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Shape change in the receptor for gliding motility in Plasmodium sporozoites.疟原虫子孢子滑行运动受体的构象变化。
Proc Natl Acad Sci U S A. 2012 Dec 26;109(52):21420-5. doi: 10.1073/pnas.1218581109. Epub 2012 Dec 11.
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Unexpected fold in the circumsporozoite protein target of malaria vaccines.疟疾疫苗的环子孢子蛋白靶标出现意外折叠。
Proc Natl Acad Sci U S A. 2012 May 15;109(20):7817-22. doi: 10.1073/pnas.1205737109. Epub 2012 Apr 30.
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Transcriptional variation in the malaria parasite Plasmodium falciparum.疟原虫恶性疟原虫的转录变异。
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Terminal galactosylation of glycoconjugates in Plasmodium falciparum asexual blood stages and Trypanosoma brucei bloodstream trypomastigotes.疟原虫无性血期和布氏锥虫血流循环体糖缀合物的末端半乳糖基化。
Exp Parasitol. 2012 Apr;130(4):314-20. doi: 10.1016/j.exppara.2012.02.017. Epub 2012 Mar 3.
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Functional analysis of Plasmodium vivax VIR proteins reveals different subcellular localizations and cytoadherence to the ICAM-1 endothelial receptor.对间日疟原虫 VIR 蛋白的功能分析揭示了不同的亚细胞定位和对细胞间黏附分子-1 内皮受体的细胞黏附作用。
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First results of phase 3 trial of RTS,S/AS01 malaria vaccine in African children.RTS,S/AS01 疟疾疫苗在非洲儿童中进行的 3 期临床试验的初步结果。
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7
Biochemical characterisation and novel classification of monofunctional S-adenosylmethionine decarboxylase of Plasmodium falciparum.恶性疟原虫单功能S-腺苷甲硫氨酸脱羧酶的生化特性及新分类
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8
Structural basis for the broad substrate range of the UDP-sugar pyrophosphorylase from Leishmania major.主要利什曼原虫尿苷二磷酸糖焦磷酸化酶广谱底物的结构基础。
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9
Nucleotide and nucleotide sugar analysis by liquid chromatography-electrospray ionization-mass spectrometry on surface-conditioned porous graphitic carbon.采用表面处理的多孔石墨碳通过液相色谱-电喷雾电离-质谱法对核苷酸和核苷酸糖进行分析。
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10
Central carbon metabolism of Plasmodium parasites.疟原虫的中心碳代谢
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恶性疟原虫红内期生物合成 GDP-岩藻糖和其他糖核苷酸。

Biosynthesis of GDP-fucose and other sugar nucleotides in the blood stages of Plasmodium falciparum.

机构信息

Barcelona Centre for International Health Research, Hospital Clínic-Universitat de Barcelona, CEK, 1a Planta, Rosselló 149-153, 08036, Barcelona, Spain.

College of Life Sciences, University of Dundee, Division of Biological Chemistry and Drug Discovery, Wellcome Trust Biocentre, Dundee DD15EH, Scotland, United Kingdom.

出版信息

J Biol Chem. 2013 Jun 7;288(23):16506-16517. doi: 10.1074/jbc.M112.439828. Epub 2013 Apr 24.

DOI:10.1074/jbc.M112.439828
PMID:23615908
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3675586/
Abstract

Carbohydrate structures play important roles in many biological processes, including cell adhesion, cell-cell communication, and host-pathogen interactions. Sugar nucleotides are activated forms of sugars used by the cell as donors for most glycosylation reactions. Using a liquid chromatography-tandem mass spectrometry-based method, we identified and quantified the pools of UDP-glucose, UDP-galactose, UDP-N-acetylglucosamine, GDP-mannose, and GDP-fucose in Plasmodium falciparum intraerythrocytic life stages. We assembled these data with the in silico functional reconstruction of the parasite metabolic pathways obtained from the P. falciparum annotated genome, exposing new active biosynthetic routes crucial for further glycosylation reactions. Fucose is a sugar present in glycoconjugates often associated with recognition and adhesion events. Thus, the GDP-fucose precursor is essential in a wide variety of organisms. P. falciparum presents homologues of GDP-mannose 4,6-dehydratase and GDP-L-fucose synthase enzymes that are active in vitro, indicating that most GDP-fucose is formed by a de novo pathway that involves the bioconversion of GDP-mannose. Homologues for enzymes involved in a fucose salvage pathway are apparently absent in the P. falciparum genome. This is in agreement with in vivo metabolic labeling experiments showing that fucose is not significantly incorporated by the parasite. Fluorescence microscopy of epitope-tagged versions of P. falciparum GDP-mannose 4,6-dehydratase and GDP-L-fucose synthase expressed in transgenic 3D7 parasites shows that these enzymes localize in the cytoplasm of P. falciparum during the intraerythrocytic developmental cycle. Although the function of fucose in the parasite is not known, the presence of GDP-fucose suggests that the metabolite may be used for further fucosylation reactions.

摘要

碳水化合物结构在许多生物过程中发挥着重要作用,包括细胞黏附、细胞间通讯和宿主-病原体相互作用。糖核苷酸是细胞用作大多数糖基化反应供体的糖的激活形式。我们使用基于液相色谱-串联质谱的方法,鉴定并定量了疟原虫内期红细胞内的 UDP-葡萄糖、UDP-半乳糖、UDP-N-乙酰葡萄糖胺、GDP-甘露糖和 GDP-岩藻糖池。我们将这些数据与从疟原虫注释基因组中获得的寄生虫代谢途径的计算机功能重建组装在一起,揭示了新的活跃生物合成途径,这些途径对进一步的糖基化反应至关重要。岩藻糖是糖缀合物中常见的一种糖,通常与识别和黏附事件有关。因此,GDP-岩藻糖前体在各种生物体中都是必不可少的。疟原虫存在 GDP-甘露糖 4,6-脱水酶和 GDP-L-岩藻糖合酶的同源物,这些酶在体外具有活性,表明大多数 GDP-岩藻糖是通过从头途径形成的,该途径涉及 GDP-甘露糖的生物转化。参与岩藻糖 salvage 途径的酶的同源物显然在疟原虫基因组中缺失。这与体内代谢标记实验结果一致,表明疟原虫中并不显著掺入岩藻糖。在转染 3D7 寄生虫中表达的疟原虫 GDP-甘露糖 4,6-脱水酶和 GDP-L-岩藻糖合酶的表位标记版本的荧光显微镜检查表明,这些酶在疟原虫的红细胞内发育周期中定位于细胞质中。尽管尚不清楚岩藻糖在寄生虫中的功能,但 GDP-岩藻糖的存在表明该代谢物可能用于进一步的岩藻糖基化反应。