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:Highlights into historical and current immune interventions for cancer.
免疫治疗在全球范围内影响广泛,其作用机制众多,从整体来看,对更广泛肿瘤类型的疗效优于最初的设想。
免疫疗法与化疗、放疗和手术等传统标准治疗联合使用,已成为癌症患者治疗的另一支柱。它彻底改变了癌症治疗,并为肿瘤免疫学领域注入新的活力。多种免疫疗法,包括过继细胞治疗(ACT)和免疫检查点抑制剂(CPI),均可诱导持久的临床应答,但疗效各异,只有部分癌症患者能够获益。本综述有三个目标:深入了解这些疗法的发展历史,拓展对免疫干预的认识,并讨论当前和未来的策略。我们重点介绍癌症免疫治疗的演进,并讨论免疫干预个体化如何克服当前局限。癌症免疫治疗被视为近期医学成就,2013年被《科学》杂志评为“年度突破”。虽然免疫疗法种类迅速扩展,包括嵌合抗原受体(CAR)T细胞疗法和免疫检查点抑制剂(ICI),但免疫治疗的历史已有三千多年。漫长的免疫治疗发展史及相关观察,已促成CAR-T和ICI近期受到关注之外的多种免疫疗法获批。除其他经典免疫干预方式外,人乳头瘤病毒(HPV)疫苗、乙型肝炎疫苗和牛分枝杆菌卡介苗(BCG)结核疫苗,也对癌症治疗和预防产生广泛而持久的影响。经典免疫疗法的一个例子是1976年开始将BCG膀胱内灌注用于膀胱癌患者,肿瘤清除率达70%,目前已成为标准治疗。然而,免疫疗法影响更广的例子是预防HPV感染;该病毒感染导致98%的宫颈癌病例。世界卫生组织(WHO)估计,2020年有341,831名女性死于宫颈癌[1]。研究显示,单剂二价HPV疫苗预防HPV感染的有效率为97.5%。此类疫苗不仅可预防宫颈鳞癌和腺癌,也可预防口咽、肛门、外阴、阴道和阴茎鳞癌。与CAR-T细胞疗法相比,疫苗的适用范围、应答和持久性更广;CAR-T疗法大规模应用仍面临物流、制备能力、毒性顾虑和经济负担等重大障碍,而且只有30%–40%的应答患者获得持久缓解。另一个近期免疫治疗重点是ICI。这类抗体可增强患者针对癌细胞的免疫应答,但仅对突变负荷高的肿瘤有效,且毒性谱广,可能需要暂停给药和/或使用糖皮质激素;两者都会限制免疫治疗。总之,免疫疗法通过多种作用机制在全球产生广泛影响;整体而言,其对更广泛肿瘤类型的疗效高于最初的预期。将多种免疫干预机制彼此联合并与标准治疗方式联合,具有巨大潜力。
Immunotherapy is an additional pillar when combined with traditional standards of care such as chemotherapy, radiotherapy, and surgery for cancer patients. It has revolutionized cancer treatment and rejuvenated the field of tumor immunology. Several types of immunotherapies, including adoptive cellular therapy (ACT) and checkpoint inhibitors (CPIs), can induce durable clinical responses. However, their efficacies vary, and only subsets of cancer patients benefit from their use. In this review, we address three goals: to provide insight into the history of these approaches, broaden our understanding of immune interventions, and discuss current and future approaches. We highlight how cancer immunotherapy has evolved and discuss how personalization of immune intervention may address present limitations. Cancer immunotherapy is considered a recent medical achievement and in 2013 was selected as the "Breakthrough of the Year" by Science. While the breadth of immunotherapeutics has been rapidly expanding, to include the use of chimeric antigen receptor (CAR) T-cell therapy and immune checkpoint inhibitor (ICI) therapy, immunotherapy dates back over 3000 years. The expansive history of immunotherapy, and related observations, have resulted in several approved immune therapeutics beyond the recent emphasis on CAR-T and ICI therapies. In addition to other classical forms of immune intervention, including human papillomavirus (HPV), hepatitis B, and the Mycobacterium bovis Bacillus Calmette-Gu rin (BCG) tuberculosis vaccines, immunotherapies have had a broad and durable impact on cancer therapy and prevention. One classic example of immunotherapy was identified in 1976 with the use of intravesical administration of BCG in patients with bladder cancer; resulting in a 70 % eradication rate and is now standard of care. However, a greater impact from the use of immunotherapy is documented by the prevention of HPV infections that are responsible for 98 % of cervical cancer cases. In 2020, the World Health Organization (WHO) estimated that 341,831 women died from cervical cancer [1]. However, administration of a single dose of a bivalent HPV vaccine was shown to be 97.5 % effective in preventing HPV infections. These vaccines not only prevent cervical squamous cell carcinoma and adenocarcinoma, but also oropharyngeal, anal, vulvar, vaginal, and penile squamous cell carcinomas. The breadth, response and durability of these vaccines can be contrasted with CAR-T-cell therapies, which have significant barriers to their widespread use including logistics, manufacturing limitations, toxicity concerns, financial burden and lasting remissions observed in only 30 to 40 % of responding patients. Another, recent immunotherapy focus are ICIs. ICIs are a class of antibodies that can increase the immune responses against cancer cells in patients. However, ICIs are only effective against tumors with a high mutational burden and are associated with a broad spectrum of toxicities requiring interruption of administration and/or administration corticosteroids; both of which limit immune therapy. In summary, immune therapeutics have a broad impact worldwide, utilizing numerous mechanisms of action and when considered in their totality are more effective against a broader range of tumors than initially considered. These new cancer interventions have tremendous potential notability when multiple mechanisms of immune intervention are combined as well as with standard of care modalities.
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