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 1-20    21-40   41-48 
1.
A polymer-protein core-shell nanomedicine for inhibiting cancer migration followed by photo-triggered killing // J. Biomed. Nanotechnol., 2014. Vol. 10, N 8.-С.1401-1415

2.
A polymer-protein core-shell nanomedicine for inhibiting cancer migration followed by photo-triggered killing // J. Biomed. Nanotechnol., 2014. Vol. 10, N 8.-С.1401-1415

3.
A polymer-protein core-shell nanomedicine for inhibiting cancer migration followed by photo-triggered killing // J. Biomed. Nanotechnol., 2014. Vol. 10, N 8.-С.1401-1415

4.
Bae Self-quenching polysaccharide-based nanogels of pullulan/folate-photosensitizer conjugates for photodynamic therapy // Biomaterials, 2010. Vol. 31, N 24.-С.6325-6335

5.
Biocompatible magnetic microspheres for use in PDT and hyperthermia // J. Nanosci. and Nanotechnol., 2012. Vol. 12, N 6.-С.5111-5116

6.
Biodegradable nanoparticles for enhanced tumor detection and phototherapy // 6 International Conference on Porphyrins and Phthalocyanines (ICPP-6), Santa Ana Pueblo, N.M., July 4-9, 2010. -Dijon, 2010.-С.321

7.
Cellular uptake and photosensitizing properties of quantum dot-chlorin e6 complex. In vitro study // J. Biomed. Nanotechnol., 2014. Vol. 10, N 4.-С.679-686

8.
Cellular uptake and photosensitizing properties of quantum dot-chlorin e6 complex. In vitro study // J. Biomed. Nanotechnol., 2014. Vol. 10, N 4.-С.679-686

9.
Cellular uptake and photosensitizing properties of quantum dot-chlorin e6 complex. In vitro study // J. Biomed. Nanotechnol., 2014. Vol. 10, N 4.-С.679-686

10.
Dual chemotherapy and photodynamic therapy in an HT-29 human colon cancer xenograft model using SN-38-loaded chlorin-core star block copolymer micelles // Biomaterials, 2009. Vol. 30, N 21.-С.3614-3625

11.
Enhancement of transbilayer mobility of a membrane lipid probe accompanies formation of membrane leaks during photodynamic treatment of erythrocytes // Biochim. et biophys. acta. Biomembranes, 1989. Vol. 982, N 1.-С.53-61

12.
In vitro Photodynamic effects of lysyl chlorin p[6]: Cell survival, localization and ultrastructural changes // Photochem. and Photobiol., 1993. Vol. 58, N 5.-С.653-660

13.
In vitro studies of different irradiation conditions for Photodynamic inactivation of Helicobacter pylori // J. Photochem. and Photobiol. B, 2014. Vol. 141.-С.113-118

14.
Liu Involvement of ASK1 activation in apoptosis induced by NPe6-PDT // Proc. SPIE, 2010. Vol. 7565.-С.75650L/1-75650L/7

15.
Liu Involvement of ASK1 activation in apoptosis induced by NPe6-PDT // Proc. SPIE, 2010. Vol. 7565.-С.75650L/1-75650L/7

16.
Liu Involvement of ASK1 activation in apoptosis induced by NPe6-PDT // Proc. SPIE, 2010. Vol. 7565.-С.75650L/1-75650L/7

17.
Monden Интракраниальное и системное распределение нового фотосенсибилизатора ATX-10 на модели злокачественной опухоли мозга // Hiroshima daigaku igaku zasshi, 1995. Vol. 43, N 1.-С.77-85

18.
Morgan A.R. Endothelial cell killing in cultured rat liver slices following low light photodynamic therapy (PDT) // Int. J. Radiat. Biol., 1991. Vol. 60, N 1-2.-С.46

19.
Multifunctional core-shell upconversion nanoparticles for targeted tumor cells induced by near-infrared light // J. Mater. Chem. B, 2013. Vol. 1, N 21.-С.2757-2763

20.
Multifunctional core-shell upconversion nanoparticles for targeted tumor cells induced by near-infrared light // J. Mater. Chem. B, 2013. Vol. 1, N 21.-С.2757-2763

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