Title :
High Resolution Phase-Sensitive Magnetomotive Optical Coherence Microscopy for Tracking Magnetic Microbeads and Cellular Mechanics
Author :
Crecea, Vasilica ; Graf, Benedikt W. ; Taewoo Kim ; Popescu, Gabriel ; Boppart, Stephen A.
Author_Institution :
Dept. of Phys., Univ. of Illinois at UrbanaChampaign, Urbana, IL, USA
Abstract :
We present a real-time multimodal near-infrared imaging technology that tracks externally-induced axial motion of magnetic microbeads in single cells in culture. The integrated multimodal imaging technique consists of phase-sensitive magnetomotive optical coherence microscopy (MM-OCM) and multiphoton microscopy (MPM). MPM is utilized for the visualization of multifunctional fluorescent and magnetic microbeads, while MM-OCM detects, with nanometer-scale sensitivity, periodic displacements of the microbeads induced by the modulation of an external magnetic field. Magnetomotive signals are measured from mouse macrophages, human breast primary ductal carcinoma cells, and human breast epithelial cells in culture, and validated with full-field phase-sensitive microscopy. This methodology demonstrates the capability for imaging controlled cell dynamics and has the potential for measuring cell biomechanical properties, which are important in assessing the health and pathological state of cells.
Keywords :
biological tissues; biomedical optical imaging; cancer; cellular biophysics; infrared imaging; magnetic particles; multiphoton spectroscopy; optical microscopy; MPM; cellular mechanics; external magnetic field modulation; externally induced magnetic microbead axial motion; full field phase sensitive microscopy; high resolution optical coherence microscopy; human breast epithelial cells; human breast primary ductal carcinoma cells; integrated multimodal imaging technique; magnetic microbead tracking; magnetic microbeads visualization; magnetomotive optical coherence microscopy; magnetomotive signals; microbead periodic displacements; mouse macrophage; multifunctional fluorescent microbead visualization; multiphoton microscopy; nanometer scale sensitivity; phase sensitive MM-OCM; phase sensitive optical coherence microscopy; real time multimodal near infrared imaging technology; single cells; Laser beams; Magnetic field measurement; Magnetic force microscopy; Magnetic resonance imaging; Micromagnetics; Microscopy; Cellular biomechanics; magnetic tweezers; multimodal microscopy; multiphoton microscopy (MPM); optical coherence tomography (OCT);
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2013.2280501