMP), Vienna BioCenter (VBC), Vienna, Austria
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Stuart MacFarlane
4The James Hutton Institute, Invergowrie, Scotland, UK
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Michael Nodine
5Laboratory of Molecular Biology, Wageningen University and Research, 6700 AP Wageningen, The Netherlands
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Ortrun Mittelsten Scheid
1Gregor Mendel Institute of Molecular Plant Biology (GMI), Austrian Academy of Sciences, Vienna BioCenter (VBC), Vienna, Austria
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  • ORCID record for Ortrun Mittelsten Scheid
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ABSTRACT

Stem cells are essential for the development and organ regeneration of multicellular organisms, so their infection by pathogenic viruses must be prevented. Accordingly, mammalian stem cells are highly resistant to viral infection due to dedicated antiviral pathways including RNA interference (RNAi) (1, 2). In plants, a small group of stem cells harbored within the shoot apical meristem (SAM) generates all postembryonic above-ground tissues, including the germline cells. Many viruses do not proliferate in these cells, yet the molecular bases of this exclusion remain only partially understood (3, 4). Here we show that a plant-encoded RNA-dependent RNA polymerase, after activation by the plant hormone salicylic acid, amplifies antiviral RNAi in infected tissues. This provides stem cells with RNA-based virus sequence information, which prevents virus proliferation. Furthermore, we find RNAi to be necessary for stem cell exclusion of several unrelated RNA viruses, despite their ability to efficiently suppress RNAi in the rest of the plant. This work elucidates a molecular pathway of great biological and economic relevance and lays the foundations for our future understanding of the unique systems underlying stem cell immunity.

Competing Interest Statement

The authors have declared no competing interest.

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.
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Posted December 19, 2022.
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A hormone-activated mobile RNAi pathway defends plant stem cells from virus infection
Marco Incarbone, Gabriele Bradamante, Florian Pruckner, Tobias Wegscheider, Wilfried Rozhon, Vu Nguyen, Ruben Gutzat, Thomas Lendl, Stuart MacFarlane, Michael Nodine, Ortrun Mittelsten Scheid
bioRxiv 2022.12.18.520928; doi: https://doi.org/10.1101/2022.12.18.520928
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A hormone-activated mobile RNAi pathway defends plant stem cells from virus infection
Marco Incarbone, Gabriele Bradamante, Florian Pruckner, Tobias Wegscheider, Wilfried Rozhon, Vu Nguyen, Ruben Gutzat, Thomas Lendl, Stuart MacFarlane, Michael Nodine, Ortrun Mittelsten Scheid
bioRxiv 2022.12.18.520928; doi: https://doi.org/10.1101/2022.12.18.520928

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