布鲁氏锥虫的血流形式依赖于高尔基复合体磷脂酰肌醇合成和正常细胞生长的肌醇摄取。

Amaia González-Salgado, Michael Steinmann, Louise L Major, Erwin Sigel, Jean-Louis Reymond, Terry K Smith, Peter Bütikofer
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引用次数: 17

摘要

肌醇是真核生物中所有含肌醇的磷脂的组成部分。它可以在细胞质和内质网中由葡萄糖-6-磷酸重新合成。或者,它可以通过Na(+)-或H(+)-连接的肌醇转运体从环境中摄取。Na(+)偶联肌肌醇转运蛋白仅存在于质膜中,而H(+)偶联肌肌醇转运蛋白则存在于胞内细胞器中。在人类非洲昏睡病的病原体布鲁氏锥虫中,肌肌醇代谢是分区的。新合成的肌醇用于内质网中糖基磷脂酰肌醇的生产,而从环境中吸收的肌醇则用于高尔基复合体中散装磷脂酰肌醇的合成。我们现在提供的证据表明,高尔基复合物定位的布氏体H(+)-连接肌醇转运蛋白(thbhmit)在血流形式的布氏体中是必不可少的。通过RNA干扰下调TbHMIT的表达阻断了磷脂酰肌醇的产生,抑制了培养中寄生虫的生长。在异源表达系统中对转运体的表征表明,TbHMIT对肌醇具有显著的选择性。它只允许肌醇环上的单一修饰,如去除一个羟基或相对于肌醇在单个羟基上的立体化学反转。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Trypanosoma brucei Bloodstream Forms Depend upon Uptake of myo-Inositol for Golgi Complex Phosphatidylinositol Synthesis and Normal Cell Growth.

Trypanosoma brucei Bloodstream Forms Depend upon Uptake of myo-Inositol for Golgi Complex Phosphatidylinositol Synthesis and Normal Cell Growth.

Trypanosoma brucei Bloodstream Forms Depend upon Uptake of myo-Inositol for Golgi Complex Phosphatidylinositol Synthesis and Normal Cell Growth.

Trypanosoma brucei Bloodstream Forms Depend upon Uptake of myo-Inositol for Golgi Complex Phosphatidylinositol Synthesis and Normal Cell Growth.

myo-Inositol is a building block for all inositol-containing phospholipids in eukaryotes. It can be synthesized de novo from glucose-6-phosphate in the cytosol and endoplasmic reticulum. Alternatively, it can be taken up from the environment via Na(+)- or H(+)-linked myo-inositol transporters. While Na(+)-coupled myo-inositol transporters are found exclusively in the plasma membrane, H(+)-linked myo-inositol transporters are detected in intracellular organelles. In Trypanosoma brucei, the causative agent of human African sleeping sickness, myo-inositol metabolism is compartmentalized. De novo-synthesized myo-inositol is used for glycosylphosphatidylinositol production in the endoplasmic reticulum, whereas the myo-inositol taken up from the environment is used for bulk phosphatidylinositol synthesis in the Golgi complex. We now provide evidence that the Golgi complex-localized T. brucei H(+)-linked myo-inositol transporter (TbHMIT) is essential in bloodstream-form T. brucei. Downregulation of TbHMIT expression by RNA interference blocked phosphatidylinositol production and inhibited growth of parasites in culture. Characterization of the transporter in a heterologous expression system demonstrated a remarkable selectivity of TbHMIT for myo-inositol. It tolerates only a single modification on the inositol ring, such as the removal of a hydroxyl group or the inversion of stereochemistry at a single hydroxyl group relative to myo-inositol.

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来源期刊
Eukaryotic Cell
Eukaryotic Cell 生物-微生物学
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审稿时长
1 months
期刊介绍: Eukaryotic Cell (EC) focuses on eukaryotic microbiology and presents reports of basic research on simple eukaryotic microorganisms, such as yeasts, fungi, algae, protozoa, and social amoebae. The journal also covers viruses of these organisms and their organelles and their interactions with other living systems, where the focus is on the eukaryotic cell. Topics include: - Basic biology - Molecular and cellular biology - Mechanisms, and control, of developmental pathways - Structure and form inherent in basic biological processes - Cellular architecture - Metabolic physiology - Comparative genomics, biochemistry, and evolution - Population dynamics - Ecology
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