Rice Overexpressing <i>OsNUC1-S</i> Reveals Differential Gene Expression Leading to Yield Loss Reduction after Salt Stress at the Booting Stage

Rice nucleolin (OsNUC1), consisting of two isoforms, OsNUC1-L and OsNUC1-S, is a multifunctional protein involved in salt-stress tolerance. Here, <i>OsNUC1-S</i>&#8217;s function was investigated using transgenic rice lines overexpressing <i>OsNUC1-S</i>. Under non-stress...

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Bibliographic Details
Main Authors: Chuthamas Boonchai, Thanikarn Udomchalothorn, Siriporn Sripinyowanich, Luca Comai, Teerapong Buaboocha, Supachitra Chadchawan
Format: Article
Language:English
Published: MDPI AG 2018-12-01
Series:International Journal of Molecular Sciences
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Online Access:https://www.mdpi.com/1422-0067/19/12/3936
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Summary:Rice nucleolin (OsNUC1), consisting of two isoforms, OsNUC1-L and OsNUC1-S, is a multifunctional protein involved in salt-stress tolerance. Here, <i>OsNUC1-S</i>&#8217;s function was investigated using transgenic rice lines overexpressing <i>OsNUC1-S</i>. Under non-stress conditions, the transgenic lines showed a lower yield, but higher net photosynthesis rates, stomatal conductance, and transpiration rates than wild type only in the second leaves, while in the flag leaves, these parameters were similar among the lines. However, under salt-stress conditions at the booting stage, the higher yields in transgenic lines were detected. Moreover, the gas exchange parameters of the transgenic lines were higher in both flag and second leaves, suggesting a role for <i>OsNUC1-S</i> overexpression in photosynthesis adaptation under salt-stress conditions. Moreover, the overexpression lines could maintain light-saturation points under salt-stress conditions, while a decrease in the light-saturation point owing to salt stress was found in wild type. Based on a transcriptome comparison between wild type and a transgenic line, after 3 and 9 days of salt stress, the significantly differentially expressed genes were enriched in the metabolic process of nucleic acid and macromolecule, photosynthesis, water transport, and cellular homeostasis processes, leading to the better performance of photosynthetic processes under salt-stress conditions at the booting stage.
ISSN:1422-0067