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炎性小体的激活和被微颗粒刺激的树突状细胞向引流淋巴结的迁移增强。

Activation of the inflammasome and enhanced migration of microparticle-stimulated dendritic cells to the draining lymph node.

机构信息

Department of Nanomedicine and §Department of Systems Medicine and Bioengineering, The Methodist Hospital Research Institute , 6670 Bertner Avenue, Houston, Texas 77030, United States.

出版信息

Mol Pharm. 2012 Jul 2;9(7):2049-62. doi: 10.1021/mp3001292. Epub 2012 Jun 8.

Abstract

Porous silicon microparticles presenting pathogen-associated molecular patterns mimic pathogens, enhancing internalization of the microparticles and activation of antigen presenting dendritic cells. We demonstrate abundant uptake of microparticles bound by the TLR-4 ligands LPS and MPL by murine bone marrow-derived dendritic cells (BMDC). Labeled microparticles induce concentration-dependent production of IL-1β, with inhibition by the caspase inhibitor Z-VAD-FMK supporting activation of the NLRP3-dependent inflammasome. Inoculation of BALB/c mice with ligand-bound microparticles induces a significant increase in circulating levels of IL-1β, TNF-α, and IL-6. Stimulation of BMDC with ligand-bound microparticles increases surface expression of costimulatory and MHC molecules, and enhances migration of BMDC to the draining lymph node. LPS-microparticles stimulate in vivo C57BL/6 BMDC and OT-1 transgenic T cell interactions in the presence of OVA SIINFEKL peptide in lymph nodes, with intact nodes imaged using two-photon microscopy. Formation of in vivo and in vitro immunological synapses between BMDC, loaded with OVA peptide and LPS-microparticles, and OT-1 T cells are presented, as well as elevated intracellular interferon gamma levels in CD8(+) T cells stimulated by BMDC carrying peptide-loaded microparticles. In short, ligand-bound microparticles enhance (1) phagocytosis of microparticles; (2) BMDC inflammasome activation and upregulation of costimulatory and MHC molecules; (3) cellular migration of BMDC to lymphatic tissue; and (4) cellular interactions leading to T cell activation in the presence of antigen.

摘要

多孔硅微粒呈现病原体相关分子模式,模拟病原体,增强微粒的内化和抗原呈递树突状细胞的激活。我们证明了 TLR-4 配体 LPS 和 MPL 结合的微粒被小鼠骨髓来源的树突状细胞 (BMDC) 大量摄取。标记的微粒诱导 IL-1β 的浓度依赖性产生,半胱天冬酶抑制剂 Z-VAD-FMK 的抑制作用支持 NLRP3 依赖性炎性体的激活。用配体结合的微粒接种 BALB/c 小鼠可诱导循环中 IL-1β、TNF-α 和 IL-6 的水平显著增加。用配体结合的微粒刺激 BMDC 可增加共刺激和 MHC 分子的表面表达,并增强 BMDC 向引流淋巴结的迁移。在淋巴结中存在 OVA SIINFEKL 肽的情况下,LPS 微粒刺激 C57BL/6 BMDC 和 OT-1 转基因 T 细胞之间的体内相互作用,并用双光子显微镜对完整的淋巴结进行成像。展示了 BMDC 与加载 OVA 肽和 LPS 微粒的 OT-1 T 细胞之间体内和体外免疫突触的形成,以及刺激携带肽加载微粒的 BMDC 的 CD8(+)T 细胞中细胞内干扰素 γ水平升高。总之,配体结合的微粒增强了:(1)微粒的吞噬作用;(2)BMDC 炎性体的激活和共刺激及 MHC 分子的上调;(3)BMDC 向淋巴组织的细胞迁移;(4)在存在抗原的情况下导致 T 细胞激活的细胞相互作用。

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