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:Scalable generation of functional human iPSC-derived CAR-macrophages that efficiently eradicate CD19-positive leukemia.
Scalable generation of functional human iPSC-derived CAR-macrophages that efficiently eradicate CD19-positive leukemia.
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我们的工作为源自多种干细胞来源的 CAR-巨噬细胞的开创性应用和行为提供了见解,同时引入了一种独特的 CAR-巨噬细胞制造技术,所有这些都致力于 CAR-巨噬细胞在抗癌免疫治疗领域的临床转化。
巨噬细胞近年来已成为癌症免疫治疗中具有吸引力的治疗手段。巨噬细胞浸润并影响实体恶性肿瘤的潜力,使其成为嵌合抗原受体(CAR)技术的有前景的靶标,可重定向其极化阶段,从而增强其抗癌能力。鉴于对CAR-巨噬细胞日益增长的兴趣,迄今为止此类细胞的生成主要依赖于外周血单核细胞,这些细胞在基因操作前从相应供者中分离。该过程耗时且成本高,而在某些情况下,从供者中可回收的单核细胞数量不足,从而阻碍了该技术的广泛适用性。因此,我们展示了利用多种干细胞来源生成CAR-巨噬细胞及其有效性,同时采用了用于下一代免疫细胞培养的现代放大技术。
使用原代人造血干细胞和祖细胞以及诱导多能干细胞来衍生抗CD19 CAR-巨噬细胞。在共培养系统中展示了这些细胞的抗癌活性,包括来自白血病患者的主要材料。生物反应器技术促进了CAR-巨噬细胞的生成,并使用单细胞RNA(scRNA)测序来深入表征CAR-巨噬细胞的反应和行为。
无论干细胞来源如何,CAR-巨噬细胞均表现出对CD19+靶癌细胞的增强且抗原依赖性吞噬作用,并伴有促炎反应增强。CAR-巨噬细胞的吞噬能力取决于靶细胞CD19表达水平,对CD19+癌细胞系和患者来源的急性淋巴细胞白血病癌细胞具有优越功能。scRNA测序显示,与靶细胞共培养后,CAR-巨噬细胞与eGFP对照细胞明显不同,包括促炎通路的激活以及与适应性免疫细胞募集相关的趋化因子和细胞因子上调,有利于CAR-巨噬细胞向促炎状态复极化。综上所述,这些数据突出了CAR-巨噬细胞的独特特征,并结合使用三维分化方案和中等规模生物反应器成功实现了生产流程的放大。
Macrophages have recently become attractive therapeutics in cancer immunotherapy. The potential of macrophages to infiltrate and influence solid malignancies makes them promising targets for the chimeric antigen receptor (CAR) technology to redirect their stage of polarization, thus enhancing their anticancer capacities. Given the emerging interest for CAR-macrophages, generation of such cells so far mainly depends on peripheral blood monocytes, which are isolated from the respective donor prior to genetic manipulation. This procedure is time-intensive and cost-intensive, while, in some cases, insufficient monocyte amounts can be recovered from the donor, thus hampering the broad applicability of this technology. Hence, we demonstrate the generation and effectiveness of CAR-macrophages from various stem cell sources using also modern upscaling technologies for next generation immune cell farming.
Primary human hematopoietic stem and progenitor cells and induced pluripotent stem cells were used to derive anti-CD19 CAR-macrophages. Anticancer activity of the cells was demonstrated in co-culture systems, including primary material from patients with leukemia. Generation of CAR-macrophages was facilitated by bioreactor technologies and single-cell RNA (scRNA) sequencing was used to characterize in-depth response and behavior of CAR-macrophages.
Irrespective of the stem-cell source, CAR-macrophages exhibited enhanced and antigen-dependent phagocytosis of CD19 + target cancer cells with increased pro-inflammatory responses. Phagocytic capacity of CAR-macrophages was dependent on target cell CD19 expression levels with superior function of CAR-macrophages against CD19 + cancer cell lines and patient-derived acute lymphocytic leukemia cancer cells. scRNA sequencing revealed CAR-macrophages to be distinct from eGFP control cells after co-culture with target cells, which includes the activation of pro-inflammatory pathways and upregulation of chemokines and cytokines associated with adaptive immune cell recruitment, favoring the repolarization of CAR-macrophages to a pro-inflammatory state. Taken together, the data highlight the unique features of CAR-macrophages in combination with the successful upscaling of the production pipeline using a three-dimensional differentiation protocol and intermediate scale bioreactors.
In summary, our work provides insights into the seminal use and behavior of CAR-macrophages which are derived from various sources of stem cells, while introducing a unique technology for CAR-macrophage manufacturing, all dedicated to the clinical translation of CAR-macrophages within the field of anticancer immunotherapies.
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