一种用于克服非小细胞肺癌治疗中抗原异质性的多靶向 CAR-T 细胞平台
A Multi-Targeting Chimeric Antigen Receptor-T Cell Platform to Overcome Antigen Heterogeneity in the Treatment of Non-Small Cell Lung Cancer.
这些发现支持采用多靶点CAR-T 策略来应对NSCLC及可能其他实体瘤中的抗原异质性。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Emerging organoid-immune co-culture models for cancer research: from oncoimmunology to personalized immunotherapies.
Emerging organoid-immune co-culture models for cancer research: from oncoimmunology to personalized immunotherapies.
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在过去十年中,针对免疫系统的治疗已经彻底改变了癌症治疗领域。诸如免疫检查点抑制剂等疗法已被批准作为黑色素瘤和非小细胞肺癌等多种实体瘤的一线治疗,而其他疗法,例如嵌合抗原受体(CAR)淋巴细胞转移疗法,仍处于开发阶段。尽管在一小部分患者中获得了有希望的结果,但由于肿瘤间异质性和治疗耐药性,大多数免疫治疗药物的总体临床疗效仍然有限。
因此,预测患者特异性反应对于高效使用昂贵的免疫治疗药物以及获得更好的结局将具有重要价值。由于许多免疫治疗药物通过增强T细胞对恶性靶细胞的相互作用和/或识别来发挥作用,使用来自同一患者的这些细胞组合进行的体外培养,在以个性化方式预测药物疗效方面具有很大前景。使用二维癌细胞系进行此类培养并不可靠,因为与体内情况相比,细胞的表型行为发生了改变。三维肿瘤来源类器官更好地模拟了体内组织,并被认为是研究复杂肿瘤-免疫相互作用的更现实方法。在这篇综述中,我们概述了患者特异性肿瘤类器官-免疫共培养模型的发展,以研究肿瘤特异性免疫相互作用及其可能的治疗干预。
我们还讨论了这些模型的应用,这些应用提升了个性化治疗疗效以及对肿瘤微环境的理解,例如:(1) 以个性化方式筛选免疫检查点抑制和 CAR 治疗的疗效。(2) 生成用于过继性细胞转移治疗的肿瘤反应性淋巴细胞。(3) 研究肿瘤-免疫相互作用,以检测细胞特异性在肿瘤进展和缓解中的作用。
总体而言,这些肿瘤-免疫共培养可能在开发患者特异性治疗方法以及增进我们对肿瘤-免疫相互作用的理解方面具有广阔前景。
In the past decade, treatments targeting the immune system have revolutionized the cancer treatment field. Therapies such as immune checkpoint inhibitors have been approved as first-line treatment in a variety of solid tumors such as melanoma and non-small cell lung cancer while other therapies, for instance, chimeric antigen receptor (CAR) lymphocyte transfer therapies, are still in development.
Although promising results are obtained in a small subset of patients, overall clinical efficacy of most immunotherapeutics is limited due to intertumoral heterogeneity and therapy resistance.
Therefore, prediction of patient-specific responses would be of great value for efficient use of costly immunotherapeutic drugs as well as better outcomes. Because many immunotherapeutics operate by enhancing the interaction and/or recognition of malignant target cells by T cells, in vitro cultures using the combination of these cells derived from the same patient hold great promise to predict drug efficacy in a personalized fashion.
The use of two-dimensional cancer cell lines for such cultures is unreliable due to altered phenotypical behavior of cells when compared with the in vivo situation. Three-dimensional tumor-derived organoids, better mimic in vivo tissue and are deemed a more realistic approach to study the complex tumor-immune interactions. In this review, we present an overview of the development of patient-specific tumor organoid-immune co-culture models to study the tumor-specific immune interactions and their possible therapeutic infringement.
We also discuss applications of these models which advance personalized therapy efficacy and understanding the tumor microenvironment such as: (1) Screening for efficacy of immune checkpoint inhibition and CAR therapy screening in a personalized manner. (2) Generation of tumor reactive lymphocytes for adoptive cell transfer therapies. (3) Studying tumor-immune interactions to detect cell-specific roles in tumor progression and remission.
Overall, these onco-immune co-cultures might hold a promising future toward developing patient-specific therapeutic approaches as well as increase our understanding of tumor-immune interactions.
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