Andrey V. Nechaev
Russian Academy of Sciences
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Featured researches published by Andrey V. Nechaev.
Nano Research | 2015
Anna E. Guller; Alla N. Generalova; Elena Petersen; Andrey V. Nechaev; Inna Trusova; Nikolay N. Landyshev; Annemarie Nadort; Ekaterina A. Grebenik; Sergey M. Deyev; Anatoly B. Shekhter; Andrei V. Zvyagin
The cytotoxicity and non-specific cellular uptake of the most popular composition of upconversion nanoparticle (UCNP), NaYF4:Yb3+:Er3+, is reported using normal human skin cells, including dermal fibroblasts and immortalized human epidermal linear keratinocytes (HaCaT). A new hydrophilization reaction of as-synthesized UCNPs based on tetramethylammonium hydroxide (TMAH) enabled evaluation of the intrinsic cytotoxicity of bare UCNPs. The cytotoxicity effects of the UCNP surface-coating and polystyrene host were investigated over the concentration range 62.5–125 μg/mL with 24-h incubation, using a MTT test and optical microscopy. The fibroblast viability was not compromised by UCNPs, whereas the viability of keratinocytes varied from 52% ± 4% to 100% ± 10% than the control group, depending on the surface modification. Bare UCNPs reduced the keratinocyte viability to 76% ± 3%, while exhibiting profound non-specific cellular uptake. Hydrophilic poly(D,L-lactide)- and poly(maleic anhydride-alt-1-octadecene)-coated UCNPs were found to be least cytotoxic among the polymer-coated UCNPs, and were readily internalized by human skin cells. Polystyrene microbeads impregnated with UCNPs remained nontoxic. Surprisingly, no correlation was found between UCNP cytotoxicity and the internalization level in cells, although the latter ranged broadly from 0.03% to 59%, benchmarked against 100% uptake level of TMAH-UCNPs.
Scientific Reports | 2016
E. V. Khaydukov; Kristina E. Mironova; Vladimir A. Semchishen; Alla N. Generalova; Andrey V. Nechaev; Khochenkov Da; Stepanova Ev; Lebedev Oi; Andrei V. Zvyagin; Sergey M. Deyev; Vladislav Ya Panchenko
Riboflavin (Rf) is a vitamin and endogenous photosensitizer capable to generate reactive oxygen species (ROS) under UV-blue irradiation and kill cancer cells, which are characterized by the enhanced uptake of Rf. We confirmed its phototoxicity on human breast adenocarcinoma cells SK-BR-3 preincubated with 30-μM Rf and irradiated with ultraviolet light, and proved that such Rf concentrations (60 μM) are attainable in vivo in tumour site by systemic intravascular injection. In order to extend the Rf photosensitization depth in cancer tissue to 6 mm in depth, we purpose-designed core/shell upconversion nanoparticles (UCNPs, NaYF4:Yb3+:Tm3+/NaYF4) capable to convert 2% of the deeply-penetrating excitation at 975 nm to ultraviolet-blue power. This power was expended to photosensitise Rf and kill SK-BR-3 cells preincubated with UCNPs and Rf, where the UCNP-Rf energy transfer was photon-mediated with ~14% Förster process contribution. SK-BR-3 xenograft regression in mice was observed for 50 days, following the Rf-UCNPs peritumoural injection and near-infrared light photodynamic treatment of the lesions.
Biomedical Optics Express | 2014
E. V. Khaydukov; Vladimir A. Semchishen; V N Seminogov; Andrey V. Nechaev; Andrei V. Zvyagin; V. I. Sokolov; A. S. Akhmanov; V. Ya. Panchenko
Optical visualization systems are needed in medical applications for determining the localization of deep-seated luminescent markers in biotissues. The spatial resolution of such systems is limited by the scattering of the tissues. We present a novel epi-luminescent technique, which allows a 1.8-fold increase in the lateral spatial resolution in determining the localization of markers lying deep in a scattering medium compared to the traditional visualization techniques. This goal is attained by using NaYF4:Yb(3+)Tm(3+)@NaYF4 core/shell nanoparticles and special optical fiber probe with combined channels for the excitation and detection of anti-Stokes luminescence signals.
Nanotechnologies in Russia | 2015
E. V. Khaydukov; V. V. Rocheva; K. E. Mironova; Alla N. Generalova; Andrey V. Nechaev; Vladimir A. Semchishen; V. Ya. Panchenko
Ink for rapid the application of anticounterfeit labels by means of standard printing devices has been developed based on upconversion nanoparticles (nanophosphors). Printing ink is made of an aqueous dispersion of nanoparticles with a NaYF4:YbTm/NaYF4 core–shell structure at a concentration of 0.5 mg/mL. The surface of nanoparticles is modified with amphiphilic polymers. The biosafety of ink is demonstrated in primary cultures of human fibroblasts. The hidden labeling, which is invisible in ambient lighting, is performed by the method of inkjet printing on paper. A printed image is visualized by IR laser irradiation at a wavelength of 975 nm. It is demonstrated that additional modalities of protection can be obtained by encoding the spectra and intensities of the anti-Stokes luminescence lines when combining the dopant lanthanides in nanoparticles.
Nanotechnology | 2017
Sergey Alyatkin; Ilya Asharchuk; Kirill V. Khaydukov; Andrey V. Nechaev; Oleg I. Lebedev; Yuri G. Vainer; Vladimir A. Semchishen; E. V. Khaydukov
The mechanism of upconversion at the nanoscale is still under discussion. In this paper, we report on the experimental results of anti-Stokes luminescence kinetics in the upconversion nanoparticles of β-NaYF4: 20%Yb3+; 0.6%Tm3+. The parameters of the luminescence kinetics were found to be unambiguously dependent on the number of excitation quanta n, which are necessary for certain transitions between the energy states of thulium ions. The observed correlation has been explained by means of the long-lasting energy migration between the ytterbium ions. The spread in time between the luminescent maxima of the corresponding thulium transitions not only shows the nonlinear character of upconversion, but also reveals the time scale of energy migration as well. From these, we derive that the conventional Förster formalism applied to the estimation of energy transfer efficiency in UCNP-fluorophore pairs can provide misleading results.
Scientific Reports | 2018
V. V. Rocheva; Anastasia Koroleva; Alexander G. Savelyev; Kirill V. Khaydukov; Alla N. Generalova; Andrey V. Nechaev; Anna E. Guller; Vladimir A. Semchishen; Boris N. Chichkov; E. V. Khaydukov
Three-dimensional (3D) rapid prototyping technology based on near-infrared light-induced polymerization of photocurable compositions containing upconversion nanomaterials has been explored. For this aim, the rationally-designed core/shell upconversion nanoparticles NaYF4:Yb3+,Tm3+/NaYF4, with the distinct ultraviolet-emitting lines and unprecedentedly high near-infrared to ultraviolet conversion efficiency of
international conference laser optics | 2016
Andrey V. Nechaev; M. Garasev; V. Kocharovsky
Bulletin of The Russian Academy of Sciences: Physics | 2016
V. V. Rocheva; D. A. Khochenkov; Alla N. Generalova; Andrey V. Nechaev; Vladimir A. Semchishen; E. V. Stepanova; V. I. Sokolov; E. V. Khaydukov; V. Ya. Panchenko
{\eta }_{{\bf{UC}}}^{({\bf{UV}})}=2{\boldsymbol{ \% }}
Nanoscale | 2017
Kristina E. Mironova; Khochenkov Da; Alla N. Generalova; V. V. Rocheva; N. V. Sholina; Andrey V. Nechaev; Vladimir A. Semchishen; Sergey M. Deyev; Andrei V. Zvyagin; E. V. Khaydukov
EPJ Web of Conferences | 2018
Nataly Sholina; Polina A. Demina; Dmitry Khochenkov; Alla N. Generalova; Andrey V. Nechaev; Eugeny Khaydukov
ηUC(UV)=2% have been used. The upconverted ultraviolet photons were capable to efficiently activate photoinitiators contained in light-sensitive resins under moderate intensities of NIR excitation below 10 W cm−2 and induce generation of radicals and photopolymerization in situ. Near infrared-activated polymerization process, both at the millimeter and sub-micron scales, was investigated. Polymeric macro- and microstructures were fabricated by means of near infrared laser scanning photolithography in the volume of liquid photocurable compositions with focused laser light at 975 nm wavelength. Examination of the polymerization process in the vicinity of the nanoparticles shows strong differences in the rate of polymer shell growth on flat and edge nanoparticle sides. This phenomenon mainly defines the resolution of the demonstrated near infrared - ultraviolet 3D printing technology at the micrometer scale level.