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Blocking synthesis of the Variant Surface Glycoprotein Coat in Trypanosoma brucei leads to an Increase in macrophage phagocytosis due to reduced clearance of surface coat antibodies

机译:在布氏锥虫中阻断变异表面糖蛋白外壳的合成导致巨噬细胞吞噬作用增加,因为表面外壳抗体清除减少

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摘要

The extracellular bloodstream form parasite Trypanosoma brucei is supremely adapted to escape the host innate and adaptive immune system. Evasion is mediated through an antigenically variable Variant Surface Glycoprotein (VSG) coat, which is recycled at extraordinarily high rates. Blocking VSG synthesis triggers a precytokinesis arrest where stalled cells persist for days in vitro with superficially intact VSG coats, but are rapidly cleared within hours in mice. We therefore investigated the role of VSG synthesis in trypanosome phagocytosis by activated mouse macrophages. T. brucei normally effectively evades macrophages, and induction of VSG RNAi resulted in little change in phagocytosis of the arrested cells. Halting VSG synthesis resulted in stalled cells which swam directionally rather than tumbling, with a significant increase in swim velocity. This is possibly a consequence of increased rigidity of the cells due to a restricted surface coat in the absence of VSG synthesis. However if VSG RNAi was induced in the presence of anti-VSG221 antibodies, phagocytosis increased significantly. Blocking VSG synthesis resulted in reduced clearance of anti-VSG antibodies from the trypanosome surface, possibly as a consequence of the changed motility. This was particularly marked in cells in the G2/ M cell cycle stage, where the half-life of anti-VSG antibody increased from 39.3 ± 4.2 seconds to 99.2 ± 15.9 seconds after induction of VSG RNAi. The rates of internalisation of bulk surface VSG, or endocytic markers like transferrin, tomato lectin or dextran were not significantly affected by the VSG synthesis block. Efficient elimination of anti-VSG-antibody complexes from the trypanosome cell surface is therefore essential for trypanosome evasion of macrophages. These experiments highlight the essentiality of high rates of VSG recycling for the rapid removal of host opsonins from the parasite surface, and identify this process as a key parasite virulence factor during a chronic infection.
机译:来自寄生虫布鲁氏锥虫的细胞外血流极适合逃避宿主的先天和适应性免疫系统。逃避是通过抗原可变的变异表面糖蛋白(VSG)涂层介导的,该涂层以极高的速率回收。阻断VSG的合成会触发胞质分裂前停滞,其中停滞的细胞在体外以表面完整的VSG涂层持续存在数天,但在数小时内在小鼠中迅速清除。因此,我们调查了激活的小鼠巨噬细胞在锥虫吞噬作用中VSG合成的作用。 T. brucei通常有效地逃避巨噬细胞,并且VSG RNAi的诱导导致被捕细胞的吞噬作用几乎没有变化。停止VSG合成会导致停滞的细胞定向游泳而不是翻滚,游泳速度显着增加。这可能是由于在缺乏VSG合成的情况下由于表面涂层受限而导致电池刚度增加的结果。但是,如果在存在抗VSG221抗体的情况下诱导VSG RNAi,则吞噬作用会显着增加。阻断VSG合成可能会导致抗VSG抗体从锥虫表面清除的可能性降低。这在G2 / M细胞周期阶段的细胞中尤为明显,在该阶段,抗VSG抗体的半衰期从诱导VSG RNAi后的39.3±4.2秒增加到99.2±15.9秒。 VSG合成嵌段对体表VSG或内吞性标志物如转铁蛋白,番茄凝集素或葡聚糖的内在化速率没有显着影响。因此,从锥虫细胞表面有效消除抗VSG抗体复合物对于锥虫逃避巨噬细胞至关重要。这些实验凸显了高VSG回收率对于从寄生虫表面快速去除宿主调理素的重要性,并将这一过程确定为慢性感染期间的关键寄生物毒力因子。

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