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用于评估乳腺癌转移的仿生微流控平台

Biomimetic Microfluidic Platforms for the Assessment of Breast Cancer Metastasis.

作者信息

Sigdel Indira, Gupta Niraj, Faizee Fairuz, Khare Vishwa M, Tiwari Amit K, Tang Yuan

机构信息

Biofluidics Laboratory, Department of Bioengineering, College of Engineering, University of Toledo, Toledo, OH, United States.

Eurofins Lancaster Laboratories, Philadelphia, PA, United States.

出版信息

Front Bioeng Biotechnol. 2021 Mar 11;9:633671. doi: 10.3389/fbioe.2021.633671. eCollection 2021.

Abstract

Of around half a million women dying of breast cancer each year, more than 90% die due to metastasis. Models necessary to understand the metastatic process, particularly breast cancer cell extravasation and colonization, are currently limited and urgently needed to develop therapeutic interventions necessary to prevent breast cancer metastasis. Microfluidic approaches aim to reconstitute functional units of organs that cannot be modeled easily in traditional cell culture or animal studies by reproducing vascular networks and parenchyma on a chip in a three-dimensional, physiologically relevant system. In recent years, microfluidics models utilizing innovative biomaterials and micro-engineering technologies have shown great potential in our effort of mechanistic understanding of the breast cancer metastasis cascade by providing 3D constructs that can mimic cellular microenvironment and the ability to visualize and monitor cellular interactions in real-time. In this review, we will provide readers with a detailed discussion on the application of the most up-to-date, state-of-the-art microfluidics-based breast cancer models, with a special focus on their application in the engineering approaches to recapitulate the metastasis process, including invasion, intravasation, extravasation, breast cancer metastasis organotropism, and metastasis niche formation.

摘要

在每年约50万死于乳腺癌的女性中,超过90%死于转移。目前,理解转移过程所必需的模型,尤其是乳腺癌细胞外渗和定植模型非常有限,迫切需要开发预防乳腺癌转移所需的治疗干预措施。微流控方法旨在通过在芯片上以三维、生理相关系统再现血管网络和实质,重建在传统细胞培养或动物研究中不易建模的器官功能单元。近年来,利用创新生物材料和微工程技术的微流控模型,通过提供能够模拟细胞微环境的3D构建体以及实时可视化和监测细胞相互作用的能力,在我们对乳腺癌转移级联的机理理解方面显示出巨大潜力。在这篇综述中,我们将向读者详细讨论最新的、最先进的基于微流控的乳腺癌模型的应用,特别关注它们在概括转移过程的工程方法中的应用,包括侵袭、内渗、外渗、乳腺癌转移器官趋向性和转移小生境形成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6be/7992012/902edea4a3d3/fbioe-09-633671-g001.jpg

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