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大豆两个编码 Rubisco 激活酶基因的表达数量性状位点分析。

Expression quantitative trait loci analysis of two genes encoding rubisco activase in soybean.

机构信息

National Center for Soybean Improvement, National Key Laboratory of Crop Genetics and Germplasm Enhancement, Nanjing Agricultural University, Nanjing 210095, China.

出版信息

Plant Physiol. 2010 Mar;152(3):1625-37. doi: 10.1104/pp.109.148312. Epub 2009 Dec 23.

Abstract

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 alpha -isoform and the shorter beta -isoform of soybean RCA (GmRCA alpha and GmRCA beta, 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 alpha -form RCA-encoding genes, GmRCA03 and GmRCA14, and one additional beta -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 alpha and GmRCA beta, 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 alpha and GmRCA beta. 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.

摘要

核酮糖-1,5-二磷酸羧化酶加氧酶激活酶(RCA)在体内催化核酮糖-1,5-二磷酸羧化酶的激活,在光合作用中起着至关重要的作用。然而,直到现在,人们对大豆(Glycine max)中 RCA 的分子遗传学还知之甚少,大豆是最重要的豆科作物之一。在这里,我们克隆并鉴定了编码大豆 RCA 的较长的α-异构体和较短的β-异构体的两个基因(分别为 GmRCA alpha 和 GmRCA beta)。这两个相应的 cDNA 在翻译和 3'非翻译区都有分歧。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物,而不是单个选择性剪接前体 mRNA 的产物。还分离了另外两个可能的编码α-RCA 的基因 GmRCA03 和 GmRCA14,以及一个编码β-RCA 的基因 GmRCA11。为了研究 RCA 基因在大豆中的功能和调控,我们在 184 个大豆重组自交系中测定了 GmRCA alpha 和 GmRCA beta 的表达水平、Rubisco 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方面发挥重要作用。表达数量性状基因座作图揭示了 GmRCA alpha 和 GmRCA beta 的四个反式表达数量性状基因座。这些结果为调节 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了一种新方法。

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