Quantification of green fluorescent protein fluorescence using real-time PCR thermal cycler.
نویسندگان
چکیده
Benchmarks Fluorescent proteins have become a widely used transgenic marker in the last decade because they spontaneously form fluorophores without the need for other gene products, they do not require external substrates, and they enable real-time monitoring in intact organisms. The currently available fluorescent proteins belong to either one of two families: the green fluorescent protein (GFP) family, originating from the jellyfish Aequorea victoria, and the reef coral fluorescent protein (RCFP) family, originating from reef corals. These fluorescent proteins and their mutants with altered spectral characters span emission spectra from 480–620 nm. There are two broad groups of applications for fluorescent proteins as transgenic markers. The first group includes the labeling of whole organisms (1), the subcellular local-ization of cells and proteins (2), the analysis of tissue specificity of gene expression, and fluorescence-activated cell sorting. These applications require semiquantitative detection in space or time and use imaging technologies, such as macroscopic fluorescence imaging systems (3) and confocal fluorescence microscopy (4), to detect the fluorescent targets. The second group of applications consists of bioassays that require accurate quantification of fluorescence in either solution or in living cells. For example, bacteria and yeast that synthesize GFP after contact with chemicals that bind to human estrogen receptors have been developed as bioassays for environmental estrogens (5–7). Such bioassays are usually applied to a large number of samples, requiring the use of a fluorometer that can read microtiter plates. Since microtiter plate fluorom-eters are not common equipment found in a molecular biology laboratory, we determined that real-time thermal cyclers can replace fluorometers for the quantification of fluorescent proteins. Real-time thermal cyclers monitor the progress of PCR by measuring the fluorescence of an intercalating dye or a fluorophore attached to a DNA hybridization probe. Most thermal cyclers use heating blocks that have a standard 96-well microtiter dish format, so they also can be used as microtiter plate fluorometers—provided that the excitation and emission wavelengths of the fluorescent protein in question match the specification of the thermal cycler, and that the fluorescence reading is returned in a digital form. Thermal cyclers that have monochro-matic light sources are inherently limited in their excitation wavelength. Systems with a halogen lamp for its light source are more flexible, having full control of the spectral characters possible through the choice of filter sets. Regardless of the light source, the suitability of any real-time thermal cycler for the quantification of a …
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عنوان ژورنال:
- BioTechniques
دوره 41 2 شماره
صفحات -
تاریخ انتشار 2006