TY - GEN
T1 - Monitoring of live cell cultures during apoptosis by phase imaging and Raman spectroscopy
AU - Sharikova, Anna
AU - Saide, George
AU - Sfakis, Lauren
AU - Park, Jun Yong
AU - Desta, Habben
AU - Maloney, Maxwell C.
AU - Castracane, James
AU - Mahajan, Supriya D.
AU - Khmaladze, Alexander
N1 - Publisher Copyright:
© 2017 SPIE.
PY - 2017
Y1 - 2017
N2 - Non-invasive live cell measurements are an important tool in biomedical research. We present a combined digital holography/Raman spectroscopy technique to study live cell cultures during apoptosis. Digital holographic microscopy records an interference pattern between object and reference waves, so that the computationally reconstructed holographic image contains both amplitude and phase information about the sample. When the phase is mapped across the sample and converted into height information for each pixel, a three dimensional image is obtained. The measurement of live cell cultures by digital holographic microscopy yields information about cell shape and volume, changes to which are reflective of alterations in cell cycle and initiation of cell death mechanisms. Raman spectroscopy, on the other hand, is sensitive to rotational and vibrational molecular transitions, as well as intermolecular vibrations. Therefore, Raman spectroscopy provides complementary information about cells, such as protein, lipid and nucleic acid content, and, particularly, the spectral signatures associated with structural changes in molecules. The cell cultures are kept in the temperature-controlled environmental chamber during the experiment, which allows monitoring over multiple cell cycles. The DHM system combines a visible (red) laser source with conventional microscope base, and LabVIEW-run data processing. We analyzed and compared cell culture information obtained by these two methods.
AB - Non-invasive live cell measurements are an important tool in biomedical research. We present a combined digital holography/Raman spectroscopy technique to study live cell cultures during apoptosis. Digital holographic microscopy records an interference pattern between object and reference waves, so that the computationally reconstructed holographic image contains both amplitude and phase information about the sample. When the phase is mapped across the sample and converted into height information for each pixel, a three dimensional image is obtained. The measurement of live cell cultures by digital holographic microscopy yields information about cell shape and volume, changes to which are reflective of alterations in cell cycle and initiation of cell death mechanisms. Raman spectroscopy, on the other hand, is sensitive to rotational and vibrational molecular transitions, as well as intermolecular vibrations. Therefore, Raman spectroscopy provides complementary information about cells, such as protein, lipid and nucleic acid content, and, particularly, the spectral signatures associated with structural changes in molecules. The cell cultures are kept in the temperature-controlled environmental chamber during the experiment, which allows monitoring over multiple cell cycles. The DHM system combines a visible (red) laser source with conventional microscope base, and LabVIEW-run data processing. We analyzed and compared cell culture information obtained by these two methods.
KW - Digital Holographic Microscopy
KW - Live Cell Imaging
KW - Phase imaging
KW - Phase Reconstruction
KW - Raman Spectroscopy
UR - https://www.scopus.com/pages/publications/85020459677
U2 - 10.1117/12.2256134
DO - 10.1117/12.2256134
M3 - Conference contribution
AN - SCOPUS:85020459677
T3 - Progress in Biomedical Optics and Imaging - Proceedings of SPIE
BT - Quantitative Phase Imaging III
A2 - Popescu, Gabriel
A2 - Park, YongKeun
PB - SPIE
T2 - Quantitative Phase Imaging III
Y2 - 29 January 2017 through 31 January 2017
ER -