分泌抗 EpCAM 双特异性 T 细胞衔接器的 CAR T 细胞克服靶向上皮来源癌时的肿瘤异质性
CAR T cells secreting anti-EpCAM bispecific T cell engagers overcome tumor heterogeneity in targeting epithelial-originated carcinomas.
嵌合抗原受体(CAR)T细胞疗法治疗实体瘤的成功有限,部分原因是肿瘤异质性和抗原逃逸。
英文原题:Dual-functional cationic hydrogel engineered for simultaneous prevention of postoperative tumor recurrence and wound infection.
术后复发和感染仍然是肿瘤切除后的主要挑战。
肿瘤切除术后复发和感染仍然是主要挑战。为解决这些问题,我们开发了一种多功能纳米复合水凝胶,命名为Gel@CAR-M@Mn@ELE。它通过将CAR-M@Mn@ELE和免疫调节/抗菌铁皮石斛多糖(DOP)封装在季铵盐修饰的甲基丙烯酰化明胶水凝胶基质中构建而成。CAR-M@Mn@ELE不仅将榄香烯(ELE)负载到多孔Mn纳米酶(Mn NPs)中,还包被了靶向EpCAM的嵌合抗原受体工程化293T细胞膜(CAR-M)。值得注意的是,通过多重修饰,Mn NPs的催化活性得以保留。体外研究表明,CAR-M@Mn@ELE选择性靶向并杀伤4T1癌细胞(EpCAM+),而该水凝胶对大肠杆菌(E. coli)和金黄色葡萄球菌(S. aureus)表现出强效抗菌活性。使用肿瘤切除术后小鼠模型进行的体内评价证实,Gel@CAR-M@Mn@ELE显著抑制了肿瘤复发并延长了生存期。水凝胶内生物活性成分的组合调节了免疫抑制性肿瘤微环境,从而增强了其免疫治疗疗效。此外,在细菌伤口感染模型中,该水凝胶有效抑制了细菌生长并加速了伤口愈合。Gel@CAR-M@Mn@ELE提供了一种新颖且有前景的策略,并有实验证据支持,可同时应对术后肿瘤复发和伤口感染这两个关键挑战。
Postoperative recurrence and infection continue to pose major challenges after tumor resection. To address these, we developed a multifunctional nanocomposite hydrogel, designated as Gel@CAR-M@Mn@ELE. It is constructed by encapsulating CAR-M@Mn@ELE and immunomodulatory/antibacterial Dendrobium officinale polysaccharide (DOP) within a quaternary ammonium-modified gelatin methacryloyl hydrogel matrix. The CAR-M@Mn@ELE not only loads elemene (ELE) into porous Mn nanozymes (Mn NPs) but is also coated with EpCAM-targeting chimeric antigen receptor-engineered 293T cell membranes (CAR-M). Notably, through multiple modifications, the catalytic activity of Mn NPs has been preserved. In vitro studies demonstrated that CAR-M@Mn@ELE selectively targeted and killed 4T1 cancer cells (EpCAM + ), while the hydrogel exhibited potent antibacterial activity against Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus). In vivo evaluation using a post-tumor-resection mouse model confirmed that Gel@CAR-M@Mn@ELE significantly suppressed tumor recurrence and prolonged survival. The combination of bioactive components within the hydrogel modulated the immunosuppressive tumor microenvironment, thereby enhancing its immunotherapeutic efficacy. Additionally, in a bacterial wound infection model, the hydrogel effectively inhibited bacterial growth and accelerated wound healing. The Gel@CAR-M@Mn@ELE offers a novel and promising strategy, supported by experimental evidence, for concurrently addressing the critical post-surgical challenges of tumor recurrence and wound infection.
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