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首页> 外文期刊>MBio >Hypoxia Promotes Immune Evasion by Triggering β-Glucan Masking on the Candida albicans Cell Surface via Mitochondrial and cAMP-Protein Kinase A Signaling
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Hypoxia Promotes Immune Evasion by Triggering β-Glucan Masking on the Candida albicans Cell Surface via Mitochondrial and cAMP-Protein Kinase A Signaling

机译:低氧通过线粒体和cAMP-蛋白激酶A信号传导触发

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摘要

Animal, plant, and fungal cells occupy environments that impose changes in oxygen tension. Consequently, many species have evolved mechanisms that permit robust adaptation to these changes. The fungal pathogen Candida albicans can colonize hypoxic (low oxygen) niches in its human host, such as the lower gastrointestinal tract and inflamed tissues, but to colonize its host, the fungus must also evade local immune defenses. We reveal, for the first time, a defined link between hypoxic adaptation and immune evasion in C. albicans . As this pathogen adapts to hypoxia, it undergoes changes in cell wall structure that include masking of β-glucan at its cell surface, and it becomes better able to evade phagocytosis by innate immune cells. We also define the signaling mechanisms that mediate hypoxia-induced β-glucan masking, showing that they are dependent on mitochondrial signaling and the cAMP-protein kinase pathway. Therefore, hypoxia appears to trigger immune evasion in this fungal pathogen. ABSTRACT Organisms must adapt to changes in oxygen tension if they are to exploit the energetic benefits of reducing oxygen while minimizing the potentially damaging effects of oxidation. Consequently, organisms in all eukaryotic kingdoms display robust adaptation to hypoxia (low oxygen levels). This is particularly important for fungal pathogens that colonize hypoxic niches in the host. We show that adaptation to hypoxia in the major fungal pathogen of humans Candida albicans includes changes in cell wall structure and reduced exposure, at the cell surface, of β-glucan, a key pathogen-associated molecular pattern (PAMP). This leads to reduced phagocytosis by murine bone marrow-derived macrophages and decreased production of IL-10, RANTES, and TNF-α by peripheral blood mononuclear cells, suggesting that hypoxia-induced β-glucan masking has a significant effect upon C. albicans -host interactions. We show that hypoxia-induced β-glucan masking is dependent upon both mitochondrial and cAMP-protein kinase A (PKA) signaling. The decrease in β-glucan exposure is blocked by mutations that affect mitochondrial functionality ( goa1 Δ and upc2 Δ) or that decrease production of hydrogen peroxide in the inner membrane space ( sod1 Δ). Furthermore, β-glucan masking is enhanced by mutations that elevate mitochondrial reactive oxygen species ( aox1 Δ). The β-glucan masking defects displayed by goa1 Δ and upc2 Δ cells are suppressed by exogenous dibutyryl-cAMP. Also, mutations that inactivate cAMP synthesis ( cyr1 Δ) or PKA ( tpk1 Δ tpk2 Δ) block the masking phenotype. Our data suggest that C. albicans responds to hypoxic niches by inducing β-glucan masking via a mitochondrial cAMP-PKA signaling pathway, thereby modulating local immune responses and promoting fungal colonization.
机译:动物,植物和真菌细胞占据的环境会改变氧气的张力。因此,许多物种已经进化出可以对这些变化进行稳健适应的机制。真菌病原体白色念珠菌可以在其人类宿主(例如下消化道和发炎的组织)中定居缺氧(低氧)壁ni,但是要在其宿主中定殖,真菌还必须规避局部免疫防御。我们首次揭示了白色念珠菌的低氧适应和免疫逃避之间的明确联系。当这种病原体适应缺氧时,它会经历细胞壁结构的变化,包括在其细胞表面掩盖β-葡聚糖,并且它变得能够更好地逃避先天免疫细胞的吞噬作用。我们还定义了介导缺氧诱导的β-葡聚糖掩蔽的信号传导机制,表明它们依赖于线粒体信号传导和cAMP-蛋白激酶途径。因此,低氧似乎触发了这种真菌病原体的免疫逃逸。摘要如果生物体要利用减少氧气的有益益处,同时最大程度地减少氧化的潜在破坏作用,则必须适应氧张力的变化。因此,所有真核生物界中的生物体都表现出对缺氧(低氧水平)的强大适应能力。这对于在宿主体内定居缺氧生态位的真菌病原体尤其重要。我们表明,适应人类缺氧念珠菌主要真菌病原体的缺氧包括细胞壁结构的变化和β-葡聚糖(一种关键的病原体相关分子模式(PAMP))在细胞表面的暴露减​​少。这导致鼠骨髓来源的巨噬细胞吞噬作用降低,外周血单核细胞减少IL-10,RANTES和TNF-α的产生,这表明低氧诱导的β-葡聚糖掩蔽对白色念珠菌具有显著作用-主机互动。我们表明缺氧诱导的β-葡聚糖掩盖依赖于线粒体和cAMP-蛋白激酶A(PKA)信号。 β-葡聚糖暴露的减少被影响线粒体功能的突变(goa1Δ和upc2Δ)或减少内膜空间中过氧化氢的产生(sod1Δ)阻止。此外,β-葡聚糖的掩蔽通过提高线粒体活性氧(aox1Δ)的突变而增强。 goa1Δ和upc2Δ细胞显示的β-葡聚糖掩盖缺陷被外源性二丁酰cAMP抑制。同样,使cAMP合成(cyr1Δ)或PKA(tpk1Δtpk2Δ)失活的突变也会阻断掩蔽表型。我们的数据表明,白色念珠菌通过线粒体cAMP-PKA信号传导途径诱导β-葡聚糖掩蔽来应对低氧位,从而调节局部免疫反应并促进真菌定植。

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