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OsNAC5 overexpression enlarges root diameter in rice plants leading to enhanced drought tolerance and increased grain yield in the field

机译:OsNAC5过表达增加了水稻植株的根直径,从而提高了田间的耐旱性和谷物产量

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Drought conditions are among the most serious challenges to crop production worldwide. Here, we report the results of field evaluations of transgenic rice plants overexpressing OsNAC5 , under the control of either the root?¢????specific ( RCc3 ) or constitutive ( GOS2 ) promoters. Field evaluations over three growing seasons revealed that the grain yield of the RCc3:OsNAC5 and GOS2:OsNAC5 plants were increased by 9%?¢????23% and 9%?¢????26% under normal conditions, respectively. Under drought conditions, however, RCc3:OsNAC5 plants showed a significantly higher grain yield of 22%?¢????63%, whilst the GOS2:OsNAC5 plants showed a reduced or similar yield to the nontransgenic (NT) controls. Both the RCc3:OsNAC5 and GOS2:OsNAC5 plants were found to have larger roots due to an enlarged stele and aerenchyma at flowering stage. Cell numbers per cortex layer and stele of developing roots were higher in both transgenic plants than NT controls, contributing to the increase in root diameter. The root diameter was enlarged to a greater extent in the RCc3:OsNAC5 , suggesting the importance of this phenotype for enhanced drought tolerance. Microarray experiments identified 25 up?¢????regulated genes by more than three?¢????fold ( P???? < ???? 0.01) in the roots of both transgenic lines. Also identified were 19 and 18 up?¢????regulated genes that are specific to the RCc3:OsNAC5 and GOS2:OsNAC5 roots, respectively. Of the genes specifically up?¢????regulated in the RCc3:OsNAC5 roots, GLP , PDX , MERI5 and O?¢????methyltransferase were implicated in root growth and development. Our present findings demonstrate that the root?¢????specific overexpression of OsNAC5 enlarges roots significantly and thereby enhances drought tolerance and grain yield under field conditions.
机译:干旱条件是全球农作物生产面临的最严峻挑战之一。在这里,我们报告了在根特异启动子(RCc3)或组成性启动子(GOS2)启动子的控制下,过表达OsNAC5的转基因水稻植物的田间评估结果。在三个生长季节的田间评估表明,在正常条件下,RCc3:OsNAC5和GOS2:OsNAC5植物的谷物产量分别提高了9%和23%,以及9%和26%。 。然而,在干旱条件下,RCc3:OsNAC5植物显示出显着更高的谷物产量,为22%→63%,而GOS2:OsNAC5植物显示出与非转基因(NT)对照相比降低的或相似的产量。发现RCc3:OsNAC5和GOS2:OsNAC5植株都具有较大的根系,这是由于开花期石碑和气孔增大。在两种转基因植物中,每个皮质层和发育中的根的细胞数均高于NT对照,这有助于根直径的增加。 RCc3:OsNAC5的根部直径更大程度地扩大,表明该表型对于增强抗旱性很重要。微阵列实验在两个转基因系的根中鉴定出25个上调调控基因的数目超过三倍(P <0.01 <0.01)。还鉴定出分别对RCc3:OsNAC5和GOS2:OsNAC5根特异的19和18个上调的基因。在RCc3:OsNAC5的根中特异性上调的基因中,GLP,PDX,MERI5和O 2-甲基转移酶与根的生长和发育有关。我们目前的发现表明,OsNAC5的根特异表达明显增加了根,从而在田间条件下增强了耐旱性和谷物产量。

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