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:Protein catenation potentiates antitumor activity of malaria VAR2CSA navigation CAR-T cells in a mouse model of hematological malignancies.
蛋白质索烃化提高了 rVAR2 的热稳定性和功能活性。在血液系统恶性肿瘤小鼠模型中,使用 rVAR2 索烃(AXVB)作为靶向模块的 CAR-T 细胞表现出更强的抗肿瘤活性。
尽管靶向 CD19 的CAR-T 细胞疗法在 B 细胞血液系统恶性肿瘤中已显示出疗效,但治疗抗原阴性或复发性肿瘤仍具有挑战性。重组疟疾蛋白 VAR2CSA(rVAR2)特异性结合类胎盘硫酸软骨素 A(pl-CSA),后者在多种癌症类型中表达,使其可用于多种肿瘤靶向平台。然而,基于 rVAR2 的 CAR-T 策略受到蛋白质热稳定性差、血清半衰期短以及与不可逆 CAR 激活相关的安全性问题的限制。为解决这些局限性,我们开发了一种可导航 CAR-T 细胞系统,该系统使用基于 rVAR2 的导航器将 CAR-T 细胞导向 pl-CSA+ 肿瘤。
我们在大肠杆菌中过表达并纯化了rVAR2和三种链环蛋白,随后通过小鼠免疫制备了抗rVAR2单克隆抗体5H4VAR2omab并进行了表位定位。利用其单链可变区片段,我们构建了带有CD28和4-1BB共刺激域的第三代CAR-T。通过正交筛选鉴定出一种互锁的rVAR2索烃AXVB,并将其用作导航器,将CAR-T细胞导向pl-CSA+肿瘤。该可导航CAR-T细胞系统的抗肿瘤疗效在体外及血液癌细胞系来源的异种移植模型中进行了评估。
我们开发了一种正交CAR-T细胞系统,利用导航蛋白(rVAR2或AXVB)靶向pl-CSA+肿瘤。通过可逆开关机制,该系统使CAR-T细胞能够间接识别肿瘤,从而改善传统CAR-T疗法的安全性。与rVAR2单体相比,AXVB多聚体表现出增强的热稳定性和靶标亲和力。在体外和体内,AXVB-(导航)-CAR T细胞均能有效清除CD19阳性和CD19阴性pl-CSA+肿瘤细胞,并显著延长荷瘤小鼠的生存期。
BACKGROUND: While CD19-targeting chimeric antigen receptor T-cell (CAR-T) therapies have shown efficacy in B-cell hematological malignancies, treatment of antigen-negative or relapsed tumors remains challenging. The recombinant malaria protein VAR2CSA (rVAR2) binds specifically to placental-like chondroitin sulfate A ( pl -CSA), which is expressed on many cancer types, enabling its use in various tumor-targeting platforms. However, rVAR2-based CAR-T strategies are limited by poor protein thermostability, short serum half-life, and safety concerns related to irreversible CAR activation. To address these limitations, we developed a navigable CAR-T cell system that uses an rVAR2-based navigator to direct CAR-T cells to pl -CSA + tumors. METHODS: We overexpressed and purified rVAR2 and three catenation proteins in Escherichia coli , then produced and epitope-mapped the anti-rVAR2 monoclonal antibody 5H4VAR2omab following murine immunization. Using its single-chain fragment variable, we constructed a third-generation CAR-T with CD28 and 4-1BB co-stimulatory domains. An interlocking rVAR2 catenane, AXVB, was identified via orthogonal screening and employed as a navigator for directing CAR-T cells to pl -CSA + tumors. The antitumor efficacy of this navigable CAR-T cell system was evaluated in vitro and in hematologic cancer cell line-derived xenograft models. RESULTS: We developed an orthogonal CAR-T cell system that employs a navigator protein (rVAR2 or AXVB) to target pl -CSA + tumors. Through a reversible switch mechanism, this system enables indirect tumor recognition by CAR-T cells, thereby improving the safety profile of conventional CAR-T therapies. Compared with the rVAR2 monomer, the AXVB multimer exhibited enhanced thermostability and target affinity. Both in vitro and in vivo, AXVB-(navigation)-CAR T cells potently eliminated CD19-positive and CD19-negative pl -CSA + tumor cells and significantly prolonged survival in tumor-bearing mice. CONCLUSIONS: Protein catenation improved the thermostability and functional activity of rVAR2. In a murine model of hematologic malignancy, CAR-T cells utilizing the rVAR2 catenane (AXVB) as a targeting module exhibited superior antitumor activity.
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