PIN2/3/4 auxin carriers mediate root growth inhibition under conditions of boron deprivation in Arabidopsis

Author:

Tao Lin123,Zhu Hu1,Huang Qiuyu1,Xiao Xiaoyi1,Luo Ying1,Wang Hui1,Li Yalin1ORCID,Li Xuewen1,Liu Jiayou1,Jásik Ján4,Chen Yinglong5,Shabala Sergey167ORCID,Baluška František8,Shi Weiming19,Shi Lei23ORCID,Yu Min14ORCID

Affiliation:

1. International Research Center for Environmental Membrane Biology & Department of Horticulture Foshan University Foshan 528000 China

2. National Key Laboratory of Crop Genetic Improvement Huazhong Agricultural University Wuhan 430000 China

3. Microelement Research Center/Key Laboratory of Arable Land Conservation (Middle and Lower Reaches of Yangtze River), Ministry of Agriculture and Rural Affairs Huazhong Agricultural University Wuhan 430070 China

4. Institute of Botany, Plant Science and Biodiversity Center Slovak Academy of Sciences Bratislava Slovakia

5. School of Agriculture and Environment & Institute of Agriculture University of Western Australia Perth 6009 Australia

6. Tasmanian Institute for Agriculture, College of Science and Engineering University of Tasmania Hobart Tasmania 7001 Australia

7. School of Biological Sciences University of Western Australia Perth 6009 Australia

8. Institute of Cellular and Molecular Botany University of Bonn D‐53115 Bonn Germany

9. Institute of Soil Science Chinese Academy of Sciences State Key Laboratory of Soil and Sustainable Agriculture Nanjing 210018 China

Abstract

SUMMARYThe mechanistic basis by which boron (B) deprivation inhibits root growth via the mediation of root apical auxin transport and distribution remains elusive. This study showed that B deprivation repressed root growth of wild‐type Arabidopsis seedlings, which was related to higher auxin accumulation (observed with DII‐VENUS and DR5‐GFP lines) in B‐deprived roots. Boron deprivation elevated the auxin content in the root apex, coinciding with upregulation of the expression levels of auxin biosynthesis‐related genes (TAA1, YUC3, YUC9, and NIT1) in shoots, but not in root apices. Phenotyping experiments using auxin transport‐related mutants revealed that the PIN2/3/4 carriers are involved in root growth inhibition caused by B deprivation. B deprivation not only upregulated the transcriptional levels of PIN2/3/4, but also restrained the endocytosis of PIN2/3/4 carriers (observed with PIN‐Dendra2 lines), resulting in elevated protein levels of PIN2/3/4 in the plasma membrane. Overall, these results suggest that B deprivation not only enhances auxin biosynthesis in shoots by elevating the expression levels of auxin biosynthesis‐related genes but also promotes the polar auxin transport from shoots to roots by upregulating the gene expression levels of PIN2/3/4, as well as restraining the endocytosis of PIN2/3/4 carriers, ultimately resulting in auxin accumulation in root apices and root growth inhibition.

Publisher

Wiley

Subject

Cell Biology,Plant Science,Genetics

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