Multimodal analysis of traction forces and the temperature dynamics of living cells with a diamond-embedded substrate.
Tomasz KołodziejMariusz MrózekSaravanan SengottuvelMaciej J GłowackiMateusz FicekWojciech GawlikZenon RajfurAdam M WojciechowskiPublished in: Biomedical optics express (2024)
Cells and tissues are constantly exposed to chemical and physical signals that regulate physiological and pathological processes. This study explores the integration of two biophysical methods: traction force microscopy (TFM) and optically detected magnetic resonance (ODMR) to concurrently assess cellular traction forces and the local relative temperature. We present a novel elastic substrate with embedded nitrogen-vacancy microdiamonds that facilitate ODMR-TFM measurements. Optimization efforts focused on minimizing sample illumination and experiment duration to mitigate biological perturbations. Our hybrid ODMR-TFM technique yields TFM maps and achieves approximately 1 K precision in relative temperature measurements. Our setup employs a simple wide-field fluorescence microscope with standard components, demonstrating the feasibility of the proposed technique in life science laboratories. By elucidating the physical aspects of cellular behavior beyond the existing methods, this approach opens avenues for a deeper understanding of cellular processes and may inspire the development of diverse biomedical applications.
Keyphrases
- single molecule
- living cells
- magnetic resonance
- physical activity
- fluorescent probe
- mental health
- induced apoptosis
- public health
- gene expression
- high resolution
- cell cycle arrest
- magnetic resonance imaging
- quality improvement
- high speed
- pain management
- computed tomography
- cell proliferation
- optical coherence tomography
- cell death
- signaling pathway
- mass spectrometry
- energy transfer