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INFLUENCE OF PHOTOACTIVATED ROSE BENGAL ON MICROCIRCULATION

https://doi.org/10.24931/2413-9432-2017-6-3-11-15

Abstract

The study of mean blood velocity changes in rat mesenteric venules (15–30 µm) due to photoactivation (λ = 532 nm, 0,175 W/cm2, 300 s) of i.v. injected Rose Bengal (17 mg/kg) is represented in the article. Using in vivo biomicroscopy the progressive decrease of mean blood velocity both during the laser irradiation and after it was registered. The calculation of thermal effects in the irradiated part of microvessel due to laser absorption by hemoglobin and Rose Bengal showed the rise of temperature was not exceed 0.2оC as compared to initial level. Thus, thermal effect has nearly no significant influence on microvascular disturbances caused by Rose Bengal photoactivation.

About the Authors

T. G. Gryshachova
I.P. Pavlov State Medical University; Medical Research Centre.
Russian Federation
St-Petersburg.


I. A. Mikhailova
I.P. Pavlov State Medical University.
Russian Federation
St-Petersburg.


A. V. Struy
I.P. Pavlov State Medical University.
Russian Federation
St-Petersburg.


S. G. Chephu
I.P. Pavlov State Medical University; Medical Research Centre.
Russian Federation
St-Petersburg.


N. N. Petrishchev
I.P. Pavlov State Medical University; Medical Research Centre.
Russian Federation
St-Petersburg.


References

1. Filonenko E.V. Fluorescence diagnosis and photodynamic therapy in oncology, Rossiiskii bioterapevticheskii zhurnal, 2013, Vol. 12, No. 2, p. 85.

2. Wang W., Moriyama L.T., Bagnato V.S. Photodynamic therapy induced vascular damage: an overview of experimental PDT, Laser Phys. Lett., 2013, Vol. 10(2), 023001.

3. Fingar V.H., Wieman T.J., Wiehle S.A., Cerrito P.B. The Role of Microvascular Damage in Photodynamic Therapy: The Effect of Treatment on Vessel Constriction, Permeability and Leukocyte Adhesion, Canc. Res., 1992, Vol. 52, pp. 4914-4921.

4. Khurana M., Moriyama E.H., Mariampillai A., Wilson B.C. Intravital high-resolution optical imaging of individual vessel response to photodynamic treatment, J. Biomed. Opt., 2008, Vol. 13, No. 4, 040502.

5. Rosen E.D., Raymond S., Zollmann A., Noria F., Sandoval-Cooper M., Shulman A., Merz J.L., Castellino F.J. Laser-Induced NonInvasive Vascular Injury Models in Mice Generate Platelet and Coagulation-Dependent Thrombi, Am. J. Path., 2001, Vol. 158, No. 5, pp. 1613-1622.

6. Kondrat'ev A.S., Mikhailova I.A., Petrishchev N.N. Modeling of different degrees of microvessel laser-induced endothelium damage, Ros. fiziol. zhurnal im. I.M. Sechenova, 2013, No. 6, pp. 744-749.

7. Kelly K.M., Kimel S., Smith T.S., Stacy A., Hammer-Wilson M.J., Svaasand L., Nelson J.S. Combined Photodynamic and Photodermal Induced Injury Enchances Damage to In Vivo Model Blood Vessels, Lasers Surg Med., 2004, Vol. 34, pp. 407-413.

8. Zhu D., Lu W., Weng Y., Cui H., Luo Q. Monitoring Thermal- Induced Changes in Tumor Blood Flow and Microvessels with Laser Speckle Contrast Imaging, Applied Optics, 2007, Vol. 46, No. 10, pp. 1911-1917.

9. Kretz C.A., Vaezzadeh N., Gross P.L. Tissue Factor and Thrombosis Models, Arterioscler Thromb Vasc Biol, 2010, Vol. 30, pp. 900-908.


Review

For citations:


Gryshachova T.G., Mikhailova I.A., Struy A.V., Chephu S.G., Petrishchev N.N. INFLUENCE OF PHOTOACTIVATED ROSE BENGAL ON MICROCIRCULATION. Biomedical Photonics. 2017;6(3):11-15. (In Russ.) https://doi.org/10.24931/2413-9432-2017-6-3-11-15

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