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在体肿瘤芯片平台研究肿瘤微环境中的细胞间相互作用。

Ex Vivo Tumor-on-a-Chip Platforms to Study Intercellular Interactions within the Tumor Microenvironment.

机构信息

Department of Biomedical Engineering, Duke University, Durham, NC, 27710, USA.

Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC, 27710, USA.

出版信息

Adv Healthc Mater. 2019 Feb;8(4):e1801198. doi: 10.1002/adhm.201801198. Epub 2018 Dec 5.

Abstract

The emergence of immunotherapies and recent FDA approval of several of them makes them a promising therapeutic strategy for cancer. While these advancements underscore the potential of engaging the immune system to target tumors, this approach has so far been efficient only for certain cancers. Extending immunotherapy as a widely acceptable treatment for various cancers requires a deeper understanding of the interactions of tumor cells within the tumor microenvironment (TME). The immune cells are a key component of the TME, which also includes other stromal cells, soluble factors, and extracellular matrix-based cues. While in vivo studies function as a gold standard, tissue-engineered microphysiological tumor models can offer patient-specific insights into cancer-immune interactions. These platforms, which recapitulate cellular and non-cellular components of the TME, enable a systematic understanding of the contribution of each component toward disease progression in isolation and in concert. Microfluidic-based microphysiological platforms recreating these environments, also known as "tumor-on-a-chip," are increasingly being utilized to study the effect of various elements of TME on tumor development. Herein are reviewed advancements in tumor-on-a-chip technology that are developed and used to understand the interaction of tumor cells with other surrounding cells, including immune cells, in the TME.

摘要

免疫疗法的出现以及最近 FDA 对其中几种疗法的批准,使它们成为癌症治疗的一种有前途的策略。尽管这些进展突显了利用免疫系统靶向肿瘤的潜力,但到目前为止,这种方法仅对某些癌症有效。要将免疫疗法扩展为各种癌症的广泛可接受的治疗方法,需要更深入地了解肿瘤细胞在肿瘤微环境 (TME) 中的相互作用。免疫细胞是 TME 的关键组成部分,TME 还包括其他基质细胞、可溶性因子和基于细胞外基质的线索。虽然体内研究是黄金标准,但组织工程化微生理肿瘤模型可以为癌症免疫相互作用提供患者特异性的见解。这些平台重现了 TME 的细胞和非细胞成分,使我们能够系统地了解每个成分在单独和协同作用下对疾病进展的贡献。基于微流控的微生理平台再现了这些环境,也称为“芯片上肿瘤”,越来越多地用于研究 TME 中的各种元素对肿瘤发展的影响。本文综述了肿瘤芯片技术的进展,这些技术被开发和用于了解肿瘤细胞与 TME 中其他周围细胞(包括免疫细胞)的相互作用。

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