不适合移植的大 B 细胞淋巴瘤二线使用 axicabtagene ciloleucel:ALYCANTE 最终分析
Second-line axicabtagene ciloleucel in large B-cell lymphoma ineligible for transplantation: ALYCANTE final analysis.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Coengineering specificity, safety, and function into T cells for cancer immunotherapy.
Coengineering specificity, safety, and function into T cells for cancer immunotherapy.
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过继性T细胞转移(ACT)疗法,包括TIL(肿瘤浸润淋巴细胞)以及经基因修饰表达T细胞受体(TCR)或嵌合抗原受体(CAR)的T细胞,已在部分患者和癌症类型中展现出临床疗效。ACT领域因CD19-CAR疗法对抗多种晚期B细胞恶性肿瘤的临床成功而得到推动,包括对部分白血病患者的治愈性应答。
然而,复发仍然是一个难题,尤其是对于淋巴瘤。此外,由于多种原因,ACT对非血液系统实体瘤的疗效相对有限。事实上,除了淋巴细胞采集和制备等输注前挑战外,ACT失败还可归因于转移后的若干生物学过程,包括:(i)肿瘤归巢、浸润、扩增和滞留效率低下,(ii)慢性抗原暴露加上共刺激不足导致T细胞耗竭,(iii)由肿瘤细胞和抑制性免疫浸润介导的肿瘤微环境(TME)中的一系列屏障,(iv)肿瘤抗原异质性和丢失,或抗原呈递机制的 down-regulation,(v)肿瘤内在耐药机制的获得,如对凋亡的抵抗,以及(vi)患者中各种形式的毒性和其他不良事件。亲和力优化的TCR可改善T细胞功能,创新的CAR设计以及基因修饰策略可用于将特异性、安全性和功能共工程化到T细胞中。共工程化策略不仅可设计用于直接支持转移的T细胞,还可用于阻断TME中的抑制性屏障并利用内源性固有免疫和适应性免疫。
在此,我们回顾了一些卓越的T细胞共工程策略,包括近年来为增强ACT对肿瘤的控制而开发的工具、受体和基因载荷,其中越来越多的策略正逐步进入临床。
Adoptive T-cell transfer (ACT) therapies, including of tumor infiltrating lymphocytes (TILs) and T cells gene-modified to express either a T cell receptor (TCR) or a chimeric antigen receptor (CAR), have demonstrated clinical efficacy for a proportion of patients and cancer-types. The field of ACT has been driven forward by the clinical success of CD19-CAR therapy against various advanced B-cell malignancies, including curative responses for some leukemia patients.
However, relapse remains problematic, in particular for lymphoma.
Moreover, for a variety of reasons, relative limited efficacy has been demonstrated for ACT of non-hematological solid tumors. Indeed, in addition to pre-infusion challenges including lymphocyte collection and manufacturing, ACT failure can be attributed to several biological processes post-transfer including, (i) inefficient tumor trafficking, infiltration, expansion and retention, (ii) chronic antigen exposure coupled with insufficient costimulation resulting in T-cell exhaustion, (iii) a range of barriers in the tumor microenvironment (TME) mediated by both tumor cells and suppressive immune infiltrate, (iv) tumor antigen heterogeneity and loss, or down-regulation of antigen presentation machinery, (v) gain of tumor intrinsic mechanisms of resistance such as to apoptosis, and (vi) various forms of toxicity and other adverse events in patients.
Affinity-optimized TCRs can improve T-cell function and innovative CAR designs as well as gene-modification strategies can be used to coengineer specificity, safety, and function into T cells. Coengineering strategies can be designed not only to directly support the transferred T cells, but also to block suppressive barriers in the TME and harness endogenous innate and adaptive immunity.
Here, we review a selection of the remarkable T-cell coengineering strategies, including of tools, receptors, and gene-cargo, that have been developed in recent years to augment tumor control by ACT, more and more of which are advancing to the clinic.
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