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首页> 外文期刊>Blood: The Journal of the American Society of Hematology >Remodeling of the malaria parasite and host human red cell by vesicle amplification that induces artemisinin resistance
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Remodeling of the malaria parasite and host human red cell by vesicle amplification that induces artemisinin resistance

机译:通过诱发野生素素抗性的囊泡扩增重塑疟疾寄生虫和宿主人红细胞

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摘要

Artemisinin resistance threatens worldwide malaria control and elimination. Elevation of phosphatidylinositol-3-phosphate (PI3P) can induce resistance in blood stages of Plasmodium falciparum. The parasite unfolded protein response (UPR) has also been implicated as a proteostatic mechanism that may diminish artemisinin-induced toxic proteopathy. How PI3P acts and its connection to the UPR remain unknown, although both are conferred by mutation in P falciparum Kelch13 (K13), the marker of artemisinin resistance. Here we used cryoimmunoelectron microscopy to show that K13 concentrates at PI3P tubules/ vesicles of the parasite's endoplasmic reticulum (ER) in infected red cells. K13 colocalizes and copurifies with the major virulence adhesin PfEMP1. The PfEMP1-K13 proteome is comprehensively enriched in multiple proteostasis systems of protein export, quality control, and folding in the ER and cytoplasm and UPR. Synthetic elevation of PI3P that induces resistance in absence of K13 mutation also yields signatures of proteostasis and clinical resistance. These findings imply a key role for PI3P-vesicle amplification as a mechanism of resistance of infected red cells. As validation, the major resistance mutation K13C580Y quantitatively increased PI3P tubules/vesicles, exporting them throughout the parasite and the red cell. Chemical inhibitors and fluorescence microscopy showed that alterations in PfEMP1 export to the red cell and cytoadherence of infected cells to a host endothelial receptor are features of multiple K13 mutants. Together these data suggest that amplified PI3P vesicles disseminate widespread proteostatic capacity that may neutralize artemisinins toxic proteopathy and implicate a role for the host red cell in artemisinin resistance. The mechanistic insights generated will have an impact on malaria drug development.
机译:青蒿素抵抗威胁全球疟疾控制和消除。磷脂酰肌醇-3-磷酸溶胶(PI3P)的升高可以诱导疟原虫血脂阶段的抗性。寄生虫展开的蛋白质反应(UPR)也涉及一种蛋白质静脉机制,可递减青蒿素诱导的毒性蛋白质。 PI3P如何行动及其与UPR的连接仍然是未知的,尽管两者都是通过P falciparum Kelch13(K13)的突变赋予的突变,即青蒿素抵抗的标志物。在这里,我们使用冷冻免疫光电显微镜显示K13浓缩在受感染的红细胞中寄生虫的内质网(ER)的PI3P小管/囊泡。 K13与主要的毒力粘附粘蛋白PFEMP1共定成和共聚。 PFEMP1-K13蛋白质组在ER和细胞质和upr中综合富集在多种蛋白质出口,质量控制和折叠的蛋白质出口,质量控制和折叠体系中。在不存在K13突变的情况下诱导抗性的PI3P的合成升高也产生蛋白质棘的象征和临床抗性。这些发现意味着PI3P-囊泡放大的关键作用是感染红细胞的抗性机制。作为验证,主要电阻突变K13C580Y定量增加PI3P小管/囊泡,在整个寄生虫和红细胞中出口。化学抑制剂和荧光显微镜表明,PFEMP1导出到红细胞和感染细胞的细胞粘附到宿主内皮受体的变化是多个K13突变体的特征。这些数据共同表明,扩增的PI3P囊泡散发出广泛的突出能力,其可以中和毒素毒性蛋白质,并暗示宿主红细胞在蒿属植物中的作用。产生的机械洞察力会对疟疾药物发育产生影响。

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    Univ Notre Dame Boler Parseghian Ctr Rare &

    Neglected Dis 103 Galvin Life Sci Notre Dame IN;

    Johns Hopkins Univ Bloomberg Sch Publ Hlth Malaria Res Inst Dept Mol Microbiol &

    Immunol;

    Univ Notre Dame Boler Parseghian Ctr Rare &

    Neglected Dis 103 Galvin Life Sci Notre Dame IN;

    Univ Notre Dame Boler Parseghian Ctr Rare &

    Neglected Dis 103 Galvin Life Sci Notre Dame IN;

    Univ Notre Dame Boler Parseghian Ctr Rare &

    Neglected Dis 103 Galvin Life Sci Notre Dame IN;

    Univ Notre Dame Boler Parseghian Ctr Rare &

    Neglected Dis 103 Galvin Life Sci Notre Dame IN;

    Univ Notre Dame Boler Parseghian Ctr Rare &

    Neglected Dis 103 Galvin Life Sci Notre Dame IN;

    Wistar Inst Anat &

    Biol Wistar Prote &

    Metabol Facil Ctr Syst &

    Computat Biol 3601 Spruce St;

    Wistar Inst Anat &

    Biol Wistar Prote &

    Metabol Facil Ctr Syst &

    Computat Biol 3601 Spruce St;

    Univ Notre Dame Boler Parseghian Ctr Rare &

    Neglected Dis 103 Galvin Life Sci Notre Dame IN;

    New York Blood Ctr Red Cell Physiol Lab New York NY 10021 USA;

    Univ Notre Dame Boler Parseghian Ctr Rare &

    Neglected Dis 103 Galvin Life Sci Notre Dame IN;

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  • 正文语种 eng
  • 中图分类 血液及淋巴系疾病 ;
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