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在转基因拟南芥中分析水稻 Rubisco 激活酶启动子的功能。

Functional analysis of the rice rubisco activase promoter in transgenic Arabidopsis.

机构信息

Key Laboratory of Photobiology, Institute of Botany, Chinese Academy of Sciences, Beijing 100093, PR China.

出版信息

Biochem Biophys Res Commun. 2012 Feb 17;418(3):565-70. doi: 10.1016/j.bbrc.2012.01.073. Epub 2012 Jan 24.

Abstract

To gain a better understanding of the regulatory mechanism of the rice rubisco activase (Rca) gene, variants of the Rca gene promoter (one full-length and four deletion mutants) fused to the coding region of the bacterial reporter gene β-glucuronidase (GUS) were introduced into Arabidopsis via Agrobacterium-mediated transformation. Our results show that a 340 bp fragment spanning from -297 to +43 bp relative to the transcription initiation site is enough to promote tissue-specific and light-inducible expression of the rice Rca gene as done by the full-length promoter (-1428 to +43 bp). Further deletion analysis indicated that the region conferring tissue-specificity of Rca expression is localized within a 105 bp fragment from -58 to +43 bp, while light-inducible expression of Rca is mediated by the region from -297 to -58 bp. Gel shift assays and competition experiments demonstrated that rice nuclear proteins bind specifically with the fragment conferring light responsiveness at more than one binding site. This implies that multiple cis-elements may be involved in light-induced expression of the rice Rca gene. These works provide a useful reference for understanding transcriptional regulation mechanism of the rice Rca gene, and lay a strong foundation for further detection of related cis-elements and trans-factors.

摘要

为了更好地理解水稻 Rubisco 激活酶(Rca)基因的调控机制,我们将 Rca 基因启动子(一个全长和四个缺失突变体)与细菌报告基因β-葡萄糖醛酸酶(GUS)的编码区融合,通过农杆菌介导的转化导入拟南芥。我们的结果表明,相对于转录起始位点,跨越 -297 到 +43 bp 的 340 bp 片段足以像全长启动子(-1428 到 +43 bp)那样促进水稻 Rca 基因的组织特异性和光诱导表达。进一步的缺失分析表明,赋予 Rca 表达组织特异性的区域定位于-58 到 +43 bp 的 105 bp 片段内,而 Rca 的光诱导表达则由-297 到-58 bp 的区域介导。凝胶迁移分析和竞争实验表明,水稻核蛋白特异性地与赋予光反应性的片段结合,该片段在多个结合位点上结合。这意味着多个顺式元件可能参与了水稻 Rca 基因的光诱导表达。这些工作为理解水稻 Rca 基因的转录调控机制提供了有用的参考,并为进一步检测相关顺式元件和反式因子奠定了坚实的基础。

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