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脂多糖影响小鼠 CD103 DC 的分化,改变肺部 DC 群体平衡。

Lipopolysaccharide impacts murine CD103 DC differentiation, altering the lung DC population balance.

机构信息

Centre de Recherche, Institut Universitaire de Cardiologie et de Pneumologie de Québec, Université Laval, Québec, Canada.

出版信息

Eur J Immunol. 2019 Apr;49(4):638-652. doi: 10.1002/eji.201847910. Epub 2019 Feb 12.

DOI:10.1002/eji.201847910
PMID:30707446
Abstract

Conventional DCs are a heterogeneous population that bridge the innate and adaptive immune systems. The lung DC population comprises CD103 XCR1 DC1s and CD11b DC2s; their various combined functions cover the whole spectrum of immune responses needed to maintain homeostasis. Here, we report that in vivo exposure to LPS leads to profound alterations in the proportions of CD103 XCR1 DCs in the lung. Using ex vivo LPS and TNF stimulations of murine lung and spleen-isolated DCs, we show that this is partly due to a direct downregulation of the GM-CSF-induced DC CD103 expression. Furthermore, we demonstrate that LPS-induced systemic inflammation alters the transcriptional signature of DC precursors toward a lower capacity to differentiate into XCR1 DCs. Also, we report that TNF prevents the capacity of pre-DCs to express CD103 upon maturation. Overall, our results indicate that exposure to LPS directly impacts the capacity of pre-DCs to differentiate into XCR1 DCs, in addition to lowering their capacity to express CD103. This leads to decreased proportions of CD103 XCR1 DCs in the lung, favoring CD11b DCs, which likely plays a role in the break in homeostasis following LPS exposure, and in determining the nature of the immune response to LPS.

摘要

传统的树突状细胞(DCs)是连接先天免疫和适应性免疫系统的异质性群体。肺部的 DC 群体包括 CD103+XCR1+DC1 和 CD11b+DC2;它们的各种组合功能涵盖了维持体内平衡所需的所有免疫反应。在这里,我们报告称,体内暴露于 LPS 会导致肺部 CD103+XCR1+DC 比例发生深刻变化。通过对小鼠肺部和脾脏分离的 DC 进行离体 LPS 和 TNF 刺激,我们表明这部分是由于 GM-CSF 诱导的 DC CD103 表达的直接下调所致。此外,我们证明 LPS 诱导的全身炎症会改变 DC 前体的转录特征,使其分化为 XCR1 DC 的能力降低。此外,我们还报告称,TNF 可阻止前 DC 在成熟时表达 CD103 的能力。总的来说,我们的研究结果表明,暴露于 LPS 会直接影响前 DC 分化为 XCR1 DC 的能力,同时降低其表达 CD103 的能力。这会导致肺部 CD103+XCR1+DC 的比例降低,有利于 CD11b+DC,这可能在 LPS 暴露后打破体内平衡,并决定对 LPS 的免疫反应的性质方面发挥作用。

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