The transcription factor OsbZIP48 governs rice responses to zinc deficiency

Author:

Hu Shubao12,Du Binbin1,Mu Guangmao1,Jiang Zichen1,Li Hui1,Song Yuxinrui1,Zhang Baolei3,Xia Jixing3ORCID,Rouached Hatem4,Zheng Luqing1ORCID

Affiliation:

1. College of Life Sciences Nanjing Agricultural University Nanjing China

2. College of Life sciences Anqing Normal University Anqing China

3. State Key Laboratory for Conservation and Utilization of Subtropical Agro‐bioresources, College of Life Science and Technology Guangxi University Nanning China

4. Department of Plant, Soil, and Microbial Sciences, Plant Resilience Institute Michigan State University East Lansing Michigan USA

Abstract

AbstractZinc (Zn) deficiency is the most prevalent micronutrient disorder in rice and leads to delayed development and decreased yield. Nevertheless, despite its primary importance, how rice responds to Zn deficiency remains poorly understood. This study presents genetic evidence supporting the crucial role of OsbZIP48 in regulating rice's response to Zn deficiency, consistent with earlier findings in the model plant Arabidopsis. Genetic inactivation of OsbZIP48 in rice seedlings resulted in heightened sensitivity to Zn deficiency and reduced Zn translocation from roots to shoots. Consistently, OsbZIP48 was constitutively expressed in roots, slightly induced by Zn deficiency in shoots and localized into nuclei induced by Zn deficiency. Comparative transcriptome analysis of the wild‐type plants and osbzip48 mutant grown under Zn deficiency enabled the identification of OsbZIP48 target genes, including key Zn transporter genes (OsZIP4 and OsZIP8). We demonstrated that OsbZIP48 controlled the expressions of these genes by directly binding to their promoters, specifically to the Zn deficiency response element motif. This study establishes OsbZIP48 as a critical transcription factor in rice's response to Zn deficiency, offering valuable insights for developing Zn‐biofortified rice varieties to combat global Zn limitation.

Funder

China Postdoctoral Science Foundation

National Natural Science Foundation of China

Publisher

Wiley

Subject

Plant Science,Physiology

Reference38 articles.

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2. Arabidopsis thaliana transcription factors bZIP19 and bZIP23 regulate the adaptation to zinc deficiency;Assunção A.G.L.;Proceedings of the National Academy of Sciences of the United States of America,2010

3. Cloning an iron‐regulated metal transporter from rice;Bughio N.;Journal of Experimental Botany,2002

4. Alternative splicing plays a critical role in maintaining mineral nutrient homeostasis in rice (Oryza sativa);Dong C.;The Plant Cell,2018

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