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用于研究生物物理肿瘤微环境的基于胶原蛋白的仿生系统

Collagen-Based Biomimetic Systems to Study the Biophysical Tumour Microenvironment.

作者信息

Cambi Alessandra, Ventre Maurizio

机构信息

Department of Cell Biology, Radboud University Medical Center, Geert Grooteplein Zuid 26-28, 6525 GA Nijmegen, The Netherlands.

Department of Chemical, Materials and Industrial Production Engineering, University of Naples Federico II, 80125 Naples, Italy.

出版信息

Cancers (Basel). 2022 Nov 30;14(23):5939. doi: 10.3390/cancers14235939.

Abstract

The extracellular matrix (ECM) is a pericellular network of proteins and other molecules that provides mechanical support to organs and tissues. ECM biophysical properties such as topography, elasticity and porosity strongly influence cell proliferation, differentiation and migration. The cell's perception of the biophysical microenvironment (mechanosensing) leads to altered gene expression or contractility status (mechanotransduction). Mechanosensing and mechanotransduction have profound implications in both tissue homeostasis and cancer. Many solid tumours are surrounded by a dense and aberrant ECM that disturbs normal cell functions and makes certain areas of the tumour inaccessible to therapeutic drugs. Understanding the cell-ECM interplay may therefore lead to novel and more effective therapies. Controllable and reproducible cell culturing systems mimicking the ECM enable detailed investigation of mechanosensing and mechanotransduction pathways. Here, we discuss ECM biomimetic systems. Mainly focusing on collagen, we compare and contrast structural and molecular complexity as well as biophysical properties of simple 2D substrates, 3D fibrillar collagen gels, cell-derived matrices and complex decellularized organs. Finally, we emphasize how the integration of advanced methodologies and computational methods with collagen-based biomimetics will improve the design of novel therapies aimed at targeting the biophysical and mechanical features of the tumour ECM to increase therapy efficacy.

摘要

细胞外基质(ECM)是一种细胞周围的蛋白质和其他分子网络,为器官和组织提供机械支持。ECM的生物物理特性,如拓扑结构、弹性和孔隙率,强烈影响细胞的增殖、分化和迁移。细胞对生物物理微环境的感知(机械传感)会导致基因表达或收缩状态的改变(机械转导)。机械传感和机械转导在组织稳态和癌症中都具有深远意义。许多实体瘤被致密且异常的ECM所包围,这会干扰正常细胞功能,并使肿瘤的某些区域无法被治疗药物触及。因此,了解细胞与ECM的相互作用可能会带来新的、更有效的治疗方法。模仿ECM的可控且可重复的细胞培养系统能够详细研究机械传感和机械转导途径。在此,我们讨论ECM仿生系统。主要聚焦于胶原蛋白,我们比较并对比了简单二维基质、三维纤维状胶原凝胶、细胞衍生基质和复杂脱细胞器官的结构和分子复杂性以及生物物理特性。最后,我们强调先进方法和计算方法与基于胶原蛋白的仿生学的整合将如何改进旨在针对肿瘤ECM的生物物理和机械特征以提高治疗效果的新疗法的设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5956/9739814/83648da97f35/cancers-14-05939-g001.jpg

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