拟南芥PCST1基因的鉴定及胁迫条件下的表达分析。

IF 2.8 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Hao Zhang, Ke Zhang, Tongtong Liu, Ying Zhang, Ziyan Tang, Jingao Dong, Fengru Wang
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引用次数: 0

摘要

拟南芥PCST1表达特征及在渗透胁迫中的作用分析。利用生物信息学方法分析PCST1的结构。采用Real-time PCR、GUS组织定位和亚细胞定位分析了PCST1在拟南芥中的表达模式。为了验证PCST1转基因阳性菌株的真实性,我们在野生型中进行了过表达实验。克隆全长cDNA,将其连接到带35S启动子的二元载体上,并将其转化为野生型。在NaCl和甘露醇处理下,对PCST1和T-DNA插入突变体过表达的拟南芥进行发芽率、绿叶率、生理指标的测定和计数。分析了拟南芥中PCST1基因响应渗透胁迫的分子机制。经生物信息学分析,PCST1是一个含有403个氨基酸的疏水蛋白,分子量为45.3236 KDa。它只含有START(脂质/固醇结合StAR相关脂质转移蛋白结构域)保守结构域。PCST1具有磷脂酰胆碱结合位点和跨膜区。表达模式分析显示PCST1的表达随时间增加而增加。PCST1在拟南芥中广泛表达,包括根、茎叶腋、花(萼片、花瓣导电组织、线束、花药和柱头)以及叶柄的顶部和基部。它主要局限于细胞膜。根据发芽率,PCST1过表达增强了拟南芥对渗透胁迫的敏感性。而拟南芥中PCST1的表达降低,对渗透胁迫的敏感性无明显变化。其分子机制研究表明,PCST1通过调控脯氨酸、甜菜碱合成以及关键基因SOS、NCED、CIPK的表达来响应渗透胁迫抗性。PCST1由403个氨基酸组成。PCST1含有START保守结构域、跨膜结构、磷脂酰胆碱结合位点。它定位于细胞质膜。PCST1广泛表达于根、叶、花和果核中。NaCl和甘露醇抑制了PCST1的表达,PCST1负向控制拟南芥在渗透胁迫中的作用。PCST1调控脯氨酸、甜菜碱的合成途径以及SOS、NCED和CIPK的表达,响应渗透胁迫。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The characterization and expression analysis under stress conditions of <i>PCST1</i> in <i>Arabidopsis</i>.

The characterization and expression analysis under stress conditions of <i>PCST1</i> in <i>Arabidopsis</i>.

The characterization and expression analysis under stress conditions of <i>PCST1</i> in <i>Arabidopsis</i>.

The characterization and expression analysis under stress conditions of PCST1 in Arabidopsis.

Analysis of PCST1 expression characteristics and the role of PCST1 in response to osmotic stress in Arabidopsis thaliana. The structure of PCST1 was analyzed using Bioinformatics method. Real-time PCR, GUS tissue localization and subcellular localization were adopted to analyze the expression pattern of PCST1 in Arabidopsis. To validate the transgenic positive strain of PCST1 using Real-time PCR, overexpression experiments were performed in wild type. Full-length cDNA was cloned and connected into a binary vector with 35S promoter, and the construction was transformed into wild type. With NaCl and mannitol treatments, the germination rate, green leaves rate, physiological indexes were carried out and counted in Arabidopsis with overexpression of PCST1 and T-DNA insertion mutants. The molecular mechanism of PCST1 in response to osmotic stress in Arabidopsis was analyzed. Based on the bioinformatic analysis, PCST1 is a hydrophobin with 403 amino acids, and the molecular weight is 45.3236 KDa. It contains only the START (the lipid/sterol - binding StAR - related lipid transfer protein domains) conservative domain. PCST1 possesses phosphatidylcholine binding sites and transmembrane region. Expression pattern analysis showed that expression of PCST1 increased with time. The PCST1 widely expressed in Arabidopsis, including roots, axils of stem leaves, flowers (sepal, conductive tissue of the petal, thrum, anther and stigmas), and the top and basal parts of the siliquas. It mainly localized in cell membrane. The overexpression of PCST1 enhanced the sensitivity to osmotic stress in Arabidopsis based on the germination rate. While expression of PCST1 decreased, and the sensitivity to osmotic stress had no obvious change in Arabidopsis. Its molecular mechanism study showed, that PCST1 response to osmotic stress resistance by regulating the proline, betaine synthesis, as well as the expression of key genes SOS, NCED, CIPK. PCST1 is composed of 403 amino acids. The START conservative domain, a transmembrane structure, the phosphatidyl choline binding sites are contained in PCST1. It is localized in cytoplasmic membrane. The PCST1 widely expressed in the root, leaf, flower and siliquas. NaCl and mannitol suppressed the expression of PCST1 and PCST1 can negatively control action of Arabidopsis in the osmotic stress. PCST1 regulates the synthetic pathway of proline, betaine and the expression of SOS, NCED and CIPK in response to the osmotic stress resistance.

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来源期刊
Plant Signaling & Behavior
Plant Signaling & Behavior Agricultural and Biological Sciences-Plant Science
CiteScore
6.00
自引率
3.40%
发文量
111
期刊介绍: Plant Signaling & Behavior, a multidisciplinary peer-reviewed journal published monthly online, publishes original research articles and reviews covering the latest aspects of signal perception and transduction, integrative plant physiology, and information acquisition and processing.
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