决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Dual-inhibitory domain iCARs improve the efficiency of the AND-NOT gate CAR T strategy.
这些数据表明,必须实现 CAR 与 iCAR 信号强度与动力学之间的精细平衡,才能调控 AND-NOT 门控 CAR T 细胞的选择性。
嵌合抗原受体(CAR)T细胞疗法已成功用于治疗血液系统恶性肿瘤,但其在实体瘤中的疗效有限。主要挑战之一是靶向肿瘤抗原的CAR-T也会损伤表达该抗原的正常组织,即“靶向肿瘤、同时误伤肿瘤外组织”的毒性。为减轻这种不良反应,基于布尔逻辑的“与-非”门控策略使用抑制型CAR(iCAR),在选定的非恶性组织部位特异性抑制CAR-T活性。然而,该策略似乎效率不高,需有较高水平的iCAR及其靶抗原才能产生抑制作用。我们采用带有单一PD-1抑制结构域、靶向TROP2的iCAR来抑制靶向CEACAM5的CAR(CEACAR),并观察到疗效不足源于iCAR抑制细胞毒活性的动力学延迟。为提高iCAR效率,我们调整其三个特征:亲合价、亲和力和胞内信号结构域。提高iCAR亲合价而非亲和力,可显著缩短抑制延迟。我们筛选了含12种不同抑制性信号结构域的iCAR,以寻找抑制效果更好的设计;其中BTLA、LAIR-1和SIGLEC-9结构域均能抑制CAR-T功能,但未改善抑制动力学。将LAIR-1或SIGLEC-9抑制结构域与PD-1组合为单个双抑制结构域iCAR(DiCAR),再与CEACAR联用后,抑制效率提高,表现为抑制延迟显著缩短。这些数据表明,必须精细平衡CAR和iCAR的信号强度及动力学,才能调控“与-非”门控CAR-T的选择性。
CAR (chimeric antigen receptor) T cell therapy has shown clinical success in treating hematological malignancies, but its treatment of solid tumors has been limited. One major challenge is on-target, off-tumor toxicity, where CAR T cells also damage normal tissues that express the targeted antigen. To reduce this detrimental side-effect, Boolean-logic gates like AND-NOT gates have utilized an inhibitory CAR (iCAR) to specifically curb CAR T cell activity at selected nonmalignant tissue sites. However, the strategy seems inefficient, requiring high levels of iCAR and its target antigen for inhibition. Using a TROP2-targeting iCAR with a single PD1 inhibitory domain to inhibit a CEACAM5-targeting CAR (CEACAR), we observed that the inefficiency was due to a kinetic delay in iCAR inhibition of cytotoxicity. To improve iCAR efficiency, we modified three features of the iCAR-the avidity, the affinity, and the intracellular signaling domains. Increasing the avidity but not the affinity of the iCAR led to significant reductions in the delay. iCARs containing twelve different inhibitory signaling domains were screened for improved inhibition, and three domains (BTLA, LAIR-1, and SIGLEC-9) each suppressed CAR T function but did not enhance inhibitory kinetics. When inhibitory domains of LAIR-1 or SIGLEC-9 were combined with PD-1 into a single dual-inhibitory domain iCAR (DiCARs) and tested with the CEACAR, inhibition efficiency improved as evidenced by a significant reduction in the inhibitory delay. These data indicate that a delicate balance between CAR and iCAR signaling strength and kinetics must be achieved to regulate AND-NOT gate CAR T cell selectivity.
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