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Fluorescence Spectroscopy and Microscopy

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Cover of 'Fluorescence Spectroscopy and Microscopy'

Table of Contents

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    Book Overview
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    Chapter 1 How to Collect National Institute of Standards and Technology (NIST) Traceable Fluorescence Excitation and Emission Spectra
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    Chapter 2 Steady-State Fluorescence Polarization/Anisotropy for the Study of Protein Interactions
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    Chapter 3 Quantitative Fluorescence Spectral Analysis of Protein Denaturation
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    Chapter 4 High-Pressure Fluorescence Applications
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    Chapter 5 Frequency Domain Fluorometry: Theory and Application
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    Chapter 6 Polar Plot Representation of Time-Resolved Fluorescence
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    Chapter 7 Ensemble and Single-Molecule Detected Time-Resolved FRET Methods in Studies of Protein Conformations and Dynamics
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    Chapter 8 MD + QM Correlations with Tryptophan Fluorescence Spectral Shifts and Lifetimes
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    Chapter 9 Analysis of Time-Dependent Red Shifts in Fluorescence Emission from Tryptophan Residues in Proteins
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    Chapter 10 Global Analysis of Time-Resolved Fluorescence Data
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    Chapter 11 Nanometrology.
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    Chapter 12 Upconversion Spectrophotofluorometry
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    Chapter 13 Subpicosecond Kerr-Gate Spectrofluorometry
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    Chapter 14 Photoinduced Electron Transfer Modeling to Simulate Flavoprotein Fluorescence Decay
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    Chapter 15 Biosynthetic Incorporation of Tryptophan Analogs in Proteins
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    Chapter 16 Optimization of Fluorescent Proteins
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    Chapter 17 Monitoring Membrane Properties and Apoptosis Using Membrane Probes of the 3-Hydroxyflavone Family
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    Chapter 18 Rectangle FRAP for Measuring Diffusion with a Laser Scanning Microscope
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    Chapter 19 A Quantitative Protocol for Intensity-Based Live Cell FRET Imaging.
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    Chapter 20 Wide-Field Fluorescence Lifetime Imaging with Multi-anode Detectors
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    Chapter 21 Global Analysis of FRET–FLIM Data in Live Plant Cells
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    Chapter 22 Time-Resolved Fluorescence Anisotropy Imaging
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    Chapter 23 Multimodal Fluorescence Imaging Spectroscopy
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    Chapter 24 Application of Fluorescence Correlation Spectroscopy (FCS) to Measure the Dynamics of Fluorescent Proteins in Living Cells
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    Chapter 25 Fluorescence Cross-Correlation Spectroscopy (FCCS) in Living Cells.
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    Chapter 26 Quantifying Lipid-Protein Interaction by Fluorescence Correlation Spectroscopy (FCS).
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    Chapter 27 Fluorescence Spectroscopy and Microscopy
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    Chapter 28 Z-Scan Fluorescence Correlation Spectroscopy as a Tool for Diffusion Measurements in Planar Lipid Membranes
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    Chapter 29 Scanning Fluorescence Correlation Spectroscopy (SFCS) with a Scan Path Perpendicular to the Membrane Plane.
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    Chapter 30 Implementation and Application of Pulsed Interleaved Excitation for Dual-Color FCS and RICS.
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    Chapter 31 Quantitative study of protein-protein interactions in live cell by dual-color fluorescence correlation spectroscopy.
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    Chapter 32 Brightness Experiments
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    Chapter 33 Global Analysis of Autocorrelation Functions and Photon Counting Distributions in Fluorescence Fluctuation Spectroscopy
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    Chapter 34 Simulation of Autocorrelation Function and Photon Counting Distribution in Fluorescence Fluctuation Spectroscopy
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    Chapter 35 Single-Molecule Fluorescence of Nucleic Acids.
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    Chapter 36 Photoswitchable Fluorescent Proteins for Superresolution Fluorescence Microscopy Circumventing the Diffraction Limit of Light
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Title
Fluorescence Spectroscopy and Microscopy
Published by
Humana Press, October 2013
DOI 10.1007/978-1-62703-649-8
ISBNs
978-1-62703-648-1, 978-1-62703-649-8
Editors

Engelborghs, Yves, Visser, Antonie J.W.G.

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Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 316 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Japan 1 <1%
Netherlands 1 <1%
Unknown 314 99%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 13 4%
Researcher 10 3%
Other 4 1%
Student > Bachelor 3 <1%
Professor 3 <1%
Other 6 2%
Unknown 277 88%
Readers by discipline Count As %
Biochemistry, Genetics and Molecular Biology 8 3%
Chemistry 8 3%
Agricultural and Biological Sciences 7 2%
Neuroscience 4 1%
Physics and Astronomy 2 <1%
Other 8 3%
Unknown 279 88%