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:Enhancement of anti-sarcoma immunity by NK cells engineered with mRNA for expression of a EphA2-targeted CAR.
该研究为 EphA2 靶向 CAR-NK 细胞治疗在一系列儿童肉瘤中的临床评价提供了基础依据。
背景:横纹肌肉瘤、尤文肉瘤和骨肉瘤等儿童肉瘤,是一组显著增加儿童和青年癌症相关发病率及死亡率的恶性肿瘤。这些癌症面临共同挑战,包括高转移率、复发或治疗耐药;晚期患者5年生存率约为20%。尽管临床需求迫切,过去30年治疗进展有限。嵌合抗原受体(CAR)免疫疗法的出现为新疗法提供了有前景的方向。然而,CAR-T细胞治疗实体瘤的成功有限,面临肿瘤浸润差、免疫抑制性肿瘤微环境和脱靶效应等问题。相比之下,将CAR技术用于自然杀伤(NK)细胞在血液系统和实体瘤中均显示潜力,为儿童肉瘤提供了新治疗策略。 方法:本研究开发并验证一种新型CAR-NK细胞疗法,靶向多种儿童肉瘤中高表达的Ephrin A型受体2(EphA2)抗原。 结果:电穿孔后成功检测到NK细胞表面CAR表达,提示转染成功。与未改造NK细胞相比,EphA2特异性CAR-NK细胞在体外对多种儿童肉瘤细胞系(包括横纹肌肉瘤、尤文肉瘤和骨肉瘤)显示出增强的细胞毒活性。对NK细胞进行瞬时信使RNA(mRNA)转染是一种安全的基因工程方法;进一步对mRNA进行化学修饰可提高其稳定性,使NK细胞中的EphA2-CAR表达更持久,从而延长蛋白表达。此外,在横纹肌肉瘤和骨肉瘤小鼠模型中,体内EphA2-CAR-NK细胞展现出有前景的抗癌活性。 结论:本研究为在多种儿童肉瘤中临床评估EphA2靶向CAR-NK细胞疗法奠定了基础。体外和体内观察到的抗肿瘤作用增强,提示其有望改善难治儿童肉瘤的治疗结局。 要点:本研究旨在解决儿童肉瘤尚未满足的临床需求。晚期横纹肌肉瘤、尤文肉瘤和骨肉瘤生存率较低,过去30年治疗进展不足,亟需创新治疗方法。CAR-NK细胞是推进免疫治疗的有前景策略,可能克服CAR-T治疗实体瘤的局限,具有靶瘤能力增强、脱靶效应较低和安全性改善等优势。EphA2在多种儿童肉瘤中过表达,并参与肿瘤进展和血管生成,是CAR免疫疗法的可行靶点。本研究证明,可使用瞬时mRNA转染工程化改造NK细胞并使其表达CAR,提供一种非整合型、较病毒转导更安全的替代方案;化学修饰可进一步提高mRNA稳定性和蛋白表达。临床转化潜力方面,EphA2特异性CAR-NK细胞在体外对肉瘤细胞系具有更强细胞毒性,并在横纹肌肉瘤和骨肉瘤小鼠模型中显示显著抗肿瘤活性,支持进一步临床评估。
BACKGROUND: Paediatric sarcomas, including rhabdomyosarcoma, Ewing sarcoma and osteosarcoma, represent a group of malignancies that significantly contribute to cancer-related morbidity and mortality in children and young adults. These cancers share common challenges, including high rates of metastasis, recurrence or treatment resistance, leading to a 5-year survival rate of approximately 20% for patients with advanced disease stages. Despite the critical need, therapeutic advancements have been limited over the past three decades. The advent of chimeric antigen receptor (CAR)-based immunotherapies offers a promising avenue for novel treatments. However, CAR-T cells have faced significant challenges and limited success in treating solid tumours due to issues such as poor tumour infiltration, immunosuppressive tumour microenvironments and off-target effects. In contrast, the adaptation of CAR technology for natural killer (NK) cells has demonstrated potential in both haematological and solid tumours, suggesting a new therapeutic strategy for paediatric sarcomas. METHODS: This study developed and validated a novel CAR-NK cell therapy targeting the ephrin type-A receptor-2 (EphA2) antigen, which is highly expressed in various paediatric sarcomas. RESULTS: CAR expression was successfully detected on the surface of NK cells post-electroporation, indicating successful transfection. Significantly, EphA2-specific CAR-NK cells demonstrated enhanced cytotoxic activity against several paediatric sarcoma cell lines in vitro, including those of rhabdomyosarcoma, Ewing sarcoma and osteosarcoma, compared to unmodified NK cells. Transient messenger RNA (mRNA) transfection of NK cells is a safe approach in genetic engineering, with further chemical modifications to mRNA enhancing stability of temporal EphA2-CAR expression in NK cells, thereby promoting prolonged protein expression. Additionally, in vivo EphA2-CAR-NK cells showed promising anti-cancer activity in rhabdomyosarcoma and osteosarcoma mouse models. CONCLUSIONS: The study provides a foundational basis for the clinical evaluation of EphA2-targeted CAR-NK cell therapy across a spectrum of paediatric sarcomas. The enhanced anti-tumour effects observed in vitro/vivo suggests potential for improved therapeutic outcomes in hard-to-cure paediatric sarcomas. KEY POINTS: Addressing unmet clinical needs in paediatric Sarcomas. Paediatric sarcomas, including rhabdomyosarcoma, Ewing sarcoma, and osteosarcoma, exhibit poor survival rates in advanced disease stages. The lack of significant therapeutic progress over the past three decades necessitates innovative treatment approaches. Advancing immunotherapy with CAR-NK cells. Natural killer (NK) cells modified with chimeric antigen receptors (CARs) represent a promising strategy to overcome the limitations of CAR-T cells, particularly in solid tumours. CAR-NK cells are associated with enhanced tumour targeting, reduced off-target effects, and improved safety profiles. EphA2 as a therapeutic target. EphA2, a receptor overexpressed in multiple paediatric sarcomas, is identified as a viable target for CAR-based immunotherapy due to its critical role in tumour progression and angiogenesis. Innovations in mRNA-based engineering. This study demonstrates the feasibility of transient mRNA transfection to engineer NK cells for CAR expression, offering a non-integrative and safer alternative to viral transduction. Enhancements in mRNA stability through chemical modifications, can further optimise protein expression. Preclinical efficacy of EphA2-CAR NK cells. EphA2-specific CAR-NK cells exhibit superior cytotoxicity against sarcoma cell lines in vitro and demonstrate significant anti-tumour activity in in vivo mouse models of rhabdomyosarcoma and osteosarcoma. Clinical translation potential. The findings establish a strong preclinical rationale for the clinical evaluation of EphA2-targeted CAR-NK therapy as a novel immunotherapeutic option for paediatric sarc
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