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Article Dans Une Revue Biosensors and Bioelectronics Année : 2015

Real-time QCM-D monitoring of cancer cell death events in a dynamic context.

Résumé

Since a few years, the acoustic sensing of whole cell is the focus of increasing interest for monitoring the cytoskeletal cellular response to morphological modulators. We aimed at illustrating the potentialities of the quartz crystal microbalance with dissipation (QCM-D) technique for the real-time detection of the earliest morphological changes that occur at the cell-substrate interface during programmed cell death. Human breast cancer cells (MCF-7) grown on serum protein-coated gold sensors were placed in dynamic conditions under a continuous medium flow. The mass and viscoelasticity changes of the cells were tracked by monitoring the frequency and dissipation shifts during the first 4 h of cell exposure to staurosporine, a well-known apoptosis inducer. We have identified a QCM-D signature characteristic of morphological modifications and cell detachment from the sensing surface that are related to the pro-apoptotic treatment. In particular, for low staurosporine doses below 1 µM, we showed that recording the dissipation shift allows to detect an early cell response which is undetectable after the same duration by the classical analytical techniques in cell biology. Furthermore, this sensing method allows quantifying the efficiency of the drug effect in less than 4 h without requiring labeling and without interfering in the system, thus preventing any loss of information. In the actual context of targeted cancer therapy development, we believe that these results bring new insights in favor of the use of the non invasive QCM-D technique for quickly probing the cancer cell sensitivity to death inducer drugs.
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Dates et versions

hal-01344758 , version 1 (12-07-2016)

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L. Nowacki, J. Follet, M. Vayssade, P. Vigneron, F. Cambay, et al.. Real-time QCM-D monitoring of cancer cell death events in a dynamic context.. Biosensors and Bioelectronics, 2015, 64, pp.469-476. ⟨10.1016/j.bios.2014.09.065⟩. ⟨hal-01344758⟩
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