Resonance Raman spectroscopy of optically trapped functional erythrocytes
- 1 January 2004
- journal article
- research article
- Published by SPIE-Intl Soc Optical Eng in Journal of Biomedical Optics
- Vol. 9 (3) , 593-600
- https://doi.org/10.1117/1.1689336
Abstract
We introduce a novel setup combining a micro-Raman spectrometer with external optical tweezers, suitable for resonance Raman studies of single functional trapped cells. The system differs from earlier setups in that two separate laser beams used for trapping and Raman excitation are combined in a double-microscope configuration. This has the advantage that the wavelength and power of the trapping and probe beam can be adjusted individually to optimize the functionality of the setup and to enable the recording of resonance Raman profiles from a single trapped cell. Trapping is achieved by tightly focusing infrared (IR) diode laser radiation (830 nm) through an inverted oil-immersion objective, and resonance Raman scattering is excited by the lines of an argon:krypton ion laser. The functionality of the system is demonstrated by measurements of trapped single functional erythrocytes using different excitation lines (488.0, 514.5, and 568.2 nm) in resonance with the heme moiety and by studying spectral evolution during illumination. We found that great care has to be taken in order to avoid photodamage caused by the visible Raman excitation, whereas the IR trapping irradiation does not seem to harm the cells or alter the hemoglobin Raman spectra. Stronger photodamage is induced by Raman excitation using 488.0- and 514.5-nm irradiation, compared with excitation with the 568.2-nm line. © 2004 Society of Photo-Optical Instrumentation Engineers.Keywords
This publication has 22 references indexed in Scilit:
- An experimental setup for combining optical tweezers and laser scalpels with advanced imaging techniquesPublished by SPIE-Intl Soc Optical Eng ,2003
- Single Nanoparticle Trapping Using a Raman Tweezers MicroscopeApplied Spectroscopy, 2002
- Laser tweezers and multiphoton microscopes in life sciencesHistochemistry and Cell Biology, 2000
- Characterization of Photodamage to Escherichia coli in Optical TrapsBiophysical Journal, 1999
- Raman investigations on laser-trapped gas bubblesChemical Physics Letters, 1997
- Raman-Mie scattering from single laser trapped microdropletsJournal of Molecular Structure, 1997
- Investigations of multiple component systems by means of optical trapping and Raman spectroscopyJournal of Molecular Structure, 1995
- Raman and Fluorescence Spectra of Single Optically Trapped Microdroplets in EmulsionsApplied Spectroscopy, 1994
- Optical trapping and manipulation of single cells using infrared laser beamsNature, 1987
- Observation of a single-beam gradient force optical trap for dielectric particlesOptics Letters, 1986