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本文引用的文献

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A phosphate transporter from Medicago truncatula is expressed in the photosynthetic tissues of the plant and located in the chloroplast envelope.一种来自蒺藜苜蓿的磷酸盐转运蛋白在植物的光合组织中表达,并位于叶绿体包膜上。
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Unidirectional transport of orthophosphate across the envelope of isolated cauliflower-bud amyloplasts.正磷酸盐在分离的菜花芽造粉体包膜上的单向运输。
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Planta. 1990 Jan;180(2):262-71. doi: 10.1007/BF00194006.
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Starch-related cytosolic heteroglycans in roots from Arabidopsis thaliana.拟南芥根中与淀粉有关的胞质杂聚糖。
J Plant Physiol. 2011 Aug 15;168(12):1406-14. doi: 10.1016/j.jplph.2010.12.008. Epub 2011 Jan 26.
7
The role of plastidial glucose-6-phosphate/phosphate translocators in vegetative tissues of Arabidopsis thaliana mutants impaired in starch biosynthesis.质体葡萄糖-6-磷酸/磷酸转运蛋白在淀粉生物合成缺陷拟南芥突变体营养组织中的作用。
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High-contrast three-dimensional imaging of the Arabidopsis leaf enables the analysis of cell dimensions in the epidermis and mesophyll.拟南芥叶片的高对比度三维成像可用于分析表皮和叶肉细胞的尺寸。
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9
Functionally important amino acids in the Arabidopsis thylakoid phosphate transporter: homology modeling and site-directed mutagenesis.拟南芥类囊体膜磷酸转运体的功能重要氨基酸:同源建模和定点突变。
Biochemistry. 2010 Aug 3;49(30):6430-9. doi: 10.1021/bi100239j.
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Increased leaf size: different means to an end.叶片增大:殊途同归。
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拟南芥中特异于液泡的质体磷转运蛋白 PHT4;2 影响淀粉积累和叶片大小。

The sink-specific plastidic phosphate transporter PHT4;2 influences starch accumulation and leaf size in Arabidopsis.

机构信息

Department of Biology and Interdepartmental Program in Molecular and Environmental Plant Sciences, Texas A&M University, College Station, Texas 77843, USA.

出版信息

Plant Physiol. 2011 Dec;157(4):1765-77. doi: 10.1104/pp.111.181925. Epub 2011 Sep 29.

DOI:10.1104/pp.111.181925
PMID:21960139
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3327177/
Abstract

Nonphotosynthetic plastids are important sites for the biosynthesis of starch, fatty acids, and amino acids. The uptake and subsequent use of cytosolic ATP to fuel these and other anabolic processes would lead to the accumulation of inorganic phosphate (Pi) if not balanced by a Pi export activity. However, the identity of the transporter(s) responsible for Pi export is unclear. The plastid-localized Pi transporter PHT4;2 of Arabidopsis (Arabidopsis thaliana) is expressed in multiple sink organs but is nearly restricted to roots during vegetative growth. We identified and used pht4;2 null mutants to confirm that PHT4;2 contributes to Pi transport in isolated root plastids. Starch accumulation was limited in pht4;2 roots, which is consistent with the inhibition of starch synthesis by excess Pi as a result of a defect in Pi export. Reduced starch accumulation in leaves and altered expression patterns for starch synthesis genes and other plastid transporter genes suggest metabolic adaptation to the defect in roots. Moreover, pht4;2 rosettes, but not roots, were significantly larger than those of the wild type, with 40% greater leaf area and twice the biomass when plants were grown with a short (8-h) photoperiod. Increased cell proliferation accounted for the larger leaf size and biomass, as no changes were detected in mature cell size, specific leaf area, or relative photosynthetic electron transport activity. These data suggest novel signaling between roots and leaves that contributes to the regulation of leaf size.

摘要

非光合质体是淀粉、脂肪酸和氨基酸生物合成的重要场所。如果没有磷(Pi)输出活性来平衡,细胞质 ATP 的摄取和随后用于这些和其他合成代谢过程的利用将导致 Pi 的积累。然而,负责 Pi 输出的转运体(s)的身份尚不清楚。拟南芥(Arabidopsis thaliana)的质体定位 Pi 转运体 PHT4;2 在多个汇器官中表达,但在营养生长期间几乎仅限于根。我们鉴定并使用 pht4;2 缺失突变体来确认 PHT4;2 有助于分离的根质体中的 Pi 转运。pht4;2 根中的淀粉积累受到限制,这与 Pi 输出缺陷导致的过量 Pi 抑制淀粉合成一致。叶片中淀粉积累减少以及淀粉合成基因和其他质体转运体基因的表达模式改变表明代谢适应根中的缺陷。此外,pht4;2 莲座叶,但不是根,比野生型大得多,当植物在短(8 小时)光周期下生长时,叶面积增加 40%,生物量增加两倍。细胞增殖的增加导致了叶片尺寸和生物量的增加,因为成熟细胞尺寸、比叶面积或相对光合电子传递活性没有变化。这些数据表明根和叶之间存在新的信号转导,有助于叶片大小的调节。