Chemistry, Physics and Technology of Surface, 2021, 12 (3), 216-225.

Synthesis and properties of nanostructures based on lanthanum fluoride for photodynamic therapy of tumors of the cranial cavity and bone tissue



DOI: https://doi.org/10.15407/hftp12.03.216

A. P. Kusyak, A. L. Petranovska, S. P. Turanska, O. I. Oranska, Yu. M. Shuba, D. I. Kravchuk, L. I. Kravchuk, V. S. Chornyi, O. A. Bur'yanov, Yu. L. Sobolevs'kyy, V. A. Dubok, P. P. Gorbyk

Abstract


The aim of the work is the synthesis of nanostructures based on lanthanum fluoride, promising for use in photodynamic therapy of tumors in organs of cranial cavity and bone tissues; a study of their structural properties and luminescence spectra. Synthesis of LaF3:Tb3+ was carried out by coprecipitation of components from aqueous and alcoholic (methanol) solution. As precursors were used: La(NO3)3×6H2O, TbCl3, NH4F. All reagents have qualification “chemically pure”. Distilled water and methanol were used as solvent. The synthesis of nanosized magnetite in the single-domain state was performed by the Elmore method. Synthesized nanodisperse samples are characterized by XRD analysis, DTGA, TEM. The magnetic properties and spectra of UV luminescence were also studied. It has been found that the XRD-patterns of LaF3:Tb3+ samples synthesized in water and methanol do not differ fundamentally. Under the experimental conditions, the most perfect crystals of hexagonal syngony were formed during crystallization in an autoclave. Their average size was ~ 15 nm. In TEM images, the length of the crystals exceeds the width by 3–4 times. Crystals are prone to aggregation and the formation of chain structures. The UV luminescence spectrum of the synthesized nanodisperse samples in aqueous medium at the concentration of 0.5 mg/ml and excited by ultraviolet radiation is characteristic of the structure of LaF3:Tb3+. Ensembles of particles Fe3O4/LaF3:Tb3+ NCs were synthesized. Transmission electron microscopy has shown that the shapes of particles of NCs and LaF3:Tb3+ nanocrystals are fundamentally different. Particles of Fe3O4/LaF3:Tb3+ NCs have a spherical shape, which is characteristic of structures of the core-shell type. X-ray diffraction patterns of NCs confirm this conclusion. The conditions for the synthesis of NCs did not significantly change the magnetic properties of their nuclei, single-domain Fe3O4 nanoparticles (NPs). The luminescence spectrum of Fe3O4/LaF3:Tb3+ NCs differs significantly from the spectrum of samples of nanodispersed LaF3:Tb3+ both in intensity and in the structure of the bands. These spectral differences may be due to differences in structure, features of the nanocrystalline structure, the content of the LaF3:Tb3+ scintillator and Tb3+ ions in samples of LaF3:Tb3+ nanocrystals and shells of Fe3O4/LaF3:Tb3+ nanocomposites. Composites of dispersed 60S bioglass with nanodispersed crystalline LaF3:Tb3+ in the dry state, and distilled water, showed the presence of luminescence upon excitation by UV radiation. The results of research show the prospects of the synthesized nanodispersed luminophors LaF3:Tb3+, for use as a source of luminescent radiation in optopharmacology and photodynamic therapy of tumors in organs of cranial cavity and bone tissues. Optimization of luminescent properties of the original nanodispersed luminophors, their compositions with bioactive glass, luminescent shells in the composition of magnetosensitive NCs, as well as the technology of manufacturing of these structures will significantly allow us to improve their performance characteristics. The results of the work indicate the prospects of the synthesized structures for further research under the conditions of excitation by high-permeability “soft” X-ray radiation for use in optopharmacology and photodynamic therapy of tumors in organs of cranial cavity and bone tissues. Optimization of properties of the original nanodispersed luminophors, their compositions with bioactive glass and magnetosensitive carriers Fe3O4 will allow us to improve significantly their performance characteristics.


Keywords


nanodisperse luminophors; lanthanum fluoride; nanocomposites; magnetite; bioglass

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References


Roco M.C., Williams R.S., Alivisatos P. Vision for Nanotechnology R&D in the Next Decade. (Dordrecht: Kluwer Acad. Publ., 2002).

Shpak A.P., Gorbyk P.P. Nanomaterials and Supramolecular Structures: Physics, Chemistry, and Applications. (Nederlands: Springer, 2009). https://doi.org/10.1007/978-90-481-2309-4

Gorbyk P.P., Lerman L.B., Petranovska A.L., Turanska S.P., Pylypchuk I.V. Magnetosensitive Nanocomposites with Hierarchical Nanoarchitecture as Biomedical Nanorobots: Synthesis, Properties, and Application. In: Fabrication and Self-Assembly of Nanobiomaterials, Applications of Nanobiomaterials. (Elsevier, 2016). https://doi.org/10.1016/B978-0-323-41533-0.00010-6

Abramov M.V., Kusyak A.P., Kaminskiy O.M., Turanska S.P., Petranovska A.L., Kusyak N.V., Gorbyk P.P. Magnetosensitive nanocomposites based on cisplatin and doxorubicin for application in oncology. In: Horizons in World Physics. 2017. 293: 1.

Abramov M.V., Petranovska A.L., Kusyak N.V., Kusyak A.P., Korniichuk N.M., Turanska S.P., Gorbyk P.P., Luk'yanova N.Yu., Chekhun V.F. Synthesis and properties of magnetosensitive nanocomposites and ferrofluids based on magnetite, gemcitabine and HER2 antibody. Funct. Mater. 2020. 27(2): 283. https://doi.org/10.15407/fm27.02.283

Kusyak A.P., Petranovska A.L., Dubok V.A., Chornyi V.S., Bur'yanov O.A., Korniichuk N.M., Gorbyk P.P. Adsorption immobilization of chemotherape utic drugcis platin on the surface of sol-gel bioglass 60S. Funct. Mater. 2021. 28(1): 97.

Hench L.L., Fielder E. Biological Gel-Glasses. In: Sol-Gel Technologies for Glass Producers and Users. (Springer Science, Business Media, 2004). https://doi.org/10.1007/978-0-387-88953-5_21

Dutra C.E.A., Pereira M.M., Serakides R., Rezende C.M.F. In vivo evaluation of bioactive glass foams associated with platelet-rich plasma in bone defects. J. Tissue Eng. Regener. Med. 2008. 2(4): 221. https://doi.org/10.1002/term.86

Buryanov O.A., Chornyi V.S., Protsenko V.V., Shapovalov V.S., Kusyak V.A. Analysis of replacement of bone defects by calcium phosphate biomaterials in bone diseases. Litopys Travmat. Ortoped. 2018. 1-2: 37. [in Ukrainian].

Kusyak A.P., Petranovska A.L., Shuba Y.M., Kravchuk D.I., Kravchuk L.I., Buryanov O.A., Chornyi V.S., Sobolevskyi Y.L., Gorbyk P.P. Synthesis and properties of nanodisperse luminophores for photodynamic and optopharmacologic therapies of tumors of cranial cavity and bone tissue. In: Chemistry, Physics and Technology of Surface. Nanostructures and Nanomaterials in Medicine: Challenges, Tasks and Perspectives. Proc. Ukr. Int. Conf., Workshop (Kyiv, 2021). P. 125.

Medvedev I.B., Belikova Ye.I., Syamichev M.P. Photodynamic therapy in ophthalmology. (Moscow, 2006). [in Russian].

Helfond M.L. Photodynamic therapy in oncology. Pract. Oncol. 2007. 8(4): 204. [in Russian].

Lytvynenko B.V., Korovin S.I., Litus O.I., Bashtan V.P., Lytvynenko V.Ye. Photodynamic therapy is a modern effective method of treating basal cell skin cancer. Clinical Surgery. 2016. 6: 71. [in Ukrainian].

Gorobets' S.V., Gorobets' O.Yu., Gorbyk P.P., Uvarova I.V. Functional bio- and nanomaterials of medical destination. (Kyiv: Kondor, 2018). [in Ukrainian].

Min-Hua C., Yi-Jhen J., Sheng-Kai W., Yo-Shen C., Nobutaka H., Feng-Huei L. Non-invasive photodynamic therapy in brain cancer by use of Tb3+-doped LaF3 nanoparticles in combination with photosensitizer through X-ray irradiation: a proof-of-concept study. Nanoscale Res. Let. 2017. 12: 62. https://doi.org/10.1186/s11671-017-1840-3

Liu Y., Chen W., Wang S., Joly A.G., Westcott S., Woo B.K. X-ray luminescence of LaF3:Tb3+ and LaF3:Ce3+, Tb3+ water-soluble nanoparticles. J. Appl. Phys. 2008. 103(6): 063105. https://doi.org/10.1063/1.2890148

Hsiu-Wen C., Chien-Hao H., Chien-Hsin Y., Tzong-Liu W. Synthesis, optical properties, and sensing applications of LaF3:Yb3+/Er3+/Ho3+/Tm3+ upconversion nanoparticles. Nanomaterials. 2020. 10(12): 2477. https://doi.org/10.3390/nano10122477

Gorbyk P.P. Medico-biological nanocomposites with functions of nanorobots: state of research, development and prospects for practical implementation. Him. Fiz. Tehnol. Poverhni. 2020. 11(1): 128. [in Ukrainian]. https://doi.org/10.15407/hftp11.01.128

Dubok V.A., Protsenko V.V., Shynkaruk A.V., Atamanenko O.N. A new generation of bioactive ceramics - special features of properties and clinical results. Orthopedics, Traumatology and Prosthetics. 2008. 3: 91. [in Russian].

Buryanov A.A., Chornyi V.S., Dedukh N.V., Dubok V.A., Protsenko V.V., Omelchenko T.N., Vakulich M.V., Lyanskorunskiy V.N., Shapovalov V.S., Abudeikh U. Peculiarities of regenerative reactions in filling bone defects with bioglass in combination with autologous plasma enriched with platelets. Trauma. 2019. 20(6): 56. [in Russian]. https://doi.org/10.22141/1608-1706.1.20.2019.158670

Mangaiyarkarasi R., Chinnathambi S., Karthikeyan S., Aruna P., Ganesan S. Paclitaxel conjugated Fe3O4@LaF3:Ce3+,Tb3+ nanoparticles as bifunctional targeting carriers for cancer theranostics application. J. Magn. Magn. Mater. 2016. 399: 207. https://doi.org/10.1016/j.jmmm.2015.09.084

Zhang F., Braun G.B., Pallaoro A., Zhang Y., Shi Y., Cui D., Moskovits M., Zhao D., Stucky G.D. Mesoporous multifunctional upconversion luminescent and magnetic "nanorattle" materials for targeted chemotherapy. Nano Lett. 2011. 12(1): 61. https://doi.org/10.1021/nl202949y

DiMaio J., Kokuoz B., James T.L., Harkey T., Monofsky D., Ballato J. Photoluminescent characterization of atomic diffusion in core-shell nanoparticles. Opt. Express. 2008. 16(16): 11769. https://doi.org/10.1364/OE.16.011769

Jing K., Guo X., Diao X., Wu Q., Jiang Y., Sun Y., Zhu Y. Synthesis and characterization of dipicolinate sensitized LaF3 :Tb3+ nanoparticles and their interaction with bovine serum albumin. J. Lumin. 2015. 157: 184. https://doi.org/10.1016/j.jlumin.2014.08.061

Patro L.N., Kamala Bharathi K., Ravi Chandra Raju N. Microstructural and ionic transport studies of hydrothermally synthesized lanthanum fluoride nanoparticles. AIP Adv. 2014. 4(12): 127139. https://doi.org/10.1063/1.4904949

Tang Y., Hu J., Elmenoufy A.H., Yang X. Highly efficient FRET system capable of deep photodynamic therapy established on X-ray excited mesoporous LaF3:Tb scintillating nanoparticles. ACS Appl. Mater. Interfaces. 2015. 7(22): 12261. https://doi.org/10.1021/acsami.5b03067

Kasturi S., Marikumar R., Vaidyanathan S. Trivalent rare-earth activated hexagonal lanthanum fluoride (LaF3 :RE3+ , where RE = Tb, Sm, Dy and Tm) nanocrystals: synthesis and optical properties. J. Lumin. 2018. 33(5): 897. https://doi.org/10.1002/bio.3488




DOI: https://doi.org/10.15407/hftp12.03.216

Copyright (©) 2021 A. P. Kusyak, A. L. Petranovska, S. P. Turanska, O. I. Oranska, Yu. M. Shuba, D. I. Kravchuk, L. I. Kravchuk, V. S. Chornyi, O. A. Bur'yanov, Yu. L. Sobolevs'kyy, V. A. Dubok, P. P. Gorbyk

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