基于 DNA 超分子水凝胶的保护性 NK 细胞储库用于增强三阴性乳腺癌治疗
Protective NK Cell Reservoir Based on DNA Supramolecular Hydrogel for Enhanced Triple-Negative Breast Cancer Therapy.
过继性自然杀伤(NK)细胞疗法是治疗三阴性乳腺癌的一种有前景的策略,但其疗效往往受到瘤内持久性差以及在免疫抑制性肿瘤微环境中功能耗竭的限制。
英文原题:Bone marrow mesenchymal stem cell-derived TSG-6 regulates microglial pyroptosis and alleviates bone cancer pain by inhibiting the NLRP3 inflammasome.
体内和体外实验显示,骨髓间充质干细胞通过分泌 TSG-6 抑制 NLRP3 信号通路,以调控小胶质细胞的焦亡,从而缓解骨癌痛。
背景:骨癌痛的中枢敏化机制与神经炎症、胶质细胞活化及酸性环境相关,其中NLRP3炎症小体参与骨癌痛发生。研究表明,鞘内注射骨髓间充质干细胞(BMSC)可通过抑制小胶质细胞活化缓解骨癌痛。炎症刺激下,BMSC会增加肿瘤坏死因子α刺激基因6(TSG-6)的产生;该因子调节细胞间信号和炎症反应,但BMSC分泌的TSG-6能否抑制NLRP3介导的小胶质细胞焦亡、缓解骨癌痛,尚不清楚。因此,本研究通过体内外实验评估BMSC释放的TSG-6对骨癌痛(BCP)的镇痛作用并探索潜在机制。 方法:体内实验将Walker 256乳腺癌细胞注入大鼠左侧胫骨骨髓腔,建立BCP模型。术后第7天和第14天鞘内注射BMSC或外源性重组TSG-6,并在给药后2、4、8、24和48小时观察镇痛效果。采集脊髓组织,通过Western blot和免疫荧光染色评估NLRP3信号通路活化。体外实验中,BV2小胶质细胞与BMSC或重组TSG-6共培养,并采用相同检测方法评估NLRP3通路相关蛋白变化。将转染靶向TSG-6的shRNA的BMSC用于体内鞘内注射或体外小胶质细胞共培养,以考察TSG-6是否参与BMSC抑制小胶质细胞焦亡及炎症反应、从而缓解BCP。 结果:移植BMSC或给予外源重组TSG-6均显著改善BCP相关行为,抑制大鼠脊髓背角小胶质细胞NLRP3信号通路关键蛋白表达,并减少炎症因子释放。实验显示,BMSC与BV2小胶质细胞共培养或以重组TSG-6处理BV2细胞,均可抑制LPS诱导的NLRP3活化并调节小胶质细胞焦亡。以靶向TSG-6的shRNA转染BMSC,显著削弱其抑制小胶质细胞焦亡的作用。 结论:体内外实验表明,骨髓间充质干细胞通过分泌TSG-6抑制NLRP3信号通路并调节小胶质细胞焦亡,从而缓解骨癌痛。
BACKGROUND: The central sensitization mechanism of bone cancer pain is related to neuroinflammation, glial cell activation, and an acidic environment. Among them, the NLRP3 inflammasome is involved in the occurrence of bone cancer pain. Studies have shown that an intrathecal injection of bone marrow mesenchymal stem cells (BMSCs) alleviates bone cancer pain by inhibiting microglial cell activation. Upon inflammatory stimulation, BMSCs produce increased levels of Tumor necrosis factor- -stimulated gene 6 (TSG-6), which regulates intercellular signaling and inflammatory responses; however, whether the secretion of TSG-6 from BMSCs inhibits NLRP3-mediated microglial pyroptosis to alleviate bone cancer pain is unknown. Therefore, this study aimed to evaluate the analgesic effect of TSG-6 released by BMSCs on bone cancer pain (BCP) and explore its potential mechanisms through in vitro and in vivo experiments. METHODS: In vivo, Walker 256 breast cancer cells were injected into the bone marrow cavity of the left tibia of rats to establish a BCP model. On days 7 and 14 after surgery, intrathecal injections of BMSCs or exogenous recombinant TSG-6 were administered, and the analgesic effects were observed at 2, 4, 8, 24, and 48 h after administration. Spinal cord tissues were collected for Western blotting and immunofluorescence staining to assess the activation of the NLRP3 signaling pathway. In vitro, BV2 microglia were cocultured with BMSCs or recombinant TSG-6, and the same detection methods were performed to evaluate changes in the levels of proteins involved in the NLRP3 signaling pathway. BMSCs transfected with TSG-6-targeting shRNA were intrathecally injected in vivo or cocultured with microglia in vitro to investigate whether TSG-6 is involved in the inhibition of microglial pyroptosis and the inflammatory response mediated by BMSCs to alleviate BCP. RESULTS: BMSC transplantation or treatment with exogenous recombinant TSG-6 significantly improved BCP-related behaviors, inhibited the expression of key proteins in the NLRP3 signaling pathway in spinal dorsal horn microglia in rats, and reduced the release of inflammatory factors. Experiments revealed that coculturing BMSCs with BV2 microglia or treating BV2 cells with exogenous recombinant TSG-6 inhibited the LPS-induced activation of NLRP3 in BV2 cells and regulated microglial pyroptosis. Transfection of BMSCs with TSG-6-targeting shRNA significantly weakened the inhibitory effect on microglial pyroptosis. CONCLUSION: In vivo and in vitro experiments revealed that bone marrow mesenchymal stem cells inhibit the NLRP3 signaling pathway to regulate the pyroptosis of microglia through the secretion of TSG-6, thereby alleviating bone cancer pain.
MEMBER ACCOUNT
登录成功会直接打开下一页。