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Notch 信号促进体外生成交叉呈递的经典树突状细胞。

Notch Signaling Facilitates In Vitro Generation of Cross-Presenting Classical Dendritic Cells.

机构信息

Department of Pathology, New York University School of Medicine, New York, NY 10016, USA; Graduate Program in Genetics and Development, Columbia University Medical Center, New York, NY 10032, USA.

Institute of Cellular Medicine, Newcastle University, Newcastle upon Tyne NE2 4HH, UK.

出版信息

Cell Rep. 2018 Jun 19;23(12):3658-3672.e6. doi: 10.1016/j.celrep.2018.05.068.

Abstract

The IRF8-dependent subset of classical dendritic cells (cDCs), termed cDC1, is important for cross-priming cytotoxic T cell responses against pathogens and tumors. Culture of hematopoietic progenitors with DC growth factor FLT3 ligand (FLT3L) yields very few cDC1s (in humans) or only immature "cDC1-like" cells (in the mouse). We report that OP9 stromal cells expressing the Notch ligand Delta-like 1 (OP9-DL1) optimize FLT3L-driven development of cDC1s from murine immortalized progenitors and primary bone marrow cells. Co-culture with OP9-DL1 induced IRF8-dependent cDC1s with a phenotype (CD103 Dec205 CD8α) and expression profile resembling primary splenic cDC1s. OP9-DL1-induced cDC1s showed preferential migration toward CCR7 ligands in vitro and superior T cell cross-priming and antitumor vaccination in vivo. Co-culture with OP9-DL1 also greatly increased the yield of IRF8-dependent CD141 cDC1s from human bone marrow progenitors cultured with FLT3L. Thus, Notch signaling optimizes cDC generation in vitro and yields authentic cDC1s for functional studies and translational applications.

摘要

IRF8 依赖性经典树突状细胞 (cDC) 亚群,称为 cDC1,对于针对病原体和肿瘤的细胞毒性 T 细胞应答的交叉呈递至关重要。用树突状细胞生长因子 FLT3 配体 (FLT3L) 培养造血祖细胞可产生很少的 cDC1(在人类中)或仅不成熟的“cDC1 样”细胞(在小鼠中)。我们报告称,表达 Notch 配体 Delta-like 1 (OP9-DL1) 的 OP9 基质细胞可优化 FLT3L 驱动的来自小鼠永生化祖细胞和原代骨髓细胞的 cDC1 发育。与 OP9-DL1 共培养诱导出具有表型(CD103 Dec205 CD8α)和表达谱类似于原代脾脏 cDC1 的 IRF8 依赖性 cDC1。OP9-DL1 诱导的 cDC1 在体外优先向 CCR7 配体迁移,并在体内增强 T 细胞交叉呈递和抗肿瘤疫苗接种。与 OP9-DL1 共培养还大大增加了用 FLT3L 培养的人类骨髓祖细胞中 IRF8 依赖性 CD141 cDC1 的产量。因此,Notch 信号在体外优化 cDC 的产生,并产生用于功能研究和转化应用的真实 cDC1。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96f5/6240785/36ca1859974c/fx1.jpg

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