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:CAR-T cells targeting fibroblast activation protein eliminate pathological fibroblasts and preserve cardiac function in a Duchenne Muscular Dystrophy murine model.
CAR-T cells targeting fibroblast activation protein eliminate pathological fibroblasts and preserve cardiac function in a Duchenne Muscular Dystrophy murine model.
这些结果表明,anti-FAP CAR-T 细胞可有效缓解纤维化,从而补充 DMD 的基因治疗。更广泛地说,其治疗获益为拓展至其他纤维化相关疾病的潜在应用铺平了道路。
嵌合抗原受体(CAR)-T 细胞疗法已经彻底改变了血液系统恶性肿瘤的治疗,目前其应用正转向非恶性疾病。如果基因缺陷的纠正仍是杜氏肌营养不良症(DMD)治疗的基石,那么疾病相关的纤维化可能会限制其疗效。因此,我们评估了通过靶向成纤维细胞活化蛋白(FAP,一种由活化成纤维细胞强烈表达的蛋白)的 CAR-T 细胞消除 DMD 心脏纤维化的效果。
表达 FAP 和绿色荧光探针(GFP)的体外 CAR-T 细胞首先与 FAP+ 或 FAP- 靶细胞共培养,以检测表达 FAP 的淋巴细胞活化情况。随后,在淋巴清除后,将抗 FAP CAR-T 细胞经静脉输注至营养不良性小鼠模型(D2.mdx)中,以研究与仅表达 GFP 的对照淋巴细胞相比,抗 FAP CAR-T 细胞的动力学、生物分布、心脏功能及抗纤维化效应。通过对采集心脏进行单细胞 RNA 测序,评估了细胞水平的作用机制。
体外,抗FAP CAR-T细胞与FAP+靶细胞共培养时被成功激活。在肌营养不良小鼠模型(D2.mdx)中,经淋巴细胞清除后静脉输注的抗FAP CAR-T细胞归巢至心脏和骨骼肌,并在那里降低了FAP和纤维化相关基因。单细胞RNA测序将这些变化与一个特定的致纤维化成纤维细胞簇的减少相关联。同时,与注射GFP转导T淋巴细胞或用作阴性对照的牛血清白蛋白的对照小鼠相比,抗FAP CAR-T细胞改善了心脏功能。
BACKGROUND: Chimeric Antigen Receptor (CAR)-T cells therapy has revolutionized the treatment of hematological cancers and are currently redirected towards non-malignant diseases. If correction of the gene defect remains the cornerstone of the treatment of Duchenne Muscular Dystrophy (DMD), the disease-associated fibrosis can limit its efficacy. We thus assessed the effects of eliminating cardiac fibrosis of DMD by CAR-T cells targeting Fibroblast Activation Protein (FAP), a protein strongly expressed by activated fibroblasts. METHODS: In vitro CAR-T cells expressing both FAP and a green fluorescent probe (GFP) were first co-cultured with FAP + of FAP- target cells to check for FAP-expressing lymphocyte activation. Then, anti-FAP CAR-T cells were intravenously delivered in a dystrophic murine model (D2.mdx), following lymphodepletion, to investigate the kinetics, biodistribution, cardiac functional and anti-fibrotic effects of anti-FAP CAR-T cells compared with control lymphocytes engineered to only express GFP. The mechanism of action at a cellular level was assessed by single-cell RNA-sequencing of harvested hearts. RESULTS: In vitro anti-FAP CAR-T cells were successfully activated when co-cultured with FAP + target cells. In a dystrophic murine model (D2.mdx), anti-FAP CAR-T cells, intravenously delivered following lymphodepletion, homed to the heart and skeletal muscles, where they decreased FAP and fibrosis-associated genes. Single-cell RNA-sequencing linked these changes to a decrease in a definite cluster of fibrogenic fibroblasts. Concomitantly, anti-FAP CAR-T cells improved cardiac function compared to control mice injected with GFP-transduced T lymphocytes or bovine serum albumin used as negative controls. CONCLUSIONS: These results suggest that anti-FAP CAR-T cells could be efficient for mitigating fibrosis and thus complement gene therapy of DMD. More generally, their therapeutic benefits pave the way for potential applications extending to other fibrosis-associated diseases.
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