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Microfabrication-Based Three-Dimensional (3-D) Extracellular Matrix Microenvironments for Cancer and Other Diseases

机译:基于微加工的三维(3-D)细胞外基质微环境用于治疗癌症和其他疾病

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摘要

Exploring the complicated development of tumors and metastases needs a deep understanding of the physical and biological interactions between cancer cells and their surrounding microenvironments. One of the major challenges is the ability to mimic the complex 3-D tissue microenvironment that particularly influences cell proliferation, migration, invasion, and apoptosis in relation to the extracellular matrix (ECM). Traditional cell culture is unable to create 3-D cell scaffolds resembling tissue complexity and functions, and, in the past, many efforts were made to realize the goal of obtaining cell clusters in hydrogels. However, the available methods still lack a precise control of cell external microenvironments. Recently, the rapid development of microfabrication techniques, such as 3-D printing, microfluidics, and photochemistry, has offered great advantages in reconstructing 3-D controllable cancer cell microenvironments in vitro. Consequently, various biofunctionalized hydrogels have become the ideal candidates to help the researchers acquire some new insights into various diseases. Our review will discuss some important studies and the latest progress regarding the above approaches for the production of 3-D ECM structures for cancer and other diseases. Especially, we will focus on new discoveries regarding the impact of the ECM on different aspects of cancer metastasis, e.g., collective invasion, enhanced intravasation by stress and aligned collagen fibers, angiogenesis regulation, as well as on drug screening.
机译:探索肿瘤和转移的复杂发展需要深入了解癌细胞及其周围微环境之间的物理和生物学相互作用。主要挑战之一是模仿复杂的3-D组织微环境的能力,该环境特别影响与细胞外基质(ECM)相关的细胞增殖,迁移,侵袭和凋亡。传统的细胞培养无法创建类似于组织复杂性和功能的3-D细胞支架,并且在过去,人们做出了许多努力来实现在水凝胶中获得细胞簇的目标。但是,可用的方法仍然缺乏对细胞外部微环境的精确控制。近来,诸如3-D打印,微流体和光化学之类的微制造技术的迅速发展,在体外重建3-D可控制的癌细胞微环境方面提供了巨大的优势。因此,各种生物功能化的水凝胶已成为帮助研究人员获得对各种疾病的一些新见解的理想人选。我们的评论将讨论有关用于癌症和其他疾病的3-D ECM结构生产的上述方法的一些重要研究和最新进展。尤其是,我们将专注于有关ECM对癌症转移的不同方面的影响的新发现,例如集体入侵,应力和胶原蛋白纤维排列增强的血管内介入,血管生成调节以及药物筛选。

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