纳米力学
癌细胞
癌症
细胞骨架
机械生物学
胆固醇
乳腺癌
化学
细胞
癌变
细胞生物学
生物物理学
癌症研究
生物
材料科学
纳米技术
医学
生物化学
内科学
原子力显微镜
作者
Andra C. Dumitru,Danahé Mohammed,Mauriane Maja,Jinsung Yang,Sandrine L. Verstraeten,Aránzazu del Campo,Marie‐Paule Mingeot‐Leclercq,Donatienne Tyteca,David Alsteens
标识
DOI:10.1002/advs.202002643
摘要
Tumor cells present profound alterations in their composition, structural organization, and functional properties. A landmark of cancer cells is an overall altered mechanical phenotype, which so far are linked to changes in their cytoskeletal regulation and organization. Evidence exists that the plasma membrane (PM) of cancer cells also shows drastic changes in its composition and organization. However, biomechanical characterization of PM remains limited mainly due to the difficulties encountered to investigate it in a quantitative and label-free manner. Here, the biomechanical properties of PM of a series of MCF10 cell lines, used as a model of breast cancer progression, are investigated. Notably, a strong correlation between the cell PM elasticity and oncogenesis is observed. The altered membrane composition under cancer progression, as emphasized by the PM-associated cholesterol levels, leads to a stiffening of the PM that is uncoupled from the elastic cytoskeletal properties. Conversely, cholesterol depletion of metastatic cells leads to a softening of their PM, restoring biomechanical properties similar to benign cells. As novel therapies based on targeting membrane lipids in cancer cells represent a promising approach in the field of anticancer drug development, this method contributes to deciphering the functional link between PM lipid content and disease.
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