LBPO.IM02 · 免疫学 · Late-Breaking
EGFR靶向KIR-CAR T中基于自然杀伤细胞的信号传导克服了基于CD3的CAR T功能缺陷,在体内清除耐药性胶质母细胞瘤
Natural killer cell-based signaling in EGFR-targeted KIR-CAR T overcomes CD3-based CAR T functional deficits to eliminate resistant glioblastomas in vivo
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摘要 Abstract
中文摘要
胶质母细胞瘤(GBM)是成人中最常见的原发性脑癌,尽管采用切除、化疗和放疗的标准治疗,其预后仍仅为15—18个月的生存期。近期临床试验研究了在GBM中通过将单链可变片段(scFv)与41BB共刺激和CD3ζ活化重组、靶向表皮生长因子受体(EGFR)变体的自体嵌合抗原受体(CAR)T细胞,显示出令人鼓舞的影像学证据,即在CAR T治疗后数天内出现早期肿瘤缩小。遗憾的是,这种抗肿瘤功能持续时间短暂,肿瘤通常在数天至数周内再度生长,这可能归因于T细胞因耗竭而迅速丧失功能,或靶抗原丢失。为绕过基于CD3的CAR信号耗竭并延长CAR T的抗肿瘤功能,将重组的基于单链CD3ζ的CAR替换为一种更符合生理的、源自自然杀伤(NK)细胞的分裂信号系统,利用杀伤免疫球蛋白样受体(KIR)和12 kDa DNAX活化蛋白(DAP12)活化,以便在与靶细胞结合和解离时实现更自然的细胞活化/静息循环。将第二代EGFR/EGFRvIII靶向的单链41BB-CD3ζ CAR替换为多链KIR/DAP12 CAR信号传导,并在体外就识别特异性、细胞裂解功能、细胞因子分泌和T细胞分化表型对CAR和KIR T细胞进行比较。在已建立的CAR耐药免疫缺陷NOD/SCID/γ链-/-(NSG)小鼠GBM异种移植模型中评估体内疗效,通过体内成像和卡尺测量评估肿瘤大小,并根据Kaplan-Meier图评估生存。经慢病毒转导和体外扩增后,与基于CD3的CAR T相比,KIR-CAR T表现出更多的初始样(naïve-like)表型,效应记忆细胞减少。在体外,CAR和KIR信号传导两种形式赋予了相当的靶特异性、细胞毒性、T细胞活化和细胞因子释放。相反,在体内,KIR-CAR T细胞反复优于41BB-CD3ζ CAR,其中最有效的治疗由靶向多种EGFR肿瘤相关变体的scFv所递送,显示出更优的肿瘤消退,包括完全抗肿瘤应答和生存延长。凭借相同的靶向特异性、体外相似的细胞因子产生以及体内显著增强的抗肿瘤功能影响和延长的生存,EGFR-KIR-CAR有望快速转化到临床,以克服基于CD3的单链CAR T在治疗GBM患者中的局限性。由NIH资助项目DP2CA174502(LAJ)资助。
查看英文原文 English abstract
Glioblastoma (GBM) is the most common primary brain cancer in adults, with a prognosis of 15-18 months' survival despite standard treatment of resection, chemotherapy, and radiotherapy. Recent clinical trials investigating autologous chimeric antigen-receptor (CAR) T cells targeting epidermal growth factor receptor (EGFR) variants in GBM through single-chain variable fragments (scFv) recombined with 41BB-co-stimulation and CD3ζ activation showed encouraging radiographic evidence of early tumor reductions, within days of CAR T treatment. Unfortunately, this anti-tumor function was short-lived, with tumor outgrowth generally occurring within days to weeks, potentially attributed to rapid loss of T cell function due to exhaustion, or target antigen loss. In efforts to bypass CD3-based CAR signaling exhaustion and prolong CAR T anti-tumor function, the recombinant single-chain CD3ζ-based CAR was replaced with a more physiologic split-signal system derived from natural killer (NK) cells, utilizing killer immunoglobulin-like receptor (KIR) and DNAX-activation protein of 12 kDa (DAP12) activation to allow a more natural cellular activation/rest cycle upon target cell engagement and disengagement. Second-generation EGFR/EGFRvIII-targeted single-chain 41BB-CD3ζ CAR was replaced with multi-chain KIR/DAP12 CAR signaling, and CAR and KIR T cells were compared in vitro for recognition specificity, cytolytic function, cytokine secretion, and T cell differentiation phenotype. In vivo efficacy was evaluated in established CAR-resistant immunocompromised NOD/SCID/gamma-chain -/- (NSG) murine GBM xenograft models, where tumor size was evaluated by in vivo imaging and caliper measurements and survival per Kaplan-Meier graph. Following lentiviral transduction and ex vivo expansion, KIR-CAR T displayed an increased naïve-like phenotype, with reduced effector-memory cells compared with CD3-based CAR T. In vitro, both CAR and KIR-signaling formats conferred comparable target specificity, cytotoxicity, T cell activation and cytokine release. In contrast, in vivo KIR-CAR T cells repeatedly outperformed 41BB-CD3ζ CARs, with the most effective treatment delivered by an scFv targeting multiple EGFR tumor-associated variants, demonstrating superior tumor regressions, including complete anti-tumor responses and increased survival. With the same targeting specificity, similar cytokine production in vitro, and significantly increased anti-tumor functional impact and prolonged survival in vivo, EGFR-KIR-CAR has the potential for rapid translation to the clinic to overcome the limitations of CD3-based single-chain CAR T in treating patients with GBM. Funded by NIH grant DP2CA174502 (LAJ).
利益披露 Disclosure
J. Xu,
Verismo Therapeutics Employment, Stock Option, Patent.
R. Thokala,
Janssen Pharmaceuticals Employment, Stock.
Y. Yin, None..
C. Xu, None.
A. C. Boesteanu,
Vetigenics Employment, Stock Option.
A. P. Cogdill,
Daichi Sankyo Employment, Stock, Stock Option.
Z. A. Binder, None..
L. Zhang, None..
J. Zhang, None..
E. Wang, None.
C. H. June,
Verismo Therapeutics Independent Contractor, Stock Option.
D. M. O'Rourke, None.
M. C. Milone,
Verismo Therapeutics Independent Contractor, Stock Option, ), Patent.
Caballetta Therapeutics Independent Contractor, Stock Option, ), Patent.
L. A. Johnson,
Verismo Therapeutics Employment, Stock Option.