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:Cis- and trans-binding chimeric costimulatory receptors enhance T-cell fitness and tumor control.
基于T细胞的疗法在对抗血液系统恶性肿瘤方面已显示出显著的成功;然而,它们在实体瘤中的疗效受到免疫抑制微环境和有限抗原可用性的阻碍。
基于T细胞的疗法在对抗血液系统恶性肿瘤方面已显示出显著成功;然而,其在实体瘤中的疗效受到免疫抑制微环境和抗原可用性受限的阻碍。使用嵌合共刺激受体(CCR)已成为改善T细胞功能的一种策略。然而,大多数设计靶向与主要抗原受体不同的抗原,使其在异质性肿瘤中的应用复杂化。在此,我们表征了一个平台的分子要求,该平台基于通过TCR和CCR对单一抗原的双重靶向,使工程化T细胞能够实现共刺激。我们将此策略应用于应激配体BTN3A,该配体在实体瘤中广泛表达,并且是γ9δ2TCR所识别抗原复合物的一部分。通过结构建模、丙氨酸扫描和抗体筛选,我们确定103-4-1BB,一种BTN3A特异性CCR,结合于BTN3A上不同于γ9δ2TCR表位的表位。这种表位分离对于实现单一抗原的协同共同接合至关重要,并且由此导致的T细胞活化增加需要γ9δ2TCR信号传导和抗BTN3A-CCR的反式作用功能。此外,103-4-1BB的胞外结构域稳定了T细胞-肿瘤细胞相互作用并增加了γ9δ2TCR敏感性,而其胞内4-1BB信号传导结构域驱动了强劲增殖、改善了T细胞适应性,并在体内介导了有效的肿瘤控制。值得注意的是,CCR与工程化T细胞上BTN3A的顺式结合促进了在无肿瘤细胞情况下的存活,而反式结合肿瘤表达的BTN3A则是浸润、肿瘤清除和记忆形成所必需的。这些发现建立了一个模块化框架,用于设计顺式/反式活性CCR,通过单抗原双接合增强T细胞功能,从而为改善实体瘤免疫治疗提供了广泛适用的策略。
T-cell-based therapies have shown remarkable success in combatting hematologic malignancies; however, their efficacy in solid tumors is hindered by the immunosuppressive microenvironment and restricted antigen availability. The use of chimeric costimulatory receptors (CCRs) has emerged as a strategy to improve T-cell function. However, most designs target antigens distinct from the primary antigen receptor, complicating their application across heterogeneous tumors. Here, we characterized the molecular requirements for a platform enabling costimulation in engineered T cells on the basis of dual targeting of a single antigen via a TCR and a CCR. We applied this strategy to the stress ligand BTN3A, which is broadly expressed in solid tumors and is a part of the antigen complex recognized by the γ9δ2TCR. Through structural modeling, alanine scanning, and antibody screening, we determined that 103-4-1BB, a BTN3A-specific CCR, bound to an epitope on BTN3A that was distinct from the γ9δ2TCR epitope. This epitope separation is critical for enabling synergistic coengagement of a single antigen, and the resulting increase in T-cell activation requires both γ9δ2TCR signaling and the trans-acting functionality of the anti-BTN3A-CCR. Moreover, the extracellular domain of 103-4-1BB stabilized T-cell-tumor cell interactions and increased γ9δ2TCR sensitivity, whereas its intracellular 4-1BB signaling domain drove robust proliferation, improved T-cell fitness, and mediated potent tumor control in vivo. Notably, cis-binding of the CCR to BTN3A on engineered T cells promoted survival in the absence of tumor cells, while transbinding to tumor-expressed BTN3A was required for infiltration, tumor clearance, and memory formation. These findings establish a modular framework for designing cis/trans-active CCRs that enhance T-cell function through single-antigen dual engagement, enabling broadly applicable strategies to improve solid tumor immunotherapy.
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