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Expression Quantitative Trait Loci Analysis of Two Genes Encoding Rubisco Activase in Soybean

机译:大豆Rubisco活化酶编码两个基因的表达数量性状位点分析。

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摘要

Rubisco activase (RCA) catalyzes the activation of Rubisco in vivo and plays a crucial role in photosynthesis. However, until now, little was known about the molecular genetics of RCA in soybean (Glycine max), one of the most important legume crops. Here, we cloned and characterized two genes encoding the longer α -isoform and the shorter β -isoform of soybean RCA (GmRCA α and GmRCA β, respectively). The two corresponding cDNAs are divergent in both the translated and 3 ′ untranslated regions. Analysis of genomic DNA sequences suggested that the corresponding mRNAs are transcripts of two different genes and not the products of a single alternatively splicing pre-mRNA. Two additional possible α -form RCA-encoding genes, GmRCA03 and GmRCA14, and one additional β -form RCA-encoding gene, GmRCA11, were also isolated. To examine the function and modulation of RCA genes in soybean, we determined the expression levels of GmRCA α and GmRCA β, Rubisco initial activity, photosynthetic rate, and seed yield in 184 soybean recombinant inbred lines. Correlation of gene expression levels with three other traits indicates that RCA genes could play an important role in regulating soybean photosynthetic capacity and seed yield. Expression quantitative trait loci mapping revealed four trans-expression quantitative trait loci for GmRCA α and GmRCA β. These results could provide a new approach for the modulation of RCA genes to improve photosynthetic rate and plant growth in soybean and other plants.
机译:Rubisco活化酶(RCA)在体内催化Rubisco的活化,并在光合作用中起关键作用。但是,到目前为止,人们对大豆(最重要的豆类作物之一)中RCA的分子遗传学知之甚少。在这里,我们克隆并鉴定了两个编码大豆RCA较长α-同工型和较短β-同工型的基因(分别为GmRCAα和GmRCAβ)。两个相应的cDNA在翻译的和3'非翻译区均不同。对基因组DNA序列的分析表明,相应的mRNA是两个不同基因的转录本,而不是单个可剪接的pre-mRNA的产物。还分离了另外两个可能的α形式RCA编码基因GmRCA03和GmRCA14,以及另外一个可能的β形式RCA编码基因GmRCA11。为了检测RCA基因在大豆中的功能和调控,我们测定了184个大豆重组自交系中GmRCAα和GmRCA β的表达水平,Rubisco的初始活性,光合速率和种子产量。基因表达水平与其他三个性状的相关性表明, RCA 基因可能在调节大豆光合能力和种子产量中发挥重要作用。表达数量性状基因座图谱显示了 GmRCA α GmRCA β 的四个反式表达数量性状基因座。这些结果可能为调控 RCA 基因以提高大豆和其他植物的光合速率和植物生长提供一种新方法。

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