A citrate efflux transporter important for manganese distribution and phosphorus uptake in rice

Author:

Panchal Poonam1ORCID,Bhatia Chitra1,Chen Yi2,Sharma Meenakshi1,Bhadouria Jyoti1,Verma Lokesh1,Maurya Kanika1,Miller Anthony J.2,Giri Jitender1ORCID

Affiliation:

1. National Institute of Plant Genome Research Aruna Asaf Ali Marg New Delhi 110067 India

2. Biochemistry and Metabolism Department John Innes Centre Norwich Research Park Norwich NR4 7UH UK

Abstract

SUMMARYThe plant citrate transporters, functional in mineral nutrient uptake and homeostasis, usually belong to the multidrug and toxic compound extrusion transporter family. We identified and functionally characterized a rice (Oryza sativa) citrate transporter, OsCT1, which differs from known plant citrate transporters and is structurally close to rice silicon transporters. Domain analysis depicted that OsCT1 carries a bacterial citrate‐metal transporter domain, CitMHS. OsCT1 showed citrate efflux activity when expressed in Xenopus laevis oocytes and is localized to the cell plasma membrane. It is highly expressed in the shoot and reproductive tissues of rice, and its promoter activity was visible in cells surrounding the vasculature. The OsCT1 knockout (KO) lines showed a reduced citrate content in the shoots and the root exudates, whereas overexpression (OE) line showed higher citrate exudation from their roots. Further, the KO and OE lines showed variations in the manganese (Mn) distribution leading to changes in their agronomical traits. Under deficient conditions (Mn‐sufficient conditions followed by 8 days of 0 μm MnCl2 · 4H2O treatment), the supply of manganese towards the newer leaf was found to be obstructed in the KO line. There were no significant differences in phosphorus (P) distribution; however, P uptake was reduced in the KO and increased in OE lines at the vegetative stage. Further, experiments in Xenopus oocytes revealed that OsCT1 could efflux citrate with Mn. In this way, we provide insights into a mechanism of citrate‐metal transport in plants and its role in mineral homeostasis, which remains conserved with their bacterial counterparts.

Funder

British Council

Biotechnology and Biological Sciences Research Council

John Innes Foundation

Chinese Academy of Sciences

Council for Scientific and Industrial Research, South Africa

Publisher

Wiley

Subject

Cell Biology,Plant Science,Genetics

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