The exocyst subunits OsEXO70L2 and OsSEC3A regulate root development through modulating OsPIN1a/b-mediated auxin distribution in rice

R Ranran Tu (Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University) H Hong Wang Q Qinwen Zou (Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University) Z Zhihao Sun (Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University) J Jiajun Wu D Duo Wu W Wenqiang Shen (Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University) J Jing You (Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University) Z Zan Xiao (Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University) J Jian Hu Z Ziyu Xie (Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University) N Nan Wang T Ting Zhang G Guanghua He (Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University)

Abstract

Exocyst complex–mediated vesicle trafficking is essential for plant growth and development, yet its roles in crop root development remain poorly understood. Previously, we showed that mutation of the exocyst subunit encoded gene OsEXO70L2 leads to reduced root length in the short-root 1 ( sr1 ) mutant, but the underlying mechanism was unclear. Here, we demonstrate that OsEXO70L2 interacts with another exocyst subunit, OsSEC3A. The OsSEC3A knockout mutant sec3a-1 exhibits shortened roots, a reduced root apical meristem, and vesicle trafficking defects, with phenotypes weaker than those of sr1 . The sr1 sec3a-1 double mutant resembles sr1 , indicating that OsEXO70L2 and OsSEC3A act in the same pathway. Both sr1 and sec3a-1 show reduced sensitivity to exogenous indole-3-acetic acid and the auxin transport inhibitor 1-naphthylphthalamic acid, accompanied by disrupted auxin distribution in the root tips. OsEXO70L2 and OsSEC3A regulate the plasma membrane abundance and localization of the auxin efflux carriers OsPIN1a/b. Consistently, the ospin1a ospin1b double mutant displays more severe short-root phenotypes and auxin distribution defects, confirming OsPIN1a/b as downstream targets. This study elucidates that OsEXO70L2 and OsSEC3A control root length by regulating vesicle trafficking-dependent OsPIN1a/b localization and auxin distribution in the root tips.

Article Details

Volume / Issue Vol. 123, Issue 25
Published June 23, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

R

Ranran Tu

Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University

H

Hong Wang

Q

Qinwen Zou

Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University

Z

Zhihao Sun

Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University

J

Jiajun Wu

D

Duo Wu

W

Wenqiang Shen

Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University

J

Jing You

Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University

Z

Zan Xiao

Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University

J

Jian Hu

Z

Ziyu Xie

Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University

N

Nan Wang

T

Ting Zhang

G

Guanghua He

Rice Research Institute, Key Laboratory of Crop Molecular Improvement, Academy of Agricultural Sciences, Southwest University