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捕捉肿瘤基质的时空动态,用于优化芯片上的靶向纳米医学微环境。

Capturing the spatial and temporal dynamics of tumor stroma for on-chip optimization of microenvironmental targeting nanomedicine.

机构信息

Center for Advanced Biomaterials for Health Care@CRIB Istituto Italiano di Tecnologia, Largo Barsanti e Matteucci n. 53, 80125 Napoli, Italy.

Department of Chemical, Materials and Industrial Production Engineering (DICMAPI) and Interdisciplinary Research Centre on Biomaterials (CRIB), University of Napoli Federico II, P.le Tecchio 80, 80125 Napoli, Italy.

出版信息

Lab Chip. 2022 Dec 20;23(1):25-43. doi: 10.1039/d2lc00611a.

Abstract

Malignant cells grow in a complex microenvironment that plays a key role in cancer progression. The "dynamic reciprocity" existing between cancer cells and their microenvironment is involved in cancer differentiation, proliferation, invasion, metastasis, and drug response. Therefore, understanding the molecular mechanisms underlying the crosstalk between cancer cells and their surrounding tissue (, tumor stroma) and how this interplay affects the disease progression is fundamental to design and validate novel nanotherapeutic approaches. As an important regulator of tumor progression, metastasis and therapy resistance, the extracellular matrix of tumors, the acellular component of the tumor microenvironment, has been identified as very promising target of anticancer treatment, revolutionizing the traditional therapeutic paradigm that sees the neoplastic cells as the preferential objective to fight cancer. To design and to validate such a target therapy, advanced 3D preclinical models are necessary to correctly mimic the complex, dynamic and heterogeneous tumor microenvironment. In addition, the recent advancement in microfluidic technology allows fine-tuning and controlling microenvironmental parameters in tissue-on-chip devices in order to emulate the conditions. In this review, after a brief description of the origin of tumor microenvironment heterogeneity, some examples of nanomedicine approaches targeting the tumor microenvironment have been reported. Further, how advanced 3D bioengineered tumor models coupled with a microfluidic device can improve the design and testing of anti-cancer nanomedicine targeting the tumor microenvironment has been discussed. We highlight that the presence of a dynamic extracellular matrix, able to capture the spatiotemporal heterogeneity of tumor stroma, is an indispensable requisite for tumor-on-chip model and nanomedicine testing.

摘要

恶性细胞在复杂的微环境中生长,微环境在癌症进展中起着关键作用。癌细胞与其微环境之间存在的“动态相互作用”涉及癌症分化、增殖、侵袭、转移和药物反应。因此,了解癌细胞与其周围组织(肿瘤基质)之间串扰的分子机制,以及这种相互作用如何影响疾病进展,对于设计和验证新型纳米治疗方法至关重要。肿瘤进展、转移和治疗耐药性的重要调节因子肿瘤细胞外基质,即肿瘤微环境的无细胞成分,已被确定为很有前途的抗癌治疗靶点,彻底改变了将肿瘤细胞视为对抗癌症的首选目标的传统治疗模式。为了设计和验证这种靶向治疗,需要先进的 3D 临床前模型来正确模拟复杂、动态和异质的肿瘤微环境。此外,微流控技术的最新进展允许在组织芯片设备中微调和控制微环境参数,以模拟条件。在这篇综述中,简要描述了肿瘤微环境异质性的起源之后,报告了一些针对肿瘤微环境的纳米医学方法的例子。此外,还讨论了先进的 3D 生物工程肿瘤模型与微流控装置相结合如何改进针对肿瘤微环境的抗癌纳米医学的设计和测试。我们强调,具有能够捕获肿瘤基质时空异质性的动态细胞外基质是肿瘤芯片模型和纳米医学测试所必需的。

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