工程化益生菌用于肿瘤靶向联合化学免疫治疗
Engineered probiotics for tumor-targeted combination chemoimmunotherapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Understanding and improving cellular immunotherapies against cancer: From cell-manufacturing to tumor-immune models.
Understanding and improving cellular immunotherapies against cancer: From cell-manufacturing to tumor-immune models.
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肿瘤微环境(TME)由癌前和癌性肿瘤细胞与基质细胞(如上皮细胞、成纤维细胞、内皮细胞和造血来源的免疫细胞)之间动态的代谢和免疫相互作用所塑造。TME的代谢状态,包括缺氧和酸性微环境,影响基质细胞和免疫细胞的免疫抑制表型,从而赋予对宿主介导的肿瘤杀伤和治疗药物的耐药性。目前正在开发多种用于研究免疫疗法(包括细胞疗法)的体外TME平台。
然而,我们尚不清楚哪些免疫和基质组分最为关键,以及需要多少模型复杂度才能回答特定问题。此外,用于可重复制造这些平台的合适TME细胞的可扩展来源和质量控制仍然具有挑战性。在这方面,免疫调节性细胞疗法制造的经验可提供有益的指导。尽管免疫细胞疗法在血液系统恶性肿瘤中显示出前所未有的疗效,并在实体瘤中展现出前景,但其制造面临显著的规模、成本和质量控制挑战。本综述首先概述体内TME,讨论肿瘤-免疫景观中最具影响力的细胞群体。接下来,我们总结当前针对癌症的细胞疗法及相关制造平台。然后,我们评估当前的TME和免疫疗法免疫-肿瘤模型,重点介绍其复杂性、结构、功能和细胞来源。
最后,我们提出了细胞制造系统和免疫-TME模型中存在的技术和基础知识空白,这些空白必须得到解决,以阐明内源性肿瘤免疫与外源性工程免疫之间的相互作用。
The tumor microenvironment (TME) is shaped by dynamic metabolic and immune interactions between precancerous and cancerous tumor cells and stromal cells like epithelial cells, fibroblasts, endothelial cells, and hematopoietically-derived immune cells.
The metabolic states of the TME, including the hypoxic and acidic niches, influence the immunosuppressive phenotypes of the stromal and immune cells, which confers resistance to both host-mediated tumor killing and therapeutics. Numerous in vitro TME platforms for studying immunotherapies, including cell therapies, are being developed.
However, we do not yet understand which immune and stromal components are most critical and how much model complexity is needed to answer specific questions.
In addition, scalable sourcing and quality-control of appropriate TME cells for reproducibly manufacturing these platforms remain challenging. In this regard, lessons from the manufacturing of immunomodulatory cell therapies could provide helpful guidance.
Although immune cell therapies have shown unprecedented results in hematological cancers and hold promise in solid tumors, their manufacture poses significant scale, cost, and quality control challenges. This review first provides an overview of the in vivo TME, discussing the most influential cell populations in the tumor-immune landscape. Next, we summarize current approaches for cell therapies against cancers and the relevant manufacturing platforms.
We then evaluate current immune-tumor models of the TME and immunotherapies, highlighting the complexity, architecture, function, and cell sources.
Finally, we present the technical and fundamental knowledge gaps in both cell manufacturing systems and immune-TME models that must be addressed to elucidate the interactions between endogenous tumor immunity and exogenous engineered immunity.
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