A phloem‐localized Arabidopsis metacaspase (AtMC3) improves drought tolerance

Author:

Pitsili Eugenia12ORCID,Rodriguez‐Trevino Ricardo3,Ruiz‐Solani Nerea1,Demir Fatih45,Kastanaki Elizabeth3,Dambire Charlene6,de Pedro‐Jové Roger1ORCID,Vercammen Dominique2,Salguero‐Linares Jose1ORCID,Hall Hardy7,Mantz Melissa45ORCID,Schuler Martin3,Tuominen Hannele7ORCID,Van Breusegem Frank2ORCID,Valls Marc18ORCID,Munné‐Bosch Sergi910ORCID,Holdsworth Michael J.6ORCID,Huesgen Pitter F.45ORCID,Rodriguez‐Villalon Antia3ORCID,Coll Nuria S.111ORCID

Affiliation:

1. Centre for Research in Agricultural Genomics (CRAG), CSIC‐IRTA‐UAB‐UB, Campus UAB Bellaterra 08193 Barcelona Spain

2. Department of Plant Systems Biology, Department of Plant Biotechnology and Bioinformatics, Flanders Institute for Biotechnology Ghent University 9052 Ghent Belgium

3. Group of Plant Vascular Development Swiss Federal Institute of Technology (ETH) Zurich 8092 Zurich Switzerland

4. Central Institute for Engineering, Electronics and Analytics, ZEA‐3 Forschungszentrum Jülich GmbH 52425 Jülich Germany

5. Cologne Excellence Cluster Cellular Stress Response in Aging‐Associated Diseases (CECAD), Department of Chemistry, University of Cologne Medical Faculty and University Hospital, Institute of Biochemistry Joseph‐Stelzmann‐Str. 26 50931 Cologne Germany

6. School of Biosciences University of Nottingham Loughborough LE12 5RD UK

7. Department of Plant Physiology, Umeå Plant Science Centre Umeå University 901 87 Umeå Sweden

8. Department of Genetics Universitat de Barcelona 08028 Barcelona Spain

9. Department of Evolutionary Biology, Ecology and Environmental Sciences, Faculty of Biology Universitat de Barcelona Avinguda Diagonal 643 08028 Barcelona Spain

10. Institute of Research in Biodiversity (IRBio‐UB), Universitat de Barcelona 08028 Barcelona Spain

11. Consejo Superior de Investigaciones Científicas (CSIC) 08001 Barcelona Spain

Abstract

Summary Increasing drought phenomena pose a serious threat to agricultural productivity. Although plants have multiple ways to respond to the complexity of drought stress, the underlying mechanisms of stress sensing and signaling remain unclear. The role of the vasculature, in particular the phloem, in facilitating inter‐organ communication is critical and poorly understood. Combining genetic, proteomic and physiological approaches, we investigated the role of AtMC3, a phloem‐specific member of the metacaspase family, in osmotic stress responses in Arabidopsis thaliana. Analyses of the proteome in plants with altered AtMC3 levels revealed differential abundance of proteins related to osmotic stress pointing into a role of the protein in water‐stress‐related responses. Overexpression of AtMC3 conferred drought tolerance by enhancing the differentiation of specific vascular tissues and maintaining higher levels of vascular‐mediated transportation, while plants lacking the protein showed an impaired response to drought and inability to respond effectively to the hormone abscisic acid. Overall, our data highlight the importance of AtMC3 and vascular plasticity in fine‐tuning early drought responses at the whole plant level without affecting growth or yield.

Funder

Agencia Estatal de Investigación

Consejo Superior de Investigaciones Científicas

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

University of Nottingham

Publisher

Wiley

Subject

Plant Science,Physiology

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