Abstract
A new method for the measurement of diffusion in thick samples is introduced, based upon the spatial Fourier analysis of Tsay and Jacobson (Biophys. J. 60: 360-368, 1991) for the video image analysis of fluorescence recovery after photobleaching (FRAP). In this approach, the diffusion coefficient is calculated from the decay of Fourier transform coefficients in successive fluorescence images. Previously, the application of FRAP in thick samples has been confounded by the optical effects of out-of-focus light and scattering and absorption by the sample. The theory of image formation is invoked to show that the decay rate is the same for both the observed fluorescence intensity and the true concentration distribution in the tissue. The method was tested in a series of macromolecular diffusion measurements in aqueous solution, in agarose gel, and in simulated tissue consisting of tumor cells (45% v/v) and blood cells (5% v/v) in an agarose gel. For a range of fluorescently labeled proteins (MW = 14 to 600 kD) and dextrans (MW = 4.4 to 147.8 kD), the diffusion coefficients in aqueous solution were comparable to previously published values. A comparison of the spatial Fourier analysis with a conventional direct photometric method revealed that even for the weakly scattering agarose sample, the conventional method gives a result that is inaccurate and dependent on sample thickness whereas the diffusion coefficient calculated by the spatial Fourier method agreed with published values and was independent of sample thickness. The diffusion coefficient of albumin in the simulated tissue samples, as determined by the spatial Fourier analysis, varied slightly with sample thickness. In contrast, when the same video images were analyzed by direct photometric analysis, the calculated diffusion coefficients were grossly inaccurate and highly dependent on sample thickness. No simple correction could be devised to ensure the accuracy of the direct photometric method of analysis.These in vitro experiments demonstrate the advantage of our new analysis for obtaining an accurate measure of the local diffusion coefficient in microscopic samples that are thick (thickness greater than the microscope depth of focus) and scatter light.
MeSH Terms
Biopolymers/metabolism
Blood Proteins/analysis,metabolism
Diffusion
Fourier Analysis
Humans
Light
Mathematics
Models, Biological
Neoplasm Proteins/analysis,metabolism
Proteins/analysis,metabolism
Scattering, Radiation
Sepharose
Spectrometry, Fluorescence/methods
Chemicals
Biopolymers
Blood Proteins
Neoplasm Proteins
Proteins
Sepharose
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Berk D A
Department of Radiation Oncology, Massachusetts General Hospital, Harvard Medical School, Boston 02114.
Yuan F
Leunig M
Jain R K
References (23)
23 references, click to expand
-
Extravascular diffusion in normal and neoplastic tissues.
Cancer Res. 1984 Jan;44(1):238-44
PMID: 6197161
-
Lateral mobility in membranes as detected by fluorescence recovery after photobleaching.
Biophys J. 1982 Oct;40(1):69-75
PMID: 7139035
-
Transport of molecules in the tumor interstitium: a review.
Cancer Res. 1987 Jun 15;47(12):3039-51
PMID: 3555767
-
Mechanisms of heterogeneous distribution of monoclonal antibodies and other macromolecules in tumors: significance of elevated interstitial pressure.
Cancer Res. 1988 Dec 15;48(24 Pt 1):7022-32
PMID: 3191477
-
Direct measurement of interstitial convection and diffusion of albumin in normal and neoplastic tissues by fluorescence photobleaching.
Proc Natl Acad Sci U S A. 1989 Jul;86(14):5385-9
PMID: 2748592
-
Convection and diffusion measurements using fluorescence recovery after photobleaching and video image analysis: in vitro calibration and assessment.
Microvasc Res. 1990 Jan;39(1):77-93
PMID: 2314308
-
Determination of three-dimensional imaging properties of a light microscope system. Partial confocal behavior in epifluorescence microscopy.
Biophys J. 1990 Feb;57(2):325-33
PMID: 2317554
-
Interstitial transport of rabbit and sheep antibodies in normal and neoplastic tissues.
Cancer Res. 1990 Jun 15;50(12):3487-92
PMID: 2340499
-
Spatial Fourier analysis of video photobleaching measurements. Principles and optimization.
Biophys J. 1991 Aug;60(2):360-8
PMID: 1912279
-
Measurement of mass transport and reaction parameters in bulk solution using photobleaching. Reaction limited binding regime.
Biophys J. 1991 Sep;60(3):596-610
PMID: 1932550
-
Diffusion of proteins in Sepharose Cl-B gels.
J Chromatogr. 1992 Feb 7;591(1-2):115-20
PMID: 1613046
-
ON THE INTERACTION BETWEEN POLYSACCHARIDES AND OTHER MACROMOLECULES. II. THE TRANSPORT OF GLOBULAR PARTICLES THROUGH HYALURONIC ACID SOLUTIONS.
Biochim Biophys Acta. 1963 Oct 29;78:351-9
PMID: 14099644
-
Restricted diffusion of macromolecules through agar-gel membranes.
Biochim Biophys Acta. 1962 May 7;59:137-49
PMID: 13859186
-
Molecular weight distribution analysis by gel chromatography on Sephadex.
J Chromatogr. 1967 May;28(1):69-81
PMID: 6048444
-
Diffusion studies of bovine serum albumin by quasielastic light scattering.
Biochemistry. 1974 Jul 30;13(16):3336-40
PMID: 4858228
-
A microfluorimetric study of translational diffusion in erythrocyte membranes.
Biochim Biophys Acta. 1974 Nov 15;367(3):282-94
PMID: 4429678
-
Macromolecular transport in the cat mesentery.
Microvasc Res. 1975 Jan;9(1):1-21
PMID: 1117849
-
Mobility measurement by analysis of fluorescence photobleaching recovery kinetics.
Biophys J. 1976 Sep;16(9):1055-69
PMID: 786399
-
Measurement of the lateral mobility of cell surface components in single, living cells by fluorescence recovery after photobleaching.
J Supramol Struct. 1976;5(4):565(417)-576(428)
PMID: 800621
-
Interstitial diffusion of macromolecules in the rat mesentery.
Microvasc Res. 1979 Sep;18(2):255-76
PMID: 491987
-
Fluorescence photobleaching recovery in solutions of labeled actin.
Biophys J. 1981 Aug;35(2):351-64
PMID: 7272443
-
A parameter for the distribution of fluorophores in cells derived from measurements of inner filter effect and reabsorption phenomenon.
Cytometry. 1982 May;2(6):359-69
PMID: 6176405
-
Optical sectioning microscopy: cellular architecture in three dimensions.
Annu Rev Biophys Bioeng. 1984;13:191-219
PMID: 6742801