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Dendritic Cell Plasticity in Tumor-Conditioned Skin: CD14+ Cells at the Cross-Roads of Immune Activation and Suppression

机译:肿瘤调节性皮肤中的树突状细胞可塑性:免疫激活和抑制的交叉路口的CD14 +细胞。

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摘要

Tumors abuse myeloid plasticity to re-direct dendritic cell (DC) differentiation from T cell stimulatory subsets to immune-suppressive subsets that can interfere with anti-tumor immunity. Lined by a dense network of easily accessible DC the skin is a preferred site for the delivery of DC-targeted vaccines. Various groups have recently been focusing on functional aspects of DC subsets in the skin and how these may be affected by tumor-derived suppressive factors. IL-6, Prostaglandin-E2, and IL-10 were identified as factors in cultures of primary human tumors responsible for the inhibited development and activation of skin DC as well as monocyte-derived DC. IL-10 was found to be uniquely able to convert fully developed DC to immature macrophage-like cells with functional M2 characteristics in a physiologically highly relevant skin explant model in which the phenotypic and functional traits of “crawl-out” DC were studied. Mostly from mouse studies, the JAK2/STAT3 signaling pathway has emerged as a “master switch” of tumor-induced immune suppression. Our lab has additionally identified p38-MAPK as an important signaling element in human DC suppression, and recently validated it as such in ex vivo cultures of single-cell suspensions from melanoma metastases. Through the identification of molecular mechanisms and signaling events that drive myeloid immune suppression in human tumors, more effective DC-targeted cancer vaccines may be designed.
机译:肿瘤利用髓样可塑性将树突状细胞(DC)的分化重新定向,从T细胞刺激亚群转变为可以抑制抗肿瘤免疫力的免疫抑制亚群。皮肤由密集的易于访问的DC网络覆盖,是递送DC靶向疫苗的首选部位。最近,各个小组都致力于研究皮肤中DC子集的功能方面,以及这些子集如何受到肿瘤抑制因子的影响。 IL-6,前列腺素-E2和IL-10被确定为原发性人类肿瘤培养物中负责抑制皮肤DC以及单核细胞衍生DC发育和激活的因素。在生理上高度相关的皮肤外植体模型中,研究了“爬出” DC的表型和功能性状,发现IL-10具有独特的能力,能够将完全发育的DC转化为具有功能性M2特征的未成熟巨噬细胞样细胞。大多数来自小鼠的研究表明,JAK2 / STAT3信号通路已成为肿瘤诱导的免疫抑制的“主要开关”。我们的实验室还确定了p38-MAPK是抑制人类DC的重要信号元件,最近在来自黑色素瘤转移的单细胞悬液的离体培养中也对其进行了验证。通过鉴定在人类肿瘤中驱动骨髓免疫抑制的分子机制和信号事件,可以设计出更有效的靶向DC的癌症疫苗。

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