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:Increased NFAT activity with dual CAR stimulation in CD19xCD22 CAR T-cells is associated with decreased exhaustion and improved survival.
Increased NFAT activity with dual CAR stimulation in CD19xCD22 CAR T-cells is associated with decreased exhaustion and improved survival.
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在 CD19xCD22 双顺反子 CAR 构建体中,同时刺激两个 CAR 分子会影响 CAR-T 细胞内的下游信号事件,并随后驱动更有效的体内反应,持续存在的细胞中表现出耗竭减少的证据。这些数据表明,双顺反子 CAR 平台不仅具有靶向两种抗原以防止抗原调制逃逸的潜力,还可以通过工程化改造来改善 CAR-T 细胞生物学的多个方面,例如减轻耗竭,从而克服当前 CAR-T 细胞疗法中已知驱动复发的多种机制。
嵌合抗原受体(CAR)T细胞疗法在治疗B细胞恶性肿瘤方面有效,但由於CAR持续性不足和抗原调变逃逸导致的复发仍然常见。同时靶向CD19和CD22的多种策略能够减少抗原调变逃逸,但未能完全消除复发。一种双顺反子CAR构建体由包含CD28共刺激结构域的CD19 CAR与包含4-1BB共刺激结构域的CD22 CAR配对组成(CD19xCD22),与其他构型相比表现出更优的临床前活性,目前正在进行临床研究(NCT05098613、NCT05442515、NCT06559189)。我们假设,同时激活含CD28和含4-1BB的CAR分子不仅能够靶向两种抗原,还能产生独特的信号,从而增强CAR-T 细胞的功能和疗效。
我们测试了由原代人T细胞生成的CD19xCD22 CAR-T 细胞,针对CD19和CD22野生型表达的NALM6细胞(CD19+/CD22+),或通过CRISPR/Cas9敲除一个或两个抗原的NALM6细胞(CD19+/CD22-、CD19-/CD22+、CD19-/CD22-),以探究双CAR刺激对T细胞功能、信号传导以及异种移植模型中体内疗效的影响。
CD19xCD22 CAR-T 细胞的体外增殖和细胞因子产生主要由CD19-28z CAR的激活驱动,然而CD22-BBz CAR驱动了等效的细胞毒性。CD19xCD22 CAR-T 细胞的双CAR刺激在异种移植模型中减少了白血病复发并改善了生存。这种疗效的增加与双CAR刺激后通过磷脂酶C-gamma 1和活化T细胞核因子通路的信号传导增加相关。双CAR刺激还导致持续性CD19xCD22 CAR-T 细胞中与T细胞耗竭相关的标志物表达降低。
Chimeric antigen receptor (CAR) T-cell therapy is effective in treating B-cell malignancies, however relapse due to lack of CAR persistence and antigen-modulated escape remains common. Multiple strategies to simultaneously target CD19 and CD22 have been able to reduce antigen-modulated escape but not completely eliminate relapse. A bicistronic CAR construct consisting of a CD19 CAR incorporating the CD28 costimulatory domain paired with a CD22 CAR incorporating a 4-1BB costimulatory domain (CD19xCD22) demonstrated superior preclinical activity compared with other configurations and is currently under clinical investigation (NCT05098613, NCT05442515, NCT06559189). We hypothesized that simultaneous activation of CD28-containing and 4-1BB-containing CAR molecules not only allows for targeting of both antigens but creates a unique signal which enhances CAR T-cell function and efficacy.
We tested CD19xCD22 CAR T-cells generated from primary human T-cells against NALM6 with wild-type expression of CD19 and CD22 (CD19+/CD22+) or CRISPR/Cas9 knockout of one or both antigens (CD19+/CD22-, CD19-/CD22+, CD19-/CD22-) to interrogate the effect of dual-CAR stimulation on T-cell function, signaling, and in vivo efficacy in xenograft models.
In vitro proliferation and cytokine production of CD19xCD22 CAR T-cells were primarily driven by activation of the CD19-28z CAR, however the CD22-BBz CAR drove equivalent cytotoxicity. Dual-CAR stimulation of CD19xCD22 CAR T-cells decreased leukemia relapse and improved survival in xenograft models. This increase in efficacy was associated with increased signaling through the phospholipase C-gamma 1 and nuclear factor of activated T-cells pathway after dual-CAR stimulation. Dual-CAR stimulation also led to decreased expression of markers associated with T-cell exhaustion in persistent CD19xCD22 CAR T-cells.
Stimulation of both CAR molecules in a CD19xCD22 bicistronic CAR construct impacts downstream signaling events within the CAR T-cell and subsequently drives a more efficacious in vivo response with evidence of decreased exhaustion in persisting cells. These data suggest that bicistronic CAR platforms have the potential to not only target two antigens to prevent antigen-modulated escape but can be engineered to improve multiple facets of CAR T-cell biology, such as mitigating exhaustion, thereby overcoming multiple mechanisms known to drive relapse in current CAR T-cell therapies.
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