The plasma membrane NADPH oxidase OsRbohA plays a crucial role in developmental regulation and drought‐stress response in rice

0301 basic medicine Germination Cyclopentanes Acetates Sodium Chloride Plant Roots 03 medical and health sciences Plant Growth Regulators Gene Expression Regulation, Plant Stress, Physiological Oxylipins Plant Proteins 2. Zero hunger Cell Membrane NADPH Oxidases Oryza 15. Life on land Plants, Genetically Modified 6. Clean water Droughts Plant Leaves Seedlings Mutation Reactive Oxygen Species Signal Transduction
DOI: 10.1111/ppl.12389 Publication Date: 2015-09-24T12:28:42Z
ABSTRACT
Plasma membrane NADPH oxidases are major producers of reactive oxygen species (ROS) in plant cells under normal growth and stress conditions. In the present study the total activity of rice NADPH oxidases and the transcription of OsRbohA, which encodes an Oryza sativa plasma membrane NADPH oxidase, were stimulated by drought. OsRbohA was expressed in all tissues examined throughout development. Its mRNA was upregulated by a number of factors, including heat, drought, salt, oxidative stress and methyl jasmonate treatment. Compared with wild‐type (WT), the OsRbohA‐knockout mutant osrbohA exhibited upregulated expression of other respiratory burst oxidase homolog genes and multiple abnormal agronomic traits, including reduced biomass, low germination rate and decreased pollen viability and seed fertility. However, OsRbohA‐overexpressing transgenic plants showed no differences in these traits compared with WT. Although osrbohA leaves and roots produced more ROS than WT, the mutant had lesser intracellular ROS. In contrast, OsRbohA‐overexpressing transgenic plants exhibited higher ROS production at the intracellular level and in tissues. Ablation of OsRbohA impaired the tolerance of plants to various water stresses, whereas its overexpression enhanced the tolerance. In addition, a number of genes related to energy supply, substrate transport, stress response and transcriptional regulation were differentially expressed in osrbohA plants even under normal growth conditions, suggesting that OsRbohA has fundamental and broad functions in rice. These results indicate that OsRbohA‐mediated processes are governed by complex signaling pathways that function during the developmental regulation and drought‐stress response in rice.
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