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首页> 外文期刊>Plant Science: An International Journal of Experimental Plant Biology >Analysis of the rice SHORT-ROOT5 gene revealed functional diversification of plant neutral/alkaline invertase family
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Analysis of the rice SHORT-ROOT5 gene revealed functional diversification of plant neutral/alkaline invertase family

机译:水稻SHORT-ROOT5基因的分析揭示了植物中性/碱性转化酶家族的功能多样化

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摘要

Neutral/alkaline invertase (Inv-N) catalyzes the hydrolysis of sucrose to produce glucose and fructose. Although the rice genome contains eight Inv-N-like genes, their functions in plant development are unknown. We previously described a rice mutant, srt5, which exhibits extremely stunted post-embryonic root growth that is rescuable by metabolizable sugars. In the present study, we performed a functional analysis of the SRT5 gene. We showed that SRT5 encodes a putative cytosolic Inv-N that cleaves sucrose at pH 7.0 and 8.0. An SRT5-GFP fusion protein was localized to the cytosol. Sucrose levels in srt5 root cells were elevated, consistent with a crucial role for SRT5 in cytosolic sucrose cleavage at early root developmental stages. SRT5 was found to be ubiquitously expressed in various plant organs, whereas the other seven rice Inv-Ns were differentially expressed, suggesting that the functions of these latter proteins are distinct from that of SRT5. In support of this view, molecular evolutionary analysis revealed that all of the most closely related paralogs of SRT5 (OsNIN5, OsNIN6, and OsNIN7) have multiple non-conservative amino acid substitutions not found in SRT5. These results suggest that SRT5 is the key isoform of Inv-Ns required for carbon and energy supply during early root development.
机译:中性/碱性转化酶(Inv-N)催化蔗糖水解产生葡萄糖和果糖。尽管水稻基因组包含八个Inv-N样基因,但它们在植物发育中的功能尚不清楚。先前我们描述了水稻突变体srt5,其表现出极速发育的胚后根生长,可被可代谢的糖挽救。在本研究中,我们对SRT5基因进行了功能分析。我们表明,SRT5编码一个假定的胞质Inv-N,该Inv-N可以在pH 7.0和8.0时切割蔗糖。 SRT5-GFP融合蛋白位于细胞质中。 srt5根细胞中的蔗糖水平升高,这与SRT5在早期根发育阶段在胞质蔗糖裂解中的关键作用一致。发现SRT5在各种植物器官中普遍表达,而其他七个水稻Inv-Ns差异表达,这表明后者的这些蛋白的功能与SRT5不同。为了支持这种观点,分子进化分析显示,SRT5的所有最密切相关的旁系同源物(OsNIN5,OsNIN6和OsNIN7)具有在SRT5中找不到的多个非保守氨基酸取代。这些结果表明,SRT5是早期根发育过程中碳和能量供应所需的关键Inv-Ns亚型。

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