The immune regulatory effects of tetrahedral framework nucleic acid on human T cells via the mitogen‐activated protein kinase pathway

免疫系统 分泌物 细胞生物学 流式细胞术 获得性免疫系统 免疫学 T细胞 生物 MAPK/ERK通路 激酶 化学 生物化学
作者
Xuyang Liu,Zhiyuan Yu,Ya Chun Wu,Sirong Shi,Jie Yao,Xiaorong Feng,Dingke Wen,Ziyan Shi,Zhengyang Zhao,Yanjing Li,Hongyu Zhou,Chao You,Yunfeng Lin,Mu Yang
出处
期刊:Cell Proliferation [Wiley]
卷期号:54 (8): e13084-e13084 被引量:11
标识
DOI:10.1111/cpr.13084
摘要

OBJECTIVES: Autoimmune diseases are a heterogeneous group of diseases which lose the immunological tolerance to self-antigens. It is well recognized that irregularly provoked T cells participate in the pathological immune responses. As a novel nanomaterial with promising applications, tetrahedral framework nucleic acid (TFNA) nanostructure was found to have immune regulatory effects on T cells in this study. MATERIALS AND METHODS: To verify the successful fabrication of TFNA, the morphology of TFNA was observed by atomic force microscopy (AFM) and dynamic light scattering. The regulatory effect of TFNA was evaluated by flow cytometry after cocultured with CD3+ T cells isolated from healthy donors. Moreover, the associated signaling pathways were investigated. Finally, we verified our results on the T cells from patients with neuromyelitis optica spectrum disorder (NMOSD), which is a typical autoimmune disease induced by T cells. RESULTS: We revealed the alternative regulatory functions of TFNA in human primary T cells with steady status via the JNK signaling pathway. Moreover, by inhibiting both JNK and ERK phosphorylation, TFNA exhibited significant suppressive effects on IFNγ secretion from provoking T cells without affecting TNF secretion. Similar immune regulatory effects of TFNA were also observed in autoreactive T cells from patients with NMOSD. CONCLUSIONS: Overall, our results revealed a potential application of TFNA in regulating the adaptive immune system, as well as shed a light on the treatment of T cell-mediated autoimmune diseases.
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