工程化益生菌用于肿瘤靶向联合化学免疫治疗
Engineered probiotics for tumor-targeted combination chemoimmunotherapy.
我们的方法将酶/前药治疗和免疫治疗整合到一个单一的细菌递送系统中,通过提供合理设计的空间控制化学免疫治疗框架,克服了传统疗法的关键局限性。
英文原题:De novo engineered disulfide bond supersedes native interchain linkage to enhance TCR pairing and anti-tumor efficacy in T cell therapy.
T 细胞受体工程化 T 细胞(TCR-T)疗法被认为在治疗实体瘤方面极具前景。
T 细胞受体工程化 T(TCR-T)细胞疗法被认为是治疗实体瘤的有前景策略,但仍存在显著局限。其中一个问题是外源与内源 TCR 链错误配对,这会明显降低细胞表面表达及工程化 TCR 的疗效,并带来临床安全隐患。为解决这一问题,我们开发了二硫键替代型 TCR(DSS-TCR):在恒定区中以人工设计的二硫键取代天然二硫键,以提高 TCR 配对的准确性和功能。研究显示,去除天然链间二硫键可显著减少错误配对,却严重损害肿瘤杀伤活性。通过结构指导的计算预测,我们在 TCR 恒定区中从头设计了 9 对可形成人工链间二硫键的位点。将其导入缺失天然二硫键的 TCR 后,其中 4 对位点恢复了细胞表面表达下降;特别是其中 2 对与野生型人 TCR 相比,显著提高了 TCR 表面表达和细胞毒活性。进一步组合不同突变,并在 TCR 链跨膜区引入疏水性替换后,DSS-TCR 的配对效率和抗肿瘤疗效优于此前方案,达到含小鼠来源恒定区 TCR 的水平。DSS-TCR 显著降低 TCR 错配率,理论上也可降低免疫原性。该优化效果在其他基于 TCR 的受体中同样得到验证。因此,这种工程化方法为更安全、效力更强的 TCR-T 细胞治疗提供了新思路。
T-cell receptor-engineered T (TCR-T) cell therapy is considered highly promising for treating solid tumors. However, it still has significant limitations; one is exogenous-endogenous TCR chain mispairing, which could substantially compromise cell surface expression and the efficacy of the engineered TCR while raising clinical safety concerns. To address this obstacle, we developed a disulfide-substituted TCR (DSS-TCR), in which the native disulfide bond is replaced with artificially designed disulfide bonds within constant domains to increase the fidelity and functionality of TCR pairing. Our study demonstrated that ablation of the native interchain disulfide bond significantly reduces mispairing but severely impairs tumor-killing activity. Using structure-guided computational prediction, we designed nine pairs of artificial interchain disulfide bond-forming sites within TCR constant domains de novo. When introduced into native disulfide-deficient TCRs, four pairs reversed the decrease in cell surface expression. Notably, compared with the wild-type human TCR, two of them significantly enhanced both TCR surface expression and cytotoxic activity. By further combining different pairs of mutations and incorporating hydrophobic substitutions in the -chain transmembrane domain, DSS-TCRs achieved superior pairing efficiency and antitumor efficacy that were comparable to those of TCRs incorporating mouse-derived constant regions. DSS-TCR significantly decreases the TCR mismatching rate while theoretically reducing immunogenicity. This superior optimization effect was also confirmed for other TCR-based receptors. Therefore, this engineering approach offers a safer and more potent paradigm for TCR-based T-cell therapeutics.
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