共查询到9条相似文献,搜索用时 15 毫秒
1.
Henryk Szmacinski Joseph R. Lakowicz W. J. Lederer K. Nowaczyk Michael L. Johnson 《Journal of fluorescence》1993,3(3):161-167
Fluorescence lifetime imaging microscopy (FLIM) is a new methodology for studying the spatial and temporal dynamics of macromolecule, molecules, and ions in living cells. In FLIM image contrast is derived from the mean fluorescence lifetime at each point in a two-dimensional image. In our case the lifetime was measured by the phase-modulation method. We describe our FLIM apparatus, which consists of a fluorescence microscope, high-speed gated proximity focused MCP image intensifier, and slow-scan CCD camera. To accomplish subnanosecond time-resolved imaging, the gain of the image intensifier is modulated with a high-frequency signal, resulting in stationary phase-sensitive intensity images on the image intensifier. These images are recorded using a cooled slow-scan CCD camera and stored in an image processor. The lifetime images are created from a series of phase-sensitive images at various phase shift of the gain-modulation signal. We demonstrate calcium concentration imaging in living COS cells based on Ca2+-induced lifetime changes of Quin-2. The phase-angle image is mapped to the Ca2+ concentration image using anin vitro-determined calibration curve. The Ca2+ concentration was found to be uniform throughout the cell. In contrast, the intensity image shows significant spatial differences, which likely reflect variations in the thickness and distribution of probe within the cell. 相似文献
2.
We describe imaging of calcium concentrations using the long-wavelength Ca2+ indicators, Calcium Green, Orange, and Crimson. The lifetimes of these probes were measured using the frequency-domain method and were found to increase from 50% to severalfold in response to calcium. The two-dimensional images of the calcium concentration were obtained using a new apparatus for fluorescence lifetime imaging (FLIM). We also describe procedures to correct for the position-dependent frequency response of the gain-modulated image intensifier used in the FLIM apparatus. Importantly, the FLIM method does not require the probe to display shifts in the excitation or emission spectra. Using the FLIM method, calcium imaging is possible using probes which display changes in lifetime in response to calcium. Consequently, calcium imaging is possible with excitation wavelengths ranging from 488 to as long as 620 nm, where autofluorescence and/or photochemical damage is minimal. These probes are also suitable for calcium measurements of single cells using lifetime-based flow cytometry. 相似文献
3.
Fluorescence lifetime imaging of oxygen in living cells 总被引:1,自引:0,他引:1
H. C. Gerritsen R. Sanders A. Draaijer C. Ince Y. K. Levine 《Journal of fluorescence》1997,7(1):11-15
The usefulness of the fluorescent probe ruthenium tris(2,2′-dipyridyl) dichloride hydrate (RTDP) for the quantitative imaging
of oxygen in single cells was investigated utilizing fluorescence lifetime imaging. The results indicate that the fluorescence
behavior of RTDP in the presence of oxygen can be described by the Stem-Volmer equation. This shows that fluorescence quenching
by oxygen is a dynamic quenching process. In addition, it was demonstrated that the fluorescence lifetime of RTDP is insensitive
to pH, ion concentration, and cellular contents. This implies that a simple calibration procedure in buffers can be used to
quantify oxygen concentrations within cells. First fluorescence imaging experiments on J774 macrophages show a nonuniform
fluorescence intensity and a uniform fluorescence lifetime image. This indicates that the RTDP is heterogeneously partitioned
throughout the cells, while the oxygen concentration is constant. 相似文献
4.
Xue Feng Wang K. Florine-Casteel John J. Lemasters Brian Herman 《Journal of fluorescence》1995,5(1):71-84
Digitized video microscopy is rapidly finding uses in a number of fields of biological investigation because it allows quantitative assessment of physiological functions in intact cells under a variety of conditions. In this review paper, we focus on the rationale for the development and use of quantitative digitized video fluorescence microscopic techniques to monitor the molecular order and organization of lipids and phospholipids in the plasma membrane of single living cells. These include (1) fluorescence polarization imaging microscopy, used to measure plasma membrane lipid order, (2) fluorescence resonance energy transfer (FRET) imaging microscopy, used to detect and monitor phospholipid domain formation, and (3) fluorescence quenching imaging microscopy, used to spatially map fluid and rigid lipid domains. We review both the theoretical as well as practical use of these different techniques and their limits and potential for future developments, and provide as an illustrative example their application in studies of plasma membrane lipid order and topography during hypoxic injury in rat hepatocytes. Each of these methods provides complementary information; in the case of hypoxic injury, they all indicated that hypoxic injury leads to a spatially and temporally heterogeneous alteration in lipid order, topography, and fluidity of the plasma membrane. Hypoxic injury induces the formation of both fluid and rigid lipid domains; the formation of these domains is responsible for loss of the plasma membrane permeability barrier and the onset of irreversible injury (cell death). By defining the mechanisms which lead to alterations in lipid and phospholipid order and organization in the plasma membrane of hypoxic cells, potential sites of intervention to delay, prevent, or rescue cells from hypoxic injury have been identified. Finally, we briefly discuss fluorescence lifetime imaging microscopy (FLIM) and its potential application for studies monitoring local lipid and phospholipid molecular order and organization in cell membranes. 相似文献
5.
The biosciences require the development of methods that allow a non-invasive and rapid investigation of biological systems.
In this aspect, high-end imaging techniques allow intravital microscopy in real-time, providing information on a molecular
basis. Far-field fluorescence imaging techniques are some of the most adequate methods for such investigations. However, there
are great differences between the common fluorescence imaging techniques, i.e., wide-field, confocal one-photon and two-photon
microscopy, as far as their applicability in diverse bioscientific research areas is concerned. In the first part of this
work, we briefly compare these techniques. Standard methods used in the biosciences, i.e., steady-state techniques based on
the analysis of the total fluorescence signal originating from the sample, can successfully be employed in the study of cell,
tissue and organ morphology as well as in monitoring the macroscopic tissue function. However, they are mostly inadequate
for the quantitative investigation of the cellular function at the molecular level. The intrinsic disadvantages of steady-state
techniques are countered by using time-resolved techniques. Among these fluorescence lifetime imaging (FLIM) is currently
the most common. Different FLIM principles as well as applications of particular relevance for the biosciences, especially
for fast intravital studies are discussed in this work.
相似文献
6.
细胞是动植物结构和生命活动的基本单位.细胞过程的一个重要特点就是其生化组分在时空调控上的相互作用关系.然而,利用传统的生化方法(如酵母双杂交系统、pull-down系统等)很难在空间上评估活细胞内分子间的相互作用.光学技术的快速发展,为研究活细胞中生物分子的时空动态提供了新的遗传研究工具,其中荧光共振能量转移-荧光寿命... 相似文献
7.
We describe two new fluorescence resonance energy transfer (FRET) compatible labels, their covalent linkage to oligonucleotides, and their use as donor and acceptor, respectively, in FRET hybridization studies. The dyes belong to the cyanine dyes, and water solubility is imparted by a phosphonate which represents a new solubilizing group in DNA labels. They were linked to amino-modified synthetic oligonucleotides via oxysuccinimide (OSI) esters. The studies performed include binding assays, determinations of molecular distances, homogeneous competitive assays, and limits of detection, which are in the order of 5 pmol/L for a 15-mer. 相似文献
8.
Improved Fluorescent Proteins for Single-Molecule Research in Molecular Tracking and Co-Localization 总被引:4,自引:0,他引:4
Three promising variants of autofluorescent proteins have been analyzed photophysically for their proposed use in single-molecule
microscopy studies in living cells to compare their superiority to other fluorescent proteins previously reported regarding
the number of photons emitted. The first variant under investigation the F46L mutant of eYFP has a 10% greater photon emission
rate and > 50% slower photobleaching rate on average than the standard eYFP fluorophore. The monomeric red fluorescent protein
(mRFP) has a fivefold lower photon emission rate, likely due to the monomeric content, and also a tenfold faster photobleaching
rate than the DsRed fluorescent protein. In contrast, the previously reported eqfp611 has a 50% lower emission rate yet photobleaches
more than a factor 2 slowly. We conclude that the F46L YFP and the eqfp611 are superior new options for single molecule imaging
and tracking studies in living cells. Studies were also performed on the effects of forced quenching of multiple fluorescent
proteins in sub-micrometer regions that would show the effects of dimerization at low concentration levels of fluorescent
proteins and also indicate corrections to stoichiometry patterns with fluorescent proteins previously in print. We also introduce
properties at the single molecule level of new FRET pairs with combinations of fluorescent proteins and artificial fluorophores.
Authors contributed equally to this article. 相似文献
9.
S.L. Bhattar 《Journal of luminescence》2010,130(3):355-359
The interaction between salicylic acid (SA) and riboflavin (RF) was studied by Fluorescence Resonance Energy Transfer (FRET) in micellar solution. The riboflavin strongly quenches the intrinsic fluorescence of SA by radiative energy transfer. The extent of energy transfer in sodium dodecyl sulphate (SDS) micellar solution of different concentration is quantified from the energy transfer efficiency data. It is seen that the energy transfer is more efficient in the micellar solution. The critical energy transfer distance (R0) was determined from which the mean distance between SA and RF molecules was calculated. The quenching was found to fit into Stern-Volmer relation. The results on variation of Stern-Volmer constant (Ksv) with quencher concentration obtained at different temperatures suggested the formation of complex between SA and RF. The association constant of complex formation was estimated and found to decrease with temperature. The values of thermodynamic parameters ΔH, ΔG and ΔS at different temperatures were estimated and the results indicated that the molecular interaction between SA and RF is electrostatic in nature. 相似文献