Synthetic ion channel inhibitors enhance plant drought tolerance

K Kanane Sato (Department of Biomolecular Engineering, Graduate School of Engineering, Tohoku University) K Kyota Suzuki S Shunya Saito (Department of Biomolecular Engineering, Graduate School of Engineering, Tohoku University) T Taishin Kakei M Megumi Kato M Masana Yazaki Y Yasutaka Kawai M Mieko Arisawa N Nobuhisa Isaka T Toshio Yamaguchi (Key Laboratory of Comprehensive and Highly Efficient Utilization of Salt Lake Resources, Key Laboratory of Salt Lake Resources Chemistry of Qinghai Province, Qinghai Institute of Salt Lakes, Chinese Academy of Sciences 1 , Xining, Qinghai 810008,) M Matteo Grenzi L Laura Luoni (Department of Biosciences, University of Milan) M Masaru Kono Y Yuki Hayashi T Toshinori Kinoshita F Farhan Aziz K Khurram Bashir M Motoaki Seki A Asuka Kamimura T Takumi Higaki J Jun Takeuchi (Department of Applied Life Sciences, Faculty of Agriculture, Shizuoka University) Y Yasushi Todoroki (Department of Applied Life Sciences, Faculty of Agriculture, Shizuoka University) H Huifei Yin F Francisco Rubio J Jörg Kudla S Shintaro Munemasa Y Yoshiyuki Murata M Masaru Tsujii Y Yasuhiro Ishimaru A Alex Costa N Nobuyuki Uozumi

Abstract

Abstract Drought stress significantly threatens global food security. According to the FAO2024, agriculture absorbs up to 80% of drought impacts. Stomata are vital pores for gas exchange and transpiration in plants. Stomatal closure, which is crucial for drought tolerance, is regulated by ion transport systems. Here, we identify two inhibitors of plasma membrane voltage-dependent potassium (K + ) channels, NS5806 and UA49, that induce stomatal closure, reduce guard cell K + levels, and increase drought resistance in Arabidopsis plants. This chemical-induced stomatal closure pathway is distinct from the abscisic acid (ABA). Notably, K + channel inhibition led to increased cytosolic Ca 2+ , which was absent in K + inward channel mutants, highlighting the link between K + channel activity and cytosolic Ca 2+ elevation. These findings suggest that the chemical regulation of K + channels represents a strategy to induce stomatal closure, potentially improving plant drought tolerance through targeted interventions.

Article Details

Volume / Issue Vol. 17, Issue 1
Published July 27, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (31)

K

Kanane Sato

Department of Biomolecular Engineering, Graduate School of Engineering, Tohoku University

K

Kyota Suzuki

S

Shunya Saito

Department of Biomolecular Engineering, Graduate School of Engineering, Tohoku University

T

Taishin Kakei

M

Megumi Kato

M

Masana Yazaki

Y

Yasutaka Kawai

M

Mieko Arisawa

N

Nobuhisa Isaka

T

Toshio Yamaguchi

Key Laboratory of Comprehensive and Highly Efficient Utilization of Salt Lake Resources, Key Laboratory of Salt Lake Resources Chemistry of Qinghai Province, Qinghai Institute of Salt Lakes, Chinese Academy of Sciences 1 , Xining, Qinghai 810008,

M

Matteo Grenzi

L

Laura Luoni

Department of Biosciences, University of Milan

M

Masaru Kono

Y

Yuki Hayashi

T

Toshinori Kinoshita

F

Farhan Aziz

K

Khurram Bashir

M

Motoaki Seki

A

Asuka Kamimura

T

Takumi Higaki

J

Jun Takeuchi

Department of Applied Life Sciences, Faculty of Agriculture, Shizuoka University

Y

Yasushi Todoroki

Department of Applied Life Sciences, Faculty of Agriculture, Shizuoka University

H

Huifei Yin

F

Francisco Rubio

J

Jörg Kudla

S

Shintaro Munemasa

Y

Yoshiyuki Murata

M

Masaru Tsujii

Y

Yasuhiro Ishimaru

A

Alex Costa

N

Nobuyuki Uozumi