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2
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本文引用的文献

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The Cauliflower Mosaic Virus 35S Promoter: Combinatorial Regulation of Transcription in Plants.花椰菜花叶病毒35S启动子:植物转录的组合调控
Science. 1990 Nov 16;250(4983):959-66. doi: 10.1126/science.250.4983.959.
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Adaptation of photosynthetic processes to stress.适应光合作用过程中的应激反应。
Science. 1975 May 9;188(4188):644-50. doi: 10.1126/science.188.4188.644.
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Identification of the genomic locations of duplicate nucleotide sequences in maize by analysis of restriction fragment length polymorphisms.通过分析限制性片段长度多态性鉴定玉米中重复核苷酸序列的基因组位置。
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Phytochrome regulation of greening in barley : effects on mRNA abundance and on transcriptional activity of isolated nuclei.光敏色素调控大麦的变绿:对 mRNA 丰度和分离核转录活性的影响。
Plant Physiol. 1988 Mar;86(3):706-10. doi: 10.1104/pp.86.3.706.
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Pyruvate orthophosphate dikinase mRNA organ specificity in wheat and maize.小麦和玉米中丙酮酸正磷酸二激酶 mRNA 的器官特异性。
Plant Physiol. 1984 Sep;76(1):278-80. doi: 10.1104/pp.76.1.278.
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Pyruvate orthophosphate dikinase in wheat leaves.小麦叶片中的丙酮酸磷酸二激酶。
Plant Physiol. 1983 Nov;73(3):853-4. doi: 10.1104/pp.73.3.853.
7
Genomic and cDNA clones for maize phosphoenolpyruvate carboxylase and pyruvate,orthophosphate dikinase: Expression of different gene-family members in leaves and roots.玉米磷酸烯醇式丙酮酸羧化酶和丙酮酸,磷酸二激酶的基因组和 cDNA 克隆:不同基因家族成员在叶片和根中的表达。
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8
Photorespiratory-induced senescence of plants under conditions of low carbon dioxide.低二氧化碳条件下光呼吸诱导的植物衰老
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10
Transformation of Maize Cells and Regeneration of Fertile Transgenic Plants.玉米细胞的转化与可育转基因植株的再生
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玉米丙酮酸磷酸双激酶基因差异表达的分子机制

Molecular mechanisms underlying the differential expression of maize pyruvate, orthophosphate dikinase genes.

作者信息

Sheen J

机构信息

Department of Genetics, Harvard Medical School, Boston, Massachusetts.

出版信息

Plant Cell. 1991 Mar;3(3):225-45. doi: 10.1105/tpc.3.3.225.

DOI:10.1105/tpc.3.3.225
PMID:1668653
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC159995/
Abstract

I describe here the organization of maize C4 chloroplast and non-C4 cytosolic pyruvate, orthophosphate dikinase (PPDK) genes and the molecular mechanisms underlying their differential expression. The maize C4 chloroplast PPDK gene (C4ppdkZm1) appears to have been created by the addition of an exon encoding the chloroplast transit peptide at a site upstream of a cytosolic PPDK gene (cyppdkZm1). A splice acceptor sequence located in the first exon of cyppdkZm1 allows the fusion of the transit peptide to the cyppdkZm1 sequences. A second cyPPDK gene (cyppdkZm2) shares extensive homology with cyppdkZm1 in the coding region and in the 5' flanking region up to the TATA box. By a novel protoplast transient expression method, I show that the light-inducible expression of C4ppdkZm1 is controlled by two expression programs mediated through separate upstream regulatory elements that are active in leaf, but inactive in root and stem. Light-mediated C4ppdkZm1 expression in maize is apparently uncoupled from leaf development and partially associated with chloroplast development. For cyppdkZm1 expression, distinct upstream elements and a specific TATA promoter element, located in the first intron of C4ppdkZm1, are required. The low expression of cyppdkZm2 can be attributed to an absence of upstream positive elements and weak activity of the TATA promoter element.

摘要

我在此描述玉米C4叶绿体和非C4胞质丙酮酸磷酸双激酶(PPDK)基因的组织情况以及它们差异表达的分子机制。玉米C4叶绿体PPDK基因(C4ppdkZm1)似乎是通过在胞质PPDK基因(cyppdkZm1)上游的一个位点添加一个编码叶绿体转运肽的外显子而产生的。位于cyppdkZm1第一个外显子中的剪接受体序列允许转运肽与cyppdkZm1序列融合。第二个cyPPDK基因(cyppdkZm2)在编码区和直至TATA框的5'侧翼区与cyppdkZm1具有广泛的同源性。通过一种新的原生质体瞬时表达方法,我表明C4ppdkZm1的光诱导表达受两个表达程序控制,这两个程序通过在叶片中活跃但在根和茎中不活跃的单独上游调控元件介导。玉米中光介导的C4ppdkZm1表达显然与叶片发育解偶联,并且部分与叶绿体发育相关。对于cyppdkZm1的表达,需要位于C4ppdkZm1第一个内含子中的不同上游元件和一个特定的TATA启动子元件。cyppdkZm2的低表达可归因于上游正调控元件的缺失和TATA启动子元件的弱活性。