Metabolic control of arginine and ornithine levels paces the progression of leaf senescence

Author:

Liebsch Daniela1ORCID,Juvany Marta1ORCID,Li Zhonghai2ORCID,Wang Hou-Ling2ORCID,Ziolkowska Agnieszka1ORCID,Chrobok Daria1,Boussardon Clément1ORCID,Wen Xing3ORCID,Law Simon R1ORCID,Janečková Helena4,Brouwer Bastiaan1ORCID,Lindén Pernilla1ORCID,Delhomme Nicolas15ORCID,Stenlund Hans15ORCID,Moritz Thomas56ORCID,Gardeström Per1,Guo Hongwei3ORCID,Keech Olivier1ORCID

Affiliation:

1. Umeå Plant Science Centre, Department of Plant Physiology, Umeå University , S-90187 Umeå, Sweden

2. National Engineering Laboratory for Tree Breeding, College of Biological Sciences and Technology, Beijing Forestry University , Beijing 100083, China

3. Department of Biology, Institute of Plant and Food Science, Southern University of Science and Technology (SUSTech) , Shenzhen, Guangdong 518055, China

4. Centre of the Region Haná for Biotechnological and Agricultural Research, Department of Biophysics, Faculty of Science, Palacký University , 783 71 Olomouc, Czech Republic

5. Department of Forest Genetics and Plant Physiology, Umeå Plant Science Centre, Swedish University of Agricultural Sciences , S-901 83 Umeå, Sweden

6. Novo Nordisk Centre for Basic Metabolic Research, University of Copenhagen , D-2200 Copenhagen N, Denmark

Abstract

Abstract Leaf senescence can be induced by stress or aging, sometimes in a synergistic manner. It is generally acknowledged that the ability to withstand senescence-inducing conditions can provide plants with stress resilience. Although the signaling and transcriptional networks responsible for a delayed senescence phenotype, often referred to as a functional stay-green trait, have been actively investigated, very little is known about the subsequent metabolic adjustments conferring this aptitude to survival. First, using the individually darkened leaf (IDL) experimental setup, we compared IDLs of wild-type (WT) Arabidopsis (Arabidopsis thaliana) to several stay-green contexts, that is IDLs of two functional stay-green mutant lines, oresara1-2 (ore1-2) and an allele of phytochrome-interacting factor 5 (pif5), as well as to leaves from a WT plant entirely darkened (DP). We provide compelling evidence that arginine and ornithine, which accumulate in all stay-green contexts—likely due to the lack of induction of amino acids (AAs) transport—can delay the progression of senescence by fueling the Krebs cycle or the production of polyamines (PAs). Secondly, we show that the conversion of putrescine to spermidine (SPD) is controlled in an age-dependent manner. Thirdly, we demonstrate that SPD represses senescence via interference with ethylene signaling by stabilizing the ETHYLENE BINDING FACTOR1 and 2 (EBF1/2) complex. Taken together, our results identify arginine and ornithine as central metabolites influencing the stress- and age-dependent progression of leaf senescence. We propose that the regulatory loop between the pace of the AA export and the progression of leaf senescence provides the plant with a mechanism to fine-tune the induction of cell death in leaves, which, if triggered unnecessarily, can impede nutrient remobilization and thus plant growth and survival.

Funder

Swedish research council “VetenskapsRådet”

Kempe Foundations

National Natural Science Foundation of China

Shenzhen Science and Technology Program

National Key Research and Development Program of China

UPSC

Knut and Alice Wallenberg Foundation

Swedish Governmental Agency for Innovation Systems

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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