Inhibition of RNA degradation integrates the metabolic signals induced by osmotic stress into the Arabidopsis circadian system

Author:

Prasetyaningrum Putri1,Litthauer Suzanne2,Vegliani Franco1,Battle Martin William1,Wood Matthew William1,Liu Xinmeng1,Dickson Cathryn1,Jones Matthew Alan1ORCID

Affiliation:

1. School of Molecular Biosciences, University of Glasgow , Glasgow G12 8QQ , UK

2. The James Hutton Institute , Invergowrie, Dundee DD2 5DA , UK

Abstract

AbstractThe circadian clock system acts as an endogenous timing reference that coordinates many metabolic and physiological processes in plants. Previous studies have shown that the application of osmotic stress delays circadian rhythms via 3ʹ-phospho-adenosine 5ʹ-phosphate (PAP), a retrograde signalling metabolite that is produced in response to redox stress within organelles. PAP accumulation leads to the inhibition of exoribonucleases (XRNs), which are responsible for RNA degradation. Interestingly, we are now able to demonstrate that post-transcriptional processing is crucial for the circadian response to osmotic stress. Our data show that osmotic stress increases the stability of specific circadian RNAs, suggesting that RNA metabolism plays a vital role in circadian clock coordination during drought. Inactivation of XRN4 is sufficient to extend circadian rhythms as part of this response, with PRR7 and LWD1 identified as transcripts that are post-transcriptionally regulated to delay circadian progression.

Funder

UK Research and Innovation

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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