Abstract
By monitoring coenzyme autofluorescence modifications. as an indicator of cell damage. the cellular response to femtosecond near‐infrared (NIR) radiation (two‐photon absorption) was compared with exposure to low‐power UV A radiation (one‐photon absorption). Excitation radiation from a tunable Ti‐sapphire laser. focused through highnumerical‐ aperture microscope optics. provided diffractionlimited mlcrobeams of an adjustable peak power. Laser scanning NIR microscopy was used to detect spatially the intracellular distribution of fluorescent coenzymes by fluorescence intensity imaging as well as fluorescence lifetime imaging ( T ‐mapping). Upon the onset of UV or NIR exposure. Chinese hamster ovary cells exhibited blue/green autofluorescence witq a mean lifetime of 2·2 ns. which was attributed to NAD(P)H in mitochondria. Exposure to 365 nm radiation from a high‐pressure mercury lamp (1 m W. 300 J cm ‐2 ) resulted in oxidative stress correlated with increased autofluorescence intensity. onset of nuclear fluorescence. and a fluorescence lifetime decrease. The cellular response to femtosecond NIR micro beams depended significantly on peak power. Peak powers above a threshold value of about 0·5kW (average power: 6mW). 0·55kW (7mW) and 0·8kW (lOmW) at 730nm. 760nm and 800nm. respectively. resulted in the onset of short‐lived luminescence with higher intensity (100x) than the intracellular NAD(P)H fluorescence. This luminescence. accompanied by destruction of cellular morphology. was localized and occurred in the mitochondrial region. In contrast. beams at a power of less than 0·5 kW allowed nondestructive fluorophore detection with high spatial and temporal resolution without modification of cellular redox state or cell morphology.
Cite
CITATION STYLE
KÖNIG, K., SO, P. T. C., MANTULIN, W. W., TROMBERG, B. J., & GRATTON, E. (1996). Two‐photon excited lifetime imaging of autofluorescence in cells during UV A and NIR photostress. Journal of Microscopy, 183(3), 197–204. https://doi.org/10.1046/j.1365-2818.1996.910650.x
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.