DORN1/P2K1 and purino-calcium signalling in plants: making waves with extracellular ATP

Author:

Matthus Elsa1,Sun Jian12,Wang Limin1,Bhat Madhura G1,Mohammad-Sidik Amirah B1,Wilkins Katie A1,Leblanc-Fournier Nathalie3,Legué Valérie3,Moulia Bruno3,Stacey Gary4,Davies Julia M1

Affiliation:

1. Department of Plant Sciences, University of Cambridge, Cambridge, UK

2. Institute of Integrative Plant Biology, School of Life Science, Jiangsu Normal University, Xuzhou, China

3. Université Clermont Auvergne, INRA, PIAF, Clermont-Ferrand, France

4. Divisions of Plant Science and Biochemistry, University of Missouri, Columbia, MO, USA

Abstract

AbstractBackground and AimsExtracellular ATP governs a range of plant functions, including cell viability, adaptation and cross-kingdom interactions. Key functions of extracellular ATP in leaves and roots may involve an increase in cytosolic free calcium as a second messenger (‘calcium signature’). The main aim here was to determine to what extent leaf and root calcium responses require the DORN1/P2K1 extracellular ATP receptor in Arabidopsis thaliana. The second aim was to test whether extracellular ATP can generate a calcium wave in the root.MethodsLeaf and root responses to extracellular ATP were reviewed for their possible links to calcium signalling and DORN1/P2K1. Leaves and roots of wild type and dorn1 plants were tested for cytosolic calcium increase in response to ATP, using aequorin. The spatial abundance of DORN1/P2K1 in the root was estimated using green fluorescent protein. Wild type roots expressing GCaMP3 were used to determine the spatial variation of cytosolic calcium increase in response to extracellular ATP.Key ResultsLeaf and root ATP-induced calcium signatures differed markedly. The leaf signature was only partially dependent on DORN1/P2K1, while the root signature was fully dependent. The distribution of DORN1/P2K1 in the root supports a key role in the generation of the apical calcium signature. Root apical and sub-apical calcium signatures may operate independently of each other but an apical calcium increase can drive a sub-apical increase, consistent with a calcium wave.ConclusionDORN1 could underpin several calcium-related responses but it may not be the only receptor for extracellular ATP in Arabidopsis. The root has the capacity for a calcium wave, triggered by extracellular ATP at the apex.

Funder

BBSRC

US National Science Foundation

National Institute of General Medical Sciences

Next-Generation BioGreen 21 Program Systems and Synthetic Agrobiotech Center

Rural Development Administration

Publisher

Oxford University Press (OUP)

Subject

Plant Science

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