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:TCR-engineered adoptive cell therapy effectively treats intracranial murine glioblastoma.
我们构建并表征了首个针对临床前胶质瘤模型中内源性新抗原的 TCR 转基因,并证明了过继转移新抗原特异性 T 细胞的治疗潜力。MISTIC 小鼠为胶质母细胞瘤中抗肿瘤 T 细胞反应的基础和转化研究提供了一个强大的新型平台。
CAR-T 细胞过继性细胞疗法已经彻底改变了某些恶性肿瘤的治疗,但在胶质母细胞瘤等实体瘤中疗效有限,并且面临缺乏安全治疗靶点的问题。作为一种替代方案,针对肿瘤特异性新抗原的T细胞受体(TCR)工程化细胞疗法引起了极大关注,但目前尚无临床前系统能够在胶质母细胞瘤中严格模拟这一方法。
我们采用单细胞PCR技术,从先前在鼠胶质母细胞瘤模型GL261中鉴定出的Imp3 D81N新抗原(mImp3)中分离出特异性TCR。利用该TCR构建了突变Imp3特异性TCR转基因(MISTIC)小鼠,其中所有CD8 T细胞均对mImp3具有特异性。通过将活化的MISTIC T细胞和白介素2转移至淋巴清除的荷瘤小鼠中的细胞治疗模型,评估了新抗原特异性T细胞的治疗效果。我们采用流式细胞术、单细胞RNA测序以及全外显子组和RNA测序,探究了治疗反应背后的因素。
我们分离并表征了3×1.1C TCR,该TCR对mImp3显示出高亲和力,但无野生型交叉反应性。为了提供mImp3特异性T细胞的来源,我们构建了MISTIC小鼠。在过继性细胞治疗模型中,输注活化的MISTIC T细胞导致快速的瘤内浸润和显著的抗肿瘤效果,在大多数GL261荷瘤小鼠中实现了长期治愈。对过继性细胞治疗无反应的那部分小鼠显示出保留的新抗原表达证据,但存在瘤内MISTIC T细胞功能障碍。MISTIC T细胞治疗的疗效在荷有异质性mImp3表达肿瘤的小鼠中丧失,展示了在人多克隆肿瘤中进行靶向治疗的障碍。
BACKGROUND: Adoptive cellular therapies with chimeric antigen receptor T cells have revolutionized the treatment of some malignancies but have shown limited efficacy in solid tumors such as glioblastoma and face a scarcity of safe therapeutic targets. As an alternative, T cell receptor (TCR)-engineered cellular therapy against tumor-specific neoantigens has generated significant excitement, but there exist no preclinical systems to rigorously model this approach in glioblastoma. METHODS: We employed single-cell PCR to isolate a TCR specific for the Imp3 D81N neoantigen (mImp3) previously identified within the murine glioblastoma model GL261. This TCR was used to generate the Mutant Imp3-Specific TCR TransgenIC (MISTIC) mouse in which all CD8 T cells are specific for mImp3. The therapeutic efficacy of neoantigen-specific T cells was assessed through a model of cellular therapy consisting of the transfer of activated MISTIC T cells and interleukin 2 into lymphodepleted tumor-bearing mice. We employed flow cytometry, single-cell RNA sequencing, and whole-exome and RNA sequencing to examine the factors underlying treatment response. RESULTS: We isolated and characterized the 3×1.1C TCR that displayed a high affinity for mImp3 but no wild-type cross-reactivity. To provide a source of mImp3-specific T cells, we generated the MISTIC mouse. In a model of adoptive cellular therapy, the infusion of activated MISTIC T cells resulted in rapid intratumoral infiltration and profound antitumor effects with long-term cures in a majority of GL261-bearing mice. The subset of mice that did not respond to the adoptive cell therapy showed evidence of retained neoantigen expression but intratumoral MISTIC T cell dysfunction. The efficacy of MISTIC T cell therapy was lost in mice bearing a tumor with heterogeneous mImp3 expression, showcasing the barriers to targeted therapy in polyclonal human tumors. CONCLUSIONS: We generated and characterized the first TCR transgenic against an endogenous neoantigen within a preclinical glioma model and demonstrated the therapeutic potential of adoptively transferred neoantigen-specific T cells. The MISTIC mouse provides a powerful novel platform for basic and translational studies of antitumor T-cell responses in glioblastoma.
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