Literature DB >> 31819712

Characterization of rice KT/HAK/KUP potassium transporters and K+ uptake by HAK1 from Oryza sativa.

Tomoyuki Okada1,2,3, Sousuke Yamane1, Masatoshi Yamaguchi4, Ko Kato2, Atsuhiko Shinmyo2, Yuta Tsunemitsu1, Kozo Iwasaki1, Daisei Ueno1, Taku Demura2.   

Abstract

Plant high-affinity K+ (HAK) transporters are divided into four major clusters. Cluster I transporters, in particular, are thought to have high-affinity for K+. Of the 27 HAK genes in rice, eight HAK transporters belong to cluster I. In this study, we investigated the temporal expression patterns during K+ deficiency and K+ transport activity of these eight HAK transporters. The expression of seven HAK genes except OsHAK20 was detected. Expression of OsHAK1, OsHAK5 and OsHAK21 was induced in response to K+ deficiency; however, that of other genes was not. Six of the eight HAK transporters-OsHAK1, OsHAK5, OsHAK19, OsHAK20, OsHAK21, and OsHAK27-complemented the K+-transporter-deficient yeast or bacterial strain. Further, the yeast cells expressing OsHAK1 were more sensitive to Na+ than those expressing OsHAK5. Mutant analysis showed that the high-affinity K+ uptake activity was almost undetectable in oshak1 mutants in a low-K+ medium (0.02 mM). In addition, the high-affinity K+ uptake activity of wild-type plants was inhibited by mild salt stress (20 mM NaCl); however, Na+ permeability of OsHAK1 was not detected in Escherichia coli cells. The high-affinity K+ uptake activity by leaf blades was detected in wild-type plants, while it was not detected in oshak1 mutants. Our results suggest that OsHAK1 and OsHAK5 are the two important components of cluster I corresponding to low-K+ conditions, and that the transport activity of OsHAK1, unlike that of OsHAK5, is sensitive to Na+. Further, OsHAK1 is suggested to involve in foliar K+ uptake.
© 2018 The Japanese Society for Plant Cell and Molecular Biology.

Entities:  

Keywords:  HAK; potassium; rice; salt stress; transporter

Year:  2018        PMID: 31819712      PMCID: PMC6879396          DOI: 10.5511/plantbiotechnology.18.0308a

Source DB:  PubMed          Journal:  Plant Biotechnol (Tokyo)        ISSN: 1342-4580            Impact factor:   1.133


  5 in total

1.  Genome-wide characterization and expression analysis of HAK K+ transport family in Ipomoea.

Authors:  Rong Jin; Wei Jiang; Mengxiao Yan; Aijun Zhang; Ming Liu; Peng Zhao; Xiaoguang Chen; Zhonghou Tang
Journal:  3 Biotech       Date:  2020-11-27       Impact factor: 2.406

2.  Halophytic Hordeum brevisubulatum HbHAK1 Facilitates Potassium Retention and Contributes to Salt Tolerance.

Authors:  Haiwen Zhang; Wen Xiao; Wenwen Yu; Ying Jiang; Ruifen Li
Journal:  Int J Mol Sci       Date:  2020-07-25       Impact factor: 5.923

Review 3.  The Dynamics of Radio-Cesium in Soils and Mechanism of Cesium Uptake Into Higher Plants: Newly Elucidated Mechanism of Cesium Uptake Into Rice Plants.

Authors:  Hiroki Rai; Miku Kawabata
Journal:  Front Plant Sci       Date:  2020-05-13       Impact factor: 5.753

Review 4.  Recent Advances in Genome-wide Analyses of Plant Potassium Transporter Families.

Authors:  Dhondup Lhamo; Chao Wang; Qifei Gao; Sheng Luan
Journal:  Curr Genomics       Date:  2021-10-18       Impact factor: 2.236

5.  Different Rhizospheric pH Conditions Affect Nutrient Accumulations in Rice under Salinity Stress.

Authors:  Mami Nampei; Kamonthip Jiadkong; Sumana Chuamnakthong; Thanakorn Wangsawang; Tanee Sreewongchai; Akihiro Ueda
Journal:  Plants (Basel)       Date:  2021-06-25
  5 in total

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