Monitoring the mass, eigenfrequency, and quality factor of mammalian cells

Abstract The regulation of mass is essential for the development and homeostasis of cells and multicellular organisms. However, cell mass is also tightly linked to cell mechanical properties, which depend on the time scales at which they are measured and change drastically at the cellular eigenfrequ...

詳細記述

書誌詳細
出版年:Nature Communications
主要な著者: Sophie Herzog, Gotthold Fläschner, Ilaria Incaviglia, Javier Casares Arias, Aaron Ponti, Nico Strohmeyer, Michele M. Nava, Daniel J. Müller
フォーマット: 論文
言語:英語
出版事項: Nature Portfolio 2024-02-01
オンライン・アクセス:https://doi.org/10.1038/s41467-024-46056-7
その他の書誌記述
要約:Abstract The regulation of mass is essential for the development and homeostasis of cells and multicellular organisms. However, cell mass is also tightly linked to cell mechanical properties, which depend on the time scales at which they are measured and change drastically at the cellular eigenfrequency. So far, it has not been possible to determine cell mass and eigenfrequency together. Here, we introduce microcantilevers oscillating in the Ångström range to monitor both fundamental physical properties of the cell. If the oscillation frequency is far below the cellular eigenfrequency, all cell compartments follow the cantilever motion, and the cell mass measurements are accurate. Yet, if the oscillating frequency approaches or lies above the cellular eigenfrequency, the mechanical response of the cell changes, and not all cellular components can follow the cantilever motions in phase. This energy loss caused by mechanical damping within the cell is described by the quality factor. We use these observations to examine living cells across externally applied mechanical frequency ranges and to measure their total mass, eigenfrequency, and quality factor. The three parameters open the door to better understand the mechanobiology of the cell and stimulate biotechnological and medical innovations.
ISSN:2041-1723