MicroRNA164d suppresses the HvNAC92-HvHKT1;5 module to enhance salinity tolerance in barley

L Liuhui Kuang (College of Agronomy, Hunan Agricultural University) H Hongxing Zhou (College of Agronomy, Hunan Agricultural University) T Tongtong Zhang (Department of Cardiology of the Second Affiliated Hospital, Department of Cell Biology, Zhejiang University School of Medicine, Liangzhu Laboratory) F Fei Gao T Tao Yan (State Key Laboratory of Coal Conversion, Institute of Coal Chemistry, Chinese Academy of Sciences, Taiyuan 030001, China) Z Zhong-Hua Chen (School of Agriculture, Food and Wine, Waite Research Institute, University of Adelaide) Q Qiufang Shen (Institute of Crop Science, College of Agriculture and Biotechnology, Zhejiang University) G Guoping Zhang (Institute of Crop Science, College of Agriculture and Biotechnology, Zhejiang University) L Lin Li D Dezhi Wu (College of Agronomy, Hunan Agricultural University)

Abstract

Cereal crops (e.g., rice, wheat, maize, and barley) constituted the major component of global human diet and fundamentally changed human society since the dawn of agriculture around 12,000 y ago. Originated and domesticated in different continents and environments, cereal crops vary significantly in their salt tolerance. The High-Affinity K + Transporter1;5s (HKT1;5s) predominately regulate Na + accumulation and salt tolerance in salt-sensitive cereal crops by mediating shoot-to-root Na + exclusion. However, HvHKT1;5 paradoxically promotes root-to-shoot Na + translocation in salt-tolerant barley. Therefore, unravelling the regulatory mechanisms of HvHKT1;5 is critical to understanding the molecular basis of salt tolerance in barley. Here, we demonstrated that a microRNA164d-HvNAC92-HvHKT1;5 module improves salt tolerance via reduced shoot Na + accumulation and increased K + retention in barley, whereas miR164d suppresses HvNAC92 transcription factor to directly downregulate HvHKT1;5 expression. Under salinity condition, the MIR164d -OE, Hvnac92 , and Hvhkt1;5 lines showed significantly reduced root-to-shoot Na + translocation and shoot Na + content compared with the wild-type. In conclusion, we resolve the species-specific function of HKT1;5s in cereal crops by establishing miRNA-guided Na + and K + transport regulation as a regulatory framework for engineering salt-tolerant crops.

Article Details

Volume / Issue Vol. 122, Issue 52
Published December 30, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

L

Liuhui Kuang

College of Agronomy, Hunan Agricultural University

H

Hongxing Zhou

College of Agronomy, Hunan Agricultural University

T

Tongtong Zhang

Department of Cardiology of the Second Affiliated Hospital, Department of Cell Biology, Zhejiang University School of Medicine, Liangzhu Laboratory

F

Fei Gao

T

Tao Yan

State Key Laboratory of Coal Conversion, Institute of Coal Chemistry, Chinese Academy of Sciences, Taiyuan 030001, China

Z

Zhong-Hua Chen

School of Agriculture, Food and Wine, Waite Research Institute, University of Adelaide

Q

Qiufang Shen

Institute of Crop Science, College of Agriculture and Biotechnology, Zhejiang University

G

Guoping Zhang

Institute of Crop Science, College of Agriculture and Biotechnology, Zhejiang University

L

Lin Li

D

Dezhi Wu

College of Agronomy, Hunan Agricultural University