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Fluorescence Correlation Spectroscopy Combined with Multiphoton Laser Scanning Microscopy—A Practical Guideline
- Source :
- Applied Sciences, Vol 11, Iss 2122, p 2122 (2021), Applied Sciences, Volume 11, Issue 5
- Publication Year :
- 2021
- Publisher :
- MDPI AG, 2021.
-
Abstract
- Multiphoton laser scanning microscopy (MPM) has opened up an optical window into biological tissues<br />however, imaging is primarily qualitative. Cell morphology and tissue architectures can be clearly visualized but quantitative analysis of actual concentration and fluorophore distribution is indecisive. Fluorescence correlation spectroscopy (FCS) is a highly sensitive photophysical methodology employed to study molecular parameters such as diffusion characteristics on the single molecule level. In combination with laser scanning microscopy, and MPM in particular, FCS has been referred to as a standard and highly useful tool in biomedical research to study diffusion and molecular interaction with subcellular precision. Despite several proof-of-concept reports on the topic, the implementation of MPM-FCS is far from straightforward. This practical guideline aims to clarify the conceptual principles and define experimental operating conditions when implementing MPM-FCS. Validation experiments in Rhodamine solutions were performed on an experimental MPM-FCS platform investigating the effects of objective lens, fluorophore concentration and laser power. An approach based on analysis of time-correlated single photon counting data is presented. It is shown that the requirement of high numerical aperture (NA) objective lenses is a primary limitation that restricts field of view, working distance and concentration range. Within these restrictions the data follows the predicted theory of Poisson distribution. The observed dependence on laser power is understood in the context of perturbation on the effective focal volume. In addition, a novel interpretation of the effect on measured diffusion time is presented. Overall, the challenges and limitations observed in this study reduce the versatility of MPM-FCS targeting biomedical research in complex and deep tissue—being the general strength of MPM in general. However, based on the systematic investigations and fundamental insights this report can serve as a practical guide and inspire future research, potentially overcoming the technical limitations and ultimately allowing MPM-FCS to become a highly useful tool in biomedical research.
- Subjects :
- Materials science
Fluorophore
genetic structures
Context (language use)
Fluorescence correlation spectroscopy
02 engineering and technology
Cell morphology
01 natural sciences
lcsh:Technology
law.invention
010309 optics
lcsh:Chemistry
chemistry.chemical_compound
molecular diffusion
law
0103 physical sciences
laser scanning multiphoton microscope (MPM)
General Materials Science
Laser power scaling
fluorescence correlation spectroscopy (FCS)
Instrumentation
lcsh:QH301-705.5
Fluid Flow and Transfer Processes
Molecular diffusion
integumentary system
lcsh:T
Process Chemistry and Technology
General Engineering
021001 nanoscience & nanotechnology
equipment and supplies
Photon counting
eye diseases
lcsh:QC1-999
Computer Science Applications
Lens (optics)
chemistry
lcsh:Biology (General)
lcsh:QD1-999
lcsh:TA1-2040
sense organs
0210 nano-technology
Biological system
lcsh:Engineering (General). Civil engineering (General)
lcsh:Physics
Subjects
Details
- Language :
- English
- ISSN :
- 20763417
- Volume :
- 11
- Issue :
- 2122
- Database :
- OpenAIRE
- Journal :
- Applied Sciences
- Accession number :
- edsair.doi.dedup.....fdfc549e8cd135a86988f58798eea0e1