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首页> 外文期刊>The Journal of Experomental Medicine >Degradation of Transcription Factor Rfx5 during the Inhibition of Both Constitutive and Interferon γ–Inducible Major Histocompatibility Complex Class I Expression in Chlamydia-Infected Cells
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Degradation of Transcription Factor Rfx5 during the Inhibition of Both Constitutive and Interferon γ–Inducible Major Histocompatibility Complex Class I Expression in Chlamydia-Infected Cells

机译:衣原体感染细胞中本构和干扰素γ诱导的主要组织相容性复合体I类表达的抑制过程中转录因子Rfx5的降解。

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We have previously shown that the obligate intracellular pathogen chlamydia can suppress interferon (IFN)-γ–inducible major histocompatibility complex (MHC) class II expression in infected cells by degrading upstream stimulation factor (USF)-1. We now report that chlamydia can also inhibit both constitutive and IFN-γ–inducible MHC class I expression in the infected cells. The inhibition of MHC class I molecule expression correlates well with degradation of RFX5, an essential downstream transcription factor required for both the constitutive and IFN-γ–inducible MHC class I expression. We further demonstrate that a lactacystin-sensitive proteasome-like activity identified in chlamydia-infected cell cytosolic fraction can degrade both USF-1 and RFX5. This proteasome-like activity is dependent on chlamydial but not host protein synthesis. Host preexisting proteasomes may not be required for the unique proteasome-like activity. These observations suggest that chlamydia-secreted factors may directly participate in the proteasome-like activity. Efforts to identify the chlamydial factors are underway. These findings provide novel information on the molecular mechanisms of chlamydial evasion of host immune recognition.
机译:先前我们已经表明,专一的细胞内病原体衣原体可以通过降解上游刺激因子(USF)-1抑制感染细胞中干扰素(IFN)-γ诱导的主要组织相容性复合体(MHC)II类表达。我们现在报道,衣原体还可以抑制感染细胞中本构性和IFN-γ诱导的MHC I类表达。 MHC I类分子表达的抑制与RFX5的降解密切相关,RFX5是组成型和IFN-γ诱导性I类MHC表达所需的重要下游转录因子。我们进一步证明在衣原体感染的细胞胞质级分中发现的对乳酸菌敏感的蛋白酶体样活性可以降解USF-1和RFX5。这种蛋白酶体活性取决于衣原体,但不依赖宿主蛋白的合成。独特的蛋白酶体样活性可能不需要宿主预先存在的蛋白酶体。这些观察结果表明衣原体分泌因子可直接参与蛋白酶体样活性。正在努力确定衣原体因子。这些发现为宿主免疫识别衣原体逃逸的分子机制提供了新的信息。

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