CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Mutant calreticulin enables potent and selective CAR-T cell therapy in preclinical models of myeloproliferative neoplasms.
Mutant calreticulin enables potent and selective CAR-T cell therapy in preclinical models of myeloproliferative neoplasms.
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本研究首次证明,用 CAR-T 细胞成功靶向 mCALR 可作为 MPNs 的治疗策略。
过继转移经工程化改造、表达嵌合抗原受体(CAR)的T细胞,在治疗多种血液系统恶性肿瘤方面表现出较高疗效和安全性。然而,BCR::ABL1阴性骨髓增殖性肿瘤(MPN)等许多血液系统疾病仍缺乏有效治疗选择。其中一些肿瘤存在复发性突变,可导致突变型钙网蛋白(mCALR)表达;这一新抗原不存在于健康组织中,因此是CAR-T 细胞疗法高度特异且颇具吸引力的靶点。
研究者依据现有靶向mCALR的单克隆抗体序列设计了5种不同的CAR,并据此制备CAR-T 细胞。通过针对mCALR阳性细胞系的体外功能实验筛选出效果最佳的构建体,随后在细胞系、患者来源细胞和原位异种移植模型中评估其疗效,观察肿瘤负荷、CAR-T 细胞浸润和动物生存情况。研究者对患者来源细胞和CAR-T 治疗小鼠的残留肿瘤细胞分别进行整体RNA测序和单细胞RNA测序,以探查潜在耐药机制;并分析与CAR-T 疗效相关性最高的通路改变及其影响,随后开展靶向药物的药理学挽救实验。
5种构建体中有一种对表达mCALR的细胞表现出更强且特异的细胞毒性,而对mCALR阴性对照细胞无活性。该CAR-T 细胞还可清除患者来源的MPN细胞,并在异种移植模型中控制疾病进展;这一效果与CAR-T 细胞持续存在及肿瘤浸润相关。对患者样本及治疗小鼠脾脏残留肿瘤细胞的转录组分析显示,抗凋亡蛋白表达上调。功能实验确认,CAR-T 细胞对Bcl-2高表达细胞的疗效下降,而联合venetoclax治疗可恢复疗效,提示这是一种可行的联合治疗策略,可用于克服耐药。
本研究首次证明,靶向mCALR的CAR-T 细胞可作为MPN治疗策略。所选构建体对已建立的细胞系和患者来源细胞均表现出较强的临床前疗效。此外,转录组分析揭示了凋亡耐药机制,并支持与venetoclax等BH3模拟物联合用药的策略。这些发现为抗mCALR CAR-T 细胞的持续临床前开发及未来临床应用提供了有力依据。
The adoptive transfer of T cells engineered to express chimeric antigen receptors (CAR-T) has shown high efficacy and safety in treating various hematologic malignancies. However, many hematologic disorders, such as BCR::ABL1-negative myeloproliferative neoplasms (MPNs), lack effective treatment options. Some of these neoplasms are marked by a recurrent mutation that results in the expression of mutant calreticulin (mCALR), a neoantigen absent in healthy tissues, making it a highly specific and appealing target for CAR-T cell therapy.
Five distinct CARs were designed based on available monoclonal antibody sequences that target mCALR and were subsequently used to generate CAR-T cells. The most effective construct was selected through functional in vitro assays against mCALR-positive cell lines. Its efficacy was then evaluated in cell lines, patient-derived cells, and orthotopic xenograft models, assessing tumor burden, CAR-T cell infiltration, and animal survival. Bulk and single-cell RNA sequencing were performed on patient-derived cells and residual tumor cells from CART-treated mice, respectively, to investigate potential resistance mechanisms. The impact of the most relevant pathway alteration on CAR-T efficacy was also analyzed. Pharmacological rescue assays using targeted agents were then conducted.
Among the five constructs, one demonstrated superior and specific cytotoxicity against mCALR-expressing cells, with no activity against mCALR-negative controls. This CAR-T cell also eliminated patient-derived MPN cells and controlled disease progression in xenograft models, which correlated with the persistence of CAR-T cells and tumor infiltration. Transcriptomic profiling of patient samples and residual tumor cells in spleens of treated mice revealed upregulation of anti-apoptotic proteins. Functional assays confirmed reduced CAR-T efficacy in Bcl-2 high cells, which was restored by co-treatment with venetoclax, indicating a viable combination approach to overcome resistance.
This study demonstrates, for the first time, the successful targeting of mCALR with CAR-T cells as a therapeutic strategy for MPNs. The chosen construct shows strong preclinical efficacy against established cell lines and patient-derived cells. Additionally, transcriptomic profiling uncovered apoptosis resistance mechanisms and supports a combination strategy with BH3 mimetics, such as venetoclax. These findings provide a compelling rationale for ongoing preclinical development and future clinical application of anti-mCALR CAR-T cells for the treatment of MPNs.
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