Theoretical study of immersion optical clearing of blood in vessels at local hemolysis
Optics Express, Vol. 12, Issue 13, pp. 2966-2971 (2004)
http://dx.doi.org/10.1364/OPEX.12.002966
Acrobat PDF (86 KB)
Abstract
Mie based theoretical analysis has been performed for investigation of the possibility of application of the plasma hemoglobin releasing due to local hemolysis for optical clearing of blood. The 30–40% reduction of the scattering coefficient of blood in the spectral range from 400 to 1000 nm with increase of degree of hemolysis (up to 20%) was shown. At the same time, the reduction of absorption coefficient of blood is localized mainly within the Soret band with maximum at 415 nm (~15%), the α-band at 540 nm and the β-band at 577 nm (~10%) of oxyhemoglobin. In the spectral range from 700 to 1000 nm the decrease of absorption coefficient is less than 8%.
© 2004 Optical Society of America
1. Introduction
M. Brezinski, K. Saunders, C. Jesser, X. Li, and J. Fujimoto, “Index matching to improve optical coherence tomography imaging through blood,” Circulation 10, 1999–2003 (2001). [CrossRef]
M. Brezinski, K. Saunders, C. Jesser, X. Li, and J. Fujimoto, “Index matching to improve optical coherence tomography imaging through blood,” Circulation 10, 1999–2003 (2001). [CrossRef]
X. Xu, R.K. Wang, J.B. Elder, and V.V. Tuchin, “Effect of dextran-induced changes in refractive index and aggregation on optical properties of whole blood,” Phys. Med. Biol. 48, 1205–1221 (2003). [CrossRef] [PubMed]
M. Brezinski, K. Saunders, C. Jesser, X. Li, and J. Fujimoto, “Index matching to improve optical coherence tomography imaging through blood,” Circulation 10, 1999–2003 (2001). [CrossRef]
M. Brezinski, K. Saunders, C. Jesser, X. Li, and J. Fujimoto, “Index matching to improve optical coherence tomography imaging through blood,” Circulation 10, 1999–2003 (2001). [CrossRef]
X. Xu, R.K. Wang, J.B. Elder, and V.V. Tuchin, “Effect of dextran-induced changes in refractive index and aggregation on optical properties of whole blood,” Phys. Med. Biol. 48, 1205–1221 (2003). [CrossRef] [PubMed]
M. Brezinski, K. Saunders, C. Jesser, X. Li, and J. Fujimoto, “Index matching to improve optical coherence tomography imaging through blood,” Circulation 10, 1999–2003 (2001). [CrossRef]
A. Roggan, M. Friebel, K. Dorschel, A. Hahn, and G. Muller, “Optical Properties of Circulating Human Blood in the Wavelength Range 400–2500 nm,” J. Biomed. Opt. 4, 36–43 (1999). [CrossRef] [PubMed]
A. Roggan, M. Friebel, K. Dorschel, A. Hahn, and G. Muller, “Optical Properties of Circulating Human Blood in the Wavelength Range 400–2500 nm,” J. Biomed. Opt. 4, 36–43 (1999). [CrossRef] [PubMed]
M. Brezinski, K. Saunders, C. Jesser, X. Li, and J. Fujimoto, “Index matching to improve optical coherence tomography imaging through blood,” Circulation 10, 1999–2003 (2001). [CrossRef]
X. Xu, R.K. Wang, J.B. Elder, and V.V. Tuchin, “Effect of dextran-induced changes in refractive index and aggregation on optical properties of whole blood,” Phys. Med. Biol. 48, 1205–1221 (2003). [CrossRef] [PubMed]
M. Brezinski, K. Saunders, C. Jesser, X. Li, and J. Fujimoto, “Index matching to improve optical coherence tomography imaging through blood,” Circulation 10, 1999–2003 (2001). [CrossRef]
V.V. Tuchin, X. Xu, and R. K. Wang, “Dynamic optical coherence tomography in studies of optical clearing, sedimentation, and aggregation of immersed blood,” Appl. Opt. 47, 258–271 (2002). [CrossRef]
V.V. Tuchin, X. Xu, and R. K. Wang, “Dynamic optical coherence tomography in studies of optical clearing, sedimentation, and aggregation of immersed blood,” Appl. Opt. 47, 258–271 (2002). [CrossRef]
V.V. Tuchin, X. Xu, and R. K. Wang, “Dynamic optical coherence tomography in studies of optical clearing, sedimentation, and aggregation of immersed blood,” Appl. Opt. 47, 258–271 (2002). [CrossRef]
A. Roggan, M. Friebel, K. Dorschel, A. Hahn, and G. Muller, “Optical Properties of Circulating Human Blood in the Wavelength Range 400–2500 nm,” J. Biomed. Opt. 4, 36–43 (1999). [CrossRef] [PubMed]
D.M. Zhestkov, A.N. Bashkatov, E.A. Genina, and V.V. Tuchin, “Influence of clearing solutions osmolarity on the optical properties of RBC,” Proc. SPIE 5474, (2004 to be published). [CrossRef]
V.V. Tuchin, X. Xu, and R. K. Wang, “Dynamic optical coherence tomography in studies of optical clearing, sedimentation, and aggregation of immersed blood,” Appl. Opt. 47, 258–271 (2002). [CrossRef]
D.M. Zhestkov, A.N. Bashkatov, E.A. Genina, and V.V. Tuchin, “Influence of clearing solutions osmolarity on the optical properties of RBC,” Proc. SPIE 5474, (2004 to be published). [CrossRef]
V.V. Tuchin, X. Xu, and R. K. Wang, “Dynamic optical coherence tomography in studies of optical clearing, sedimentation, and aggregation of immersed blood,” Appl. Opt. 47, 258–271 (2002). [CrossRef]
2. Modeling of optical immersion of blood due to hemolysis
A. Roggan, M. Friebel, K. Dorschel, A. Hahn, and G. Muller, “Optical Properties of Circulating Human Blood in the Wavelength Range 400–2500 nm,” J. Biomed. Opt. 4, 36–43 (1999). [CrossRef] [PubMed]
A.G. Borovoi, E.I. Naats, and U.G. Oppel, “Scattering of Light by a Red Blood Cell,” J. Biomed. Opt. 3, 364–372 (1998). [CrossRef] [PubMed]
D.H. Tycko, M.G. Metz, E.A. Epstein, and A. Grinbaum, “Flow cytometric light-scattering measurement of red cell volume and hemoglobin concentration,” Appl. Opt. 24, 1355–1365 (1985). [CrossRef] [PubMed]
| Local blood hemolysis, % | Local blood hematocrit, % | Local hemoglobin concentration in plasma, g/dl |
|---|---|---|
| 0 | 42 | 0 |
| 5 | 39.9 | 1.15 |
| 10 | 37.8 | 2.23 |
| 15 | 35.7 | 3.23 |
| 20 | 33.6 | 4.91 |
D.M. Zhestkov, A.N. Bashkatov, E.A. Genina, and V.V. Tuchin, “Influence of clearing solutions osmolarity on the optical properties of RBC,” Proc. SPIE 5474, (2004 to be published). [CrossRef]
A. Roggan, M. Friebel, K. Dorschel, A. Hahn, and G. Muller, “Optical Properties of Circulating Human Blood in the Wavelength Range 400–2500 nm,” J. Biomed. Opt. 4, 36–43 (1999). [CrossRef] [PubMed]
D.M. Zhestkov, A.N. Bashkatov, E.A. Genina, and V.V. Tuchin, “Influence of clearing solutions osmolarity on the optical properties of RBC,” Proc. SPIE 5474, (2004 to be published). [CrossRef]
A.G. Borovoi, E.I. Naats, and U.G. Oppel, “Scattering of Light by a Red Blood Cell,” J. Biomed. Opt. 3, 364–372 (1998). [CrossRef] [PubMed]
A. Roggan, M. Friebel, K. Dorschel, A. Hahn, and G. Muller, “Optical Properties of Circulating Human Blood in the Wavelength Range 400–2500 nm,” J. Biomed. Opt. 4, 36–43 (1999). [CrossRef] [PubMed]
N.G. Khlebtsov and S.Yu. Shchyogolev, “Account of particle nonsphericity at determination of parameters of dispersion systems by a turbidity spectrum method. 1. Characteristic functions of light scattering by nonspherical particle systems in Rayleigh-Gans approximation,” Opt. Spectrosc. 42, 956–962 (1977)
| Radius of particles, µm | Volume fraction, % | Radius of particles, µm | Volume fraction, % |
|---|---|---|---|
| 1.2±0.2 | 4 | 2.7±0.3 | 32 |
| 1.7±0.3 | 14 | 3.4±0.4 | 14 |
| 2.2±0.2 | 30 | 4.3±0.5 | 6 |
A.Ya. Khairullina and S.F. Shumilina, “Determination of the distribution function of erythrocytes according to size by the spectral transparency method,” J. Appl. Spectrosc. 19, 1078–1083 (1973). [CrossRef]
D.M. Zhestkov, A.N. Bashkatov, E.A. Genina, and V.V. Tuchin, “Influence of clearing solutions osmolarity on the optical properties of RBC,” Proc. SPIE 5474, (2004 to be published). [CrossRef]
J.M. Steinke and A.P. Shepherd, “Diffusion model of the optical absorbance of whole blood,” J. Opt. Soc. Am. A. 5, 813–822 (1988). [CrossRef] [PubMed]
J.M. Schmitt and G. Kumar, “Optical scattering properties of soft tissue: a discrete particle model,” Appl. Opt. 37, 2788–2797 (1998). [CrossRef]
A.G. Borovoi, E.I. Naats, and U.G. Oppel, “Scattering of Light by a Red Blood Cell,” J. Biomed. Opt. 3, 364–372 (1998). [CrossRef] [PubMed]
D.M. Zhestkov, A.N. Bashkatov, E.A. Genina, and V.V. Tuchin, “Influence of clearing solutions osmolarity on the optical properties of RBC,” Proc. SPIE 5474, (2004 to be published). [CrossRef]
3. Results and discussion
A. Roggan, M. Friebel, K. Dorschel, A. Hahn, and G. Muller, “Optical Properties of Circulating Human Blood in the Wavelength Range 400–2500 nm,” J. Biomed. Opt. 4, 36–43 (1999). [CrossRef] [PubMed]
4. Summary
Acknowledgments
References and links
M. Brezinski, K. Saunders, C. Jesser, X. Li, and J. Fujimoto, “Index matching to improve optical coherence tomography imaging through blood,” Circulation 10, 1999–2003 (2001). [CrossRef] | |
V.V. Tuchin, Tissue Optics: Light Scattering Methods and Instruments for Medical Diagnosis (SPIE Press, TT38, Bellingham, Washington, 2000) | |
V.V. Tuchin (ed.), Handbook of Optical Biomedical Diagnostics (PM107, SPIE Press, Bellingham, WA, 2002). | |
Tuan Vo-Dinh (ed.), Biomedical Photonics Handbook (CRC Press, Boca Raton, 2003). [CrossRef] | |
B.E. Bouma and G.J. Tearney (eds.), Handbook of Optical Coherence Tomography (Marcel-Dekker, New York, 2002). | |
V.V. Tuchin, X. Xu, and R. K. Wang, “Dynamic optical coherence tomography in studies of optical clearing, sedimentation, and aggregation of immersed blood,” Appl. Opt. 47, 258–271 (2002). [CrossRef] | |
X. Xu, R.K. Wang, J.B. Elder, and V.V. Tuchin, “Effect of dextran-induced changes in refractive index and aggregation on optical properties of whole blood,” Phys. Med. Biol. 48, 1205–1221 (2003). [CrossRef] [PubMed] | |
A. Roggan, M. Friebel, K. Dorschel, A. Hahn, and G. Muller, “Optical Properties of Circulating Human Blood in the Wavelength Range 400–2500 nm,” J. Biomed. Opt. 4, 36–43 (1999). [CrossRef] [PubMed] | |
D.M. Zhestkov, A.N. Bashkatov, E.A. Genina, and V.V. Tuchin, “Influence of clearing solutions osmolarity on the optical properties of RBC,” Proc. SPIE 5474, (2004 to be published). [CrossRef] | |
A.G. Borovoi, E.I. Naats, and U.G. Oppel, “Scattering of Light by a Red Blood Cell,” J. Biomed. Opt. 3, 364–372 (1998). [CrossRef] [PubMed] | |
D.H. Tycko, M.G. Metz, E.A. Epstein, and A. Grinbaum, “Flow cytometric light-scattering measurement of red cell volume and hemoglobin concentration,” Appl. Opt. 24, 1355–1365 (1985). [CrossRef] [PubMed] | |
N.G. Khlebtsov and S.Yu. Shchyogolev, “Account of particle nonsphericity at determination of parameters of dispersion systems by a turbidity spectrum method. 1. Characteristic functions of light scattering by nonspherical particle systems in Rayleigh-Gans approximation,” Opt. Spectrosc. 42, 956–962 (1977) | |
A.Ya. Khairullina and S.F. Shumilina, “Determination of the distribution function of erythrocytes according to size by the spectral transparency method,” J. Appl. Spectrosc. 19, 1078–1083 (1973). [CrossRef] | |
J.M. Steinke and A.P. Shepherd, “Diffusion model of the optical absorbance of whole blood,” J. Opt. Soc. Am. A. 5, 813–822 (1988). [CrossRef] [PubMed] | |
J.M. Schmitt and G. Kumar, “Optical scattering properties of soft tissue: a discrete particle model,” Appl. Opt. 37, 2788–2797 (1998). [CrossRef] | |
C. Bohren and D. Huffman, Absorption and Scattering of Light by Small Particles (John Wiley & Sons, New York, 1983). | |
S. Cheng, H.Y. Shen, G. Zhang, C.H. Huang, and X.J. Huang, “Measurement of the refractive index of biotissue at four laser wavelengths,” in Optics in Health Care and Biomedical Optics: Diagnostics and Treatment , B. Chance, M. Chen, and G. Yoon, eds., Proc. SPIE 4916, 172–176 (2002). |
OCIS Codes
(000.1430) General : Biology and medicine
(170.1470) Medical optics and biotechnology : Blood or tissue constituent monitoring
(290.5850) Scattering : Scattering, particles
(290.7050) Scattering : Turbid media
ToC Category:
Research Papers
History
Original Manuscript: April 5, 2004
Revised Manuscript: May 13, 2004
Published: June 28, 2004
Citation
Valery Tuchin, Dmitry Zhestkov, Alexey Bashkatov, and Elina Genina, "Theoretical study of immersion optical clearing of blood in vessels at local hemolysis," Opt. Express 12, 2966-2971 (2004)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-12-13-2966
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References
- M. Brezinski, K. Saunders, C. Jesser, X. Li, J. Fujimoto, ???Index matching to improve optical coherence tomography imaging through blood,??? Circulation 10, 1999-2003 (2001). [CrossRef]
- V.V. Tuchin, Tissue Optics: Light Scattering Methods and Instruments for Medical Diagnosis (SPIE Press, TT38, Bellingham, Washington, 2000).
- V.V. Tuchin (ed.), Handbook of Optical Biomedical Diagnostics (PM107, SPIE Press, Bellingham, WA, 2002).
- Tuan Vo-Dinh (ed.), Biomedical Photonics Handbook (CRC Press, Boca Raton, 2003). [CrossRef]
- B.E. Bouma and G.J. Tearney (eds.), Handbook of Optical Coherence Tomography (Marcel-Dekker, New York, 2002).
- V.V. Tuchin, X. Xu, R. K. Wang, ???Dynamic optical coherence tomography in studies of optical clearing, sedimentation, and aggregation of immersed blood,??? Appl. Opt. 47, 258-271 (2002). [CrossRef]
- X. Xu, R.K. Wang, J.B. Elder, V.V. Tuchin, ???Effect of dextran-induced changes in refractive index and aggregation on optical properties of whole blood,??? Phys. Med. Biol. 48, 1205-1221 (2003). [CrossRef] [PubMed]
- A. Roggan, M. Friebel, K. Dorschel, A. Hahn, and G. Muller, ???Optical Properties of Circulating Human Blood in the Wavelength Range 400-2500 nm,??? J. Biomed. Opt. 4, 36-43 (1999). [CrossRef] [PubMed]
- D.M. Zhestkov, A.N. Bashkatov, E.A. Genina, V.V. Tuchin, ???Influence of clearing solutions osmolarity on the optical properties of RBC,??? Proc. SPIE 5474, (2004 to be published). [CrossRef]
- A.G. Borovoi, E.I. Naats, and U.G. Oppel,???Scattering of Light by a Red Blood Cell,??? J. Biomed. Opt. 3, 364-372 (1998). [CrossRef] [PubMed]
- D.H. Tycko, M.G. Metz, E.A. Epstein, A. Grinbaum, ???Flow cytometric light-scattering measurement of red cell volume and hemoglobin concentration,??? Appl. Opt. 24, 1355-1365 (1985). [CrossRef] [PubMed]
- N.G. Khlebtsov, S.Yu. Shchyogolev, "Account of particle nonsphericity at determination of parameters of dispersion systems by a turbidity spectrum method. 1. Characteristic functions of light scattering by nonspherical particle systems in Rayleigh-Gans approximation," Opt. Spectrosc. 42, 956-962 (1977).
- A.Ya. Khairullina and S.F. Shumilina, ???Determination of the distribution function of erythrocytes according to size by the spectral transparency method,??? J. Appl. Spectrosc. 19, 1078-1083 (1973). [CrossRef]
- J.M. Steinke, A.P. Shepherd, ???Diffusion model of the optical absorbance of whole blood,??? J. Opt. Soc. Am. A 5, 813-822 (1988). [CrossRef] [PubMed]
- J.M. Schmitt, G. Kumar, "Optical scattering properties of soft tissue: a discrete particle model," Appl. Opt. 37, 2788-2797 (1998). [CrossRef]
- C. Bohren, D. Huffman, Absorption and Scattering of Light by Small Particles (John Wiley & Sons, New York, 1983).
- S. Cheng, H.Y. Shen, G. Zhang, C.H. Huang, X.J. Huang, "Measurement of the refractive index of biotissue at four laser wavelengths," in Optics in Health Care and Biomedical Optics: Diagnostics and Treatment, B. Chance, M. Chen and G. Yoon , eds., Proc. SPIE 4916, 172-176 (2002).
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