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CpG 和聚肌苷酸:胞苷酸联合刺激单核细胞导致独特的信号激活,而单独的配体则观察不到这种激活。

Combined CpG and poly I:C stimulation of monocytes results in unique signaling activation not observed with the individual ligands.

机构信息

Southern Plains Agricultural Research Center, Agricultural Research Service, United States Department of Agriculture, 2881 F&B Road, College Station, TX 77845, USA.

出版信息

Cell Signal. 2013 Nov;25(11):2246-54. doi: 10.1016/j.cellsig.2013.07.014. Epub 2013 Jul 19.

Abstract

Toll-like receptors (TLRs) bind to components of microbes, activate cellular signal transduction pathways and stimulate innate immune responses. Previously, we have shown in chicken monocytes that the combination of CpG, the ligand for TLR21 (the chicken equivalent of TLR9), and poly I:C, the ligand for TLR3, results in a synergistic immune response. In order to further characterize this synergy, kinome analysis was performed on chicken monocytes stimulated with either unmethylated CpG oligodeoxynucleotides (CpG) and polyinosinic-polycytidylic acid (poly I:C) individually or in combination for either 1h or 4h. The analysis was carried out using chicken species-specific peptide arrays to study the kinase activity induced by the two ligands. The arrays are comprised of kinase target sequences immobilized on an array surface. Active kinases phosphorylate their respective target sequences, and these phosphorylated peptides are then visualized and quantified. A significant number of peptides exhibited altered phosphorylation when CpG and poly I:C were given together, that was not observed when either CpG or poly I:C was given separately. The unique, synergistic TLR agonist affected peptides represent protein members of signaling pathways including calcium signaling pathway, cytokine-cytokine receptor interaction and Endocytosis at the 1h time point. At the 4h time point, TLR agonist synergy influenced pathways included Adipocytokine signaling pathway, cell cycle, calcium signaling pathway, NOD-like receptor signaling pathway and RIG-I-like receptor signaling pathway. Using nitric oxide (NO) production as the readout, TLR ligand synergy was also investigated using signaling protein inhibitors. A number of inhibitors were able to inhibit NO response in cells given CpG alone but not in cells given both CpG and poly I:C, as poly I:C alone does not elicit a significant NO response. The unique peptide phosphorylation induced by the combination of CpG and poly I:C and the unique signaling protein requirements for synergy determined by inhibitor assays both show that synergistic signaling is not a simple addition of TLR pathways. A set of secondary pathways activated by the ligand combination are proposed, leading to the activation of cAMP response element-binding protein (CREB), nuclear factor κB (NFκB) and ultimately of inducible nitric oxide synthase (iNOS). Since many microbes can stimulate more than one TLR, this synergistic influence on cellular signaling may be an important consideration for the study of immune response and what we consider to be the canonical TLR signaling pathways.

摘要

Toll 样受体 (TLR) 结合微生物的成分,激活细胞信号转导途径并刺激固有免疫反应。之前,我们已经在鸡单核细胞中表明,CpG(TLR21 的配体,相当于 TLR9 的鸡)与聚肌苷酸-聚胞苷酸(poly I:C)的组合会产生协同免疫反应。为了进一步描述这种协同作用,我们对单独用未甲基化 CpG 寡脱氧核苷酸 (CpG) 和聚肌苷酸-聚胞苷酸 (poly I:C) 刺激的鸡单核细胞进行了激酶组分析,或联合使用这两种配体 1 小时或 4 小时。该分析使用鸡种特异性肽阵列进行,以研究两种配体诱导的激酶活性。该阵列由固定在阵列表面的激酶靶序列组成。活性激酶磷酸化各自的靶序列,然后对这些磷酸化肽进行可视化和定量。当 CpG 和 poly I:C 一起使用时,许多肽表现出改变的磷酸化,而单独使用 CpG 或 poly I:C 时则没有观察到。独特的协同 TLR 激动剂影响的肽代表信号通路的蛋白质成员,包括钙信号通路、细胞因子-细胞因子受体相互作用和内吞作用,在 1 小时时间点。在 4 小时时间点,TLR 激动剂协同作用影响的途径包括脂肪细胞因子信号通路、细胞周期、钙信号通路、NOD 样受体信号通路和 RIG-I 样受体信号通路。使用一氧化氮 (NO) 产生作为读出,还使用信号蛋白抑制剂研究 TLR 配体协同作用。许多抑制剂能够抑制单独给予 CpG 的细胞中的 NO 反应,但不能抑制同时给予 CpG 和 poly I:C 的细胞中的 NO 反应,因为 poly I:C 本身不会引起明显的 NO 反应。CpG 和 poly I:C 组合诱导的独特肽磷酸化以及抑制剂测定确定的协同信号所需的独特信号蛋白都表明协同信号不是 TLR 途径的简单相加。提出了一组由配体组合激活的次级途径,导致环磷酸腺苷反应元件结合蛋白 (CREB)、核因子 κB (NFκB) 和诱导型一氧化氮合酶 (iNOS) 的激活。由于许多微生物可以刺激不止一种 TLR,因此这种对细胞信号的协同影响可能是研究免疫反应和我们认为的经典 TLR 信号通路的重要考虑因素。

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