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:Paediatric Strategy Forum for medicinal product development of chimeric antigen receptor T-cells in children and adolescents with cancer: ACCELERATE in collaboration with the European Medicines Agency with participation of the Food and Drug Administration.
第七届多利益相关方儿科战略论坛聚焦于针对儿童和青少年癌症的嵌合抗原受体(CAR)T细胞。
第七届多利益相关方儿科战略论坛聚焦于针对儿童和青少年癌症的嵌合抗原受体(CAR)T细胞。针对血液系统恶性肿瘤患者,尤其是B细胞前体急性淋巴细胞白血病(BCP-ALL)患者,CAR T细胞的开发取得了惊人的进展。然而,目前在BCP-ALL和其他儿科恶性肿瘤,特别是急性髓系白血病(AML)、淋巴瘤和实体瘤中,CAR T细胞的应用面临科学、临床和后勤方面的挑战。论坛的目标是总结当前儿科CAR T细胞治疗开发的概况,识别当前挑战和未来方向,同时考虑其他免疫效应模式,并确定加速其开发和儿童可及性的最佳策略。尽管在约半数患者中效果持续时间有限,但抗CD19 CAR T细胞在复发/难治性BCP-ALL中产生高缓解率,这揭示了先前未知的复发机制。CAR T细胞治疗作为一线或二线治疗也可能使那些具有与复发和常规治疗失败相关的高风险特征的患者受益。识别那些CAR T细胞治疗可能替代造血干细胞移植并成为确定性治疗的极早期和早期复发患者,与那些CAR T细胞治疗提供更有效桥接至造血干细胞移植的患者,是一个非常高的优先事项。通过改善T细胞适应性或使用更人源化/完全人源化产品以及多抗原共靶向来提高持久性的方法,可能进一步优化治疗。儿童B细胞非霍奇金淋巴瘤(B-NHL)与BCP-ALL之间存在许多差异。鉴于复发性淋巴瘤患者数量极少,需要谨慎优先考虑在伯基特淋巴瘤、原发性纵隔B细胞淋巴瘤及其他NHL亚型儿童中评估CAR T细胞。针对CD19替代靶点(CD20或CD22)的联合试验也应作为优先事项进行探索,以提高该人群的疗效。在复发/难治性霍奇金淋巴瘤患者中开发CD30 CAR T细胞免疫治疗策略,可能通过儿童与成人联合试验最有效地实现。鉴于在这些疾病中成功实现免疫治疗所面临的独特挑战,CAR T细胞方法在AML和T-ALL中尚处于早期开发阶段。目前,CD33和CD123似乎是AML中最普遍的靶点,而CD7在T-ALL中最为普遍。正在进行或计划中的首次人体研究结果对于促进进一步理解是必要的。实体瘤中已有令人鼓舞的早期结果,特别是针对GD2的细胞疗法在神经母细胞瘤和中枢神经系统胶质瘤中,这些代表了重大的未满足临床需求。对生物学的进一步理解是成功的关键。自体与异体 CAR T 细胞、经 T 细胞受体工程化的 T 细胞、经 T 细胞受体融合构建体工程化的 T 细胞、CAR 自然杀伤(NK)细胞产品、双特异性 T 细胞衔接抗体和抗体-药物偶联物在儿童恶性肿瘤中的比较获益需要评估。早期且主动的学术界和多公司参与对于推进儿童肿瘤学中的细胞免疫治疗是强制性的。在创新药物的临床试验设计和准备中,应尽早寻求监管建议,这些药物最终可能会寻求监管批准。从临床试验启动之初就协调战略、科学、监管、卫生技术和资金要求尤为重要,因为这些是非常昂贵的疗法。儿童肿瘤学中细胞治疗的药物开发模式也可能涉及向 i 的“后期移交”
The seventh multi-stakeholder Paediatric Strategy Forum focused on chimeric antigen receptor (CAR) T-cells for children and adolescents with cancer. The development of CAR T-cells for patients with haematological malignancies, especially B-cell precursor acute lymphoblastic leukaemia (BCP-ALL), has been spectacular. However, currently, there are scientific, clinical and logistical challenges for use of CAR T-cells in BCP-ALL and other paediatric malignancies, particularly in acute myeloid leukaemia (AML), lymphomas and solid tumours. The aims of the Forum were to summarise the current landscape of CAR T-cell therapy development in paediatrics, too identify current challenges and future directions, with consideration of other immune effector modalities and ascertain the best strategies to accelerate their development and availability to children. Although the effect is of limited duration in about half of the patients, anti-CD19 CAR T-cells produce high response rates in relapsed/refractory BCP-ALL and this has highlighted previously unknown mechanisms of relapse. CAR T-cell treatment as first- or second-line therapy could also potentially benefit patients whose disease has high-risk features associated with relapse and failure of conventional therapies. Identifying patients with very early and early relapse in whom CAR T-cell therapy may replace haematopoietic stem cell transplantation and be definitive therapy versus those in whom it provides a more effective bridge to haematopoietic stem cell transplantation is a very high priority. Development of approaches to improve persistence, either by improving T cell fitness or using more humanised/fully humanised products and co-targeting of multiple antigens to prevent antigen escape, could potentially further optimise therapy. Many differences exist between paediatric B-cell non-Hodgkin lymphomas (B-NHL) and BCP-ALL. In view of the very small patient numbers with relapsed lymphoma, careful prioritisation is needed to evaluate CAR T-cells in children with Burkitt lymphoma, primary mediastinal B cell lymphoma and other NHL subtypes. Combination trials of alternative targets to CD19 (CD20 or CD22) should also be explored as a priority to improve efficacy in this population. Development of CD30 CAR T-cell immunotherapy strategies in patients with relapsed/refractory Hodgkin lymphoma will likely be most efficiently accomplished by joint paediatric and adult trials. CAR T-cell approaches are early in development for AML and T-ALL, given the unique challenges of successful immunotherapy actualisation in these diseases. At this time, CD33 and CD123 appear to be the most universal targets in AML and CD7 in T-ALL. The results of ongoing or planned first-in-human studies are required to facilitate further understanding. There are promising early results in solid tumours, particularly with GD2 targeting cell therapies in neuroblastoma and central nervous system gliomas that represent significant unmet clinical needs. Further understanding of biology is critical to success. The comparative benefits of autologous versus allogeneic CAR T-cells, T-cells engineered with T cell receptors T-cells engineered with T cell receptor fusion constructs, CAR Natural Killer (NK)-cell products, bispecific T-cell engager antibodies and antibody-drug conjugates require evaluation in paediatric malignancies. Early and proactive academia and multi-company engagement are mandatory to advance cellular immunotherapies in paediatric oncology. Regulatory advice should be sought very early in the design and preparation of clinical trials of innovative medicines, for which regulatory approval may ultimately be sought. Aligning strategic, scientific, regulatory, health technology and funding requirements from the inception of a clinical trial is especially important as these are very expensive therapies. The model for drug development for cell therapy in paediatric oncology could also involve a 'later stage handoff' to i
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