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Insights into the mechanobiology of cancer metastasis via microfluidic technologies

Lanfeng Liang, Xiao Song, Hao Zhao, Chwee Teck Lim

2024APL Bioengineering16 citationsDOIOpen Access PDF

Abstract

During cancer metastasis, cancer cells will encounter various microenvironments with diverse physical characteristics. Changes in these physical characteristics such as tension, stiffness, viscosity, compression, and fluid shear can generate biomechanical cues that affect cancer cells, dynamically influencing numerous pathophysiological mechanisms. For example, a dense extracellular matrix drives cancer cells to reorganize their cytoskeleton structures, facilitating confined migration, while this dense and restricted space also acts as a physical barrier that potentially results in nuclear rupture. Identifying these pathophysiological processes and understanding their underlying mechanobiological mechanisms can aid in the development of more effective therapeutics targeted to cancer metastasis. In this review, we outline the advances of engineering microfluidic devices in vitro and their role in replicating tumor microenvironment to mimic in vivo settings. We highlight the potential cellular mechanisms that mediate their ability to adapt to different microenvironments. Meanwhile, we also discuss some important mechanical cues that still remain challenging to replicate in current microfluidic devices in future direction. While much remains to be explored about cancer mechanobiology, we believe the developments of microfluidic devices will reveal how these physical cues impact the behaviors of cancer cells. It will be crucial in the understanding of cancer metastasis, and potentially contributing to better drug development and cancer therapy.

Topics & Concepts

MechanobiologyCancer cellMetastasisCancerTumor microenvironmentNeuroscienceMechanotransductionExtracellular matrixMicrofluidicsCancer metastasisIntravasationNanotechnologyBiologyCell biologyMaterials scienceGeneticsCellular Mechanics and Interactions3D Printing in Biomedical ResearchCancer Cells and Metastasis
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