TY - JOUR
T1 - A phloem-localized Arabidopsis metacaspase (AtMC3) improves drought tolerance
AU - Pitsili, Eugenia
AU - Rodriguez-Trevino, Ricardo
AU - Ruiz-Solani, Nerea
AU - Demir, Fatih
AU - Kastanaki, Elizabeth
AU - Dambire, Charlene
AU - de Pedro-Jové, Roger
AU - Vercammen, Dominique
AU - Salguero-Linares, Jose
AU - Hall, Hardy
AU - Mantz, Melissa
AU - Schuler, Martin
AU - Tuominen, Hannele
AU - Van Breusegem, Frank
AU - Valls, Marc
AU - Munné-Bosch, Sergi
AU - Holdsworth, Michael J.
AU - Huesgen, Pitter F.
AU - Rodriguez-Villalon, Antia
AU - Coll, Nuria S.
N1 - Publisher Copyright:
© 2023 The Authors. New Phytologist © 2023 New Phytologist Foundation.
PY - 2023
Y1 - 2023
N2 - 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.
AB - 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.
KW - abscisic acid
KW - Arabidopsis thaliana
KW - drought
KW - hypoxia
KW - metacaspases
KW - osmotic stress
KW - phloem
KW - abscisic acid
KW - Arabidopsis thaliana
KW - drought
KW - hypoxia
KW - metacaspases
KW - osmotic stress
KW - phloem
UR - https://res.slu.se/id/publ/127308
U2 - 10.1111/nph.19022
DO - 10.1111/nph.19022
M3 - Journal article
C2 - 37320971
SN - 0028-646X
VL - 239
SP - 1281
EP - 1299
JO - New Phytologist
JF - New Phytologist
IS - 4
ER -