24
2 Overview of Theoretical Approaches to the Analysis of Light Scattering
3. the investigation of the optical characteristics of the simulated biological structure with roughness, when the characteristic size of unevenness on the surface
is much greater than the wavelength, by the classical methods of the theory of
diffraction;
4. the evaluation of the effect of roughness on the spectral characteristics of the
simulated biological structure;
5. the calculation of the preliminary parameters of the laser radiation field, to identify and study the effects of responses of laser irradiation at different levels of
organization of living matter;
6. the description of the quantitatively and qualitatively normalized spectra of laser
radiation on the oxy-and deoxygemoglobin and the selection of the optimal
wavelength for the effective action of laser radiation on biological structures;
7. the study the effectiveness of absorption not only by blood but also in biological
tissues, and the investigation of the kinetics of the denaturation of tissue in order
to develop the optimal mode of operation and technical characteristics of laser
used in biomedical research;
8. theoretically calculate the size distribution function for particles of irregular
shape with a variety forms and structures of inclusions that simulate blood cells
in the case of in vivo and determine the degree of aggregation, for example, the
platelet for case in vivo.
References
1. G. Muller et al. (eds.), Medical Optical Tomography: Functional Imaging and Monitoring
(Bellinhgham, SPIE, 1993) IS11
2. G.R. Ivanitskii, A.S. Kunisky, Study of the Microstructure Objects by Means of Coherent Optics
(Moscow, 1981)
3. V.V. Lopatin, F.Ya Sidko, The Polarization Characteristics of Suspensions of Biological Particles (Novosibirsk, 1991)
4. A. Brunsting, P.F. Mullaney, Differential light scattering from spherical mammalian cells.
Biophys. J. 14(N6), 439–453 (1974)
5. P.F. Mullaney, R.J. Fiel, Cellular stucture as revealed by visible light scattering: studies on
suspensions of red blood cell ghost. Appl. Opt. 15(2), 301–311 (1976)
6. A. Brunsting, P.F. Mullaney, Light scattering from coated spheres: model for biological cells.
Appl. Opt. 11(3), 675–680 (1972)
7. A. Brunsting, P.F. Mullaney, Differential light scattering: possible method of mammalian cell
indentification. J. Colloid Interface Sci. 39(3), 492–496 (1972)
8. P. Latimer, Light scattering by homogeneous sphere with radial projections. Appl. Opt. 23(3),
442–447 (1984)
9. P. Latimer, Light scattering, data inversion, and information theory. J. Colloid Interface Sci.
39(3), 497–503 (1972)
10. P. Latimer, Light scattering and absorpition as method of studying cell population parameters.
Ann. Rev. Biophys. Bioeng. 11(1), 129–150 (1982)
11. P. Latimer, D.M. Moore, F.D. Bryant, Changes in total light scattering and absorpition caused
by changes in particle conformation. J. Theor. Biol. 21(N2), 348–367 (1968)
12. A. Ishimaru, Wave Propagation and Scattering in Random Media: Single Scattering and Transport Theory, vol. 1 (Moscow, 1981)
2 Overview of Theoretical Approaches to the Analysis of Light Scattering
3. the investigation of the optical characteristics of the simulated biological structure with roughness, when the characteristic size of unevenness on the surface
is much greater than the wavelength, by the classical methods of the theory of
diffraction;
4. the evaluation of the effect of roughness on the spectral characteristics of the
simulated biological structure;
5. the calculation of the preliminary parameters of the laser radiation field, to identify and study the effects of responses of laser irradiation at different levels of
organization of living matter;
6. the description of the quantitatively and qualitatively normalized spectra of laser
radiation on the oxy-and deoxygemoglobin and the selection of the optimal
wavelength for the effective action of laser radiation on biological structures;
7. the study the effectiveness of absorption not only by blood but also in biological
tissues, and the investigation of the kinetics of the denaturation of tissue in order
to develop the optimal mode of operation and technical characteristics of laser
used in biomedical research;
8. theoretically calculate the size distribution function for particles of irregular
shape with a variety forms and structures of inclusions that simulate blood cells
in the case of in vivo and determine the degree of aggregation, for example, the
platelet for case in vivo.
References
1. G. Muller et al. (eds.), Medical Optical Tomography: Functional Imaging and Monitoring
(Bellinhgham, SPIE, 1993) IS11
2. G.R. Ivanitskii, A.S. Kunisky, Study of the Microstructure Objects by Means of Coherent Optics
(Moscow, 1981)
3. V.V. Lopatin, F.Ya Sidko, The Polarization Characteristics of Suspensions of Biological Particles (Novosibirsk, 1991)
4. A. Brunsting, P.F. Mullaney, Differential light scattering from spherical mammalian cells.
Biophys. J. 14(N6), 439–453 (1974)
5. P.F. Mullaney, R.J. Fiel, Cellular stucture as revealed by visible light scattering: studies on
suspensions of red blood cell ghost. Appl. Opt. 15(2), 301–311 (1976)
6. A. Brunsting, P.F. Mullaney, Light scattering from coated spheres: model for biological cells.
Appl. Opt. 11(3), 675–680 (1972)
7. A. Brunsting, P.F. Mullaney, Differential light scattering: possible method of mammalian cell
indentification. J. Colloid Interface Sci. 39(3), 492–496 (1972)
8. P. Latimer, Light scattering by homogeneous sphere with radial projections. Appl. Opt. 23(3),
442–447 (1984)
9. P. Latimer, Light scattering, data inversion, and information theory. J. Colloid Interface Sci.
39(3), 497–503 (1972)
10. P. Latimer, Light scattering and absorpition as method of studying cell population parameters.
Ann. Rev. Biophys. Bioeng. 11(1), 129–150 (1982)
11. P. Latimer, D.M. Moore, F.D. Bryant, Changes in total light scattering and absorpition caused
by changes in particle conformation. J. Theor. Biol. 21(N2), 348–367 (1968)
12. A. Ishimaru, Wave Propagation and Scattering in Random Media: Single Scattering and Transport Theory, vol. 1 (Moscow, 1981)
