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超越僵硬:解析黏弹性在癌症演变和治疗反应中的作用。

Beyond stiffness: deciphering the role of viscoelasticity in cancer evolution and treatment response.

机构信息

Leartiker S. Coop., Xemein Etorbidea 12A, 48270 Markina-Xemein, Spain.

BioFab i3D- Biofabrication and 3D (bio)printing Laboratory, University of Granada, 18100 Granada, Spain.

出版信息

Biofabrication. 2024 Jul 24;16(4). doi: 10.1088/1758-5090/ad5705.

Abstract

There is increasing evidence that cancer progression is linked to tissue viscoelasticity, which challenges the commonly accepted notion that stiffness is the main mechanical hallmark of cancer. However, this new insight has not reached widespread clinical use, as most clinical trials focus on the application of tissue elasticity and stiffness in diagnostic, therapeutic, and surgical planning. Therefore, there is a need to advance the fundamental understanding of the effect of viscoelasticity on cancer progression, to develop novel mechanical biomarkers of clinical significance. Tissue viscoelasticity is largely determined by the extracellular matrix (ECM), which can be simulatedusing hydrogel-based platforms. Since the mechanical properties of hydrogels can be easily adjusted by changing parameters such as molecular weight and crosslinking type, they provide a platform to systematically study the relationship between ECM viscoelasticity and cancer progression. This review begins with an overview of cancer viscoelasticity, describing how tumor cells interact with biophysical signals in their environment, how they contribute to tumor viscoelasticity, and how this translates into cancer progression. Next, an overview of clinical trials focused on measuring biomechanical properties of tumors is presented, highlighting the biomechanical properties utilized for cancer diagnosis and monitoring. Finally, this review examines the use of biofabricated tumor models for studying the impact of ECM viscoelasticity on cancer behavior and progression and it explores potential avenues for future research on the production of more sophisticated and biomimetic tumor models, as well as their mechanical evaluation.

摘要

越来越多的证据表明,癌症的进展与组织粘弹性有关,这挑战了人们普遍接受的观点,即硬度是癌症的主要力学特征。然而,这一新的认识尚未得到广泛的临床应用,因为大多数临床试验都集中在组织弹性和硬度在诊断、治疗和手术规划中的应用上。因此,有必要深入了解粘弹性对癌症进展的影响,开发具有临床意义的新型力学生物标志物。组织粘弹性主要由细胞外基质 (ECM) 决定,可以使用基于水凝胶的平台进行模拟。由于水凝胶的机械性能可以通过改变分子量和交联类型等参数轻松调整,因此它们为系统研究 ECM 粘弹性与癌症进展之间的关系提供了一个平台。这篇综述首先概述了癌症粘弹性,描述了肿瘤细胞如何与环境中的生物物理信号相互作用,它们如何促进肿瘤粘弹性,以及这如何转化为癌症进展。接下来,介绍了专注于测量肿瘤生物力学特性的临床试验概述,强调了用于癌症诊断和监测的生物力学特性。最后,本综述考察了生物制造的肿瘤模型在研究 ECM 粘弹性对癌症行为和进展的影响中的应用,并探讨了未来在更复杂和仿生肿瘤模型的制作及其机械评估方面的研究潜力。

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