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Rice qGL3/OsPPKL1 Functions with the GSK3/SHAGGY-Like Kinase OsGSK3 to Modulate Brassinosteroid Signaling
Author(s) -
Xiuying Gao,
Jiaqi Zhang,
Xiaojun Zhang,
Jun Zhou,
Zhisheng Jiang,
Peng Huang,
Zhengbin Tang,
Yongmei Bao,
Jinping Cheng,
Haijuan Tang,
Wenhua Zhang,
Hongsheng Zhang,
Ji Huang
Publication year - 2019
Publication title -
the plant cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.324
H-Index - 341
eISSN - 1532-298X
pISSN - 1040-4651
DOI - 10.1105/tpc.18.00836
Subject(s) - brassinosteroid , arabidopsis , biology , oryza sativa , arabidopsis thaliana , microbiology and biotechnology , phosphatase , phosphorylation , kinase , signal transduction , genetics , mutant , gene
Brassinosteroids (BRs) are steroid hormones that play essential roles in plant growth and development. We previously cloned qGL3 , a major quantitative trait locus regulating grain length in rice ( Oryza sativa ). The O. sativa japonica var N411 has extra-large grains compared with the O. sativa indica var 9311, and the recessive qgl3 allele from N411 contributes positively to grain length. qGL3 encodes a putative protein phosphatase with Kelch-like repeat domains, an ortholog of Arabidopsis ( Arabidopsis thaliana ) brassinosteroid-insensitive1 SUPPRESSOR1 (BSU1). BSU1 positively regulates BR signaling, while overexpression of qGL3 induced BR loss-of-function phenotypes. Both qGL3 N411 and qGL3 9311 physically interact with the rice glycogen synthase kinase 3 (GSK3)/SHAGGY-like kinase 3 (OsGSK3), an ortholog of Arabidopsis BR INSENSITIVE2 (BIN2). qGL3 9311 dephosphorylates OsGSK3, but qGL3 N411 lacks this activity. Knocking out OsGSK3 enhances BR signaling and induces nuclear localization of O. sativa BRASSINAZOLE RESISTANT1 (OsBZR1). Unlike the dephosphorylation of BIN2 (which leads to protein degradation) in Arabidopsis, qGL3 dephosphorylates and stabilizes OsGSK3 in rice. These results demonstrate that qGL3 suppresses BR signaling by regulating the phosphorylation and stability of OsGSK3, which modulates OsBZR1 phosphorylation and subcellular distribution. Our study clarifies the role of qGL3 in the regulation of grain length and provides insight into BR signaling, including the differences between rice and Arabidopsis.

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