EFFECT OF THIAZOLE DERIVATIVE COMPLEXED WITH NANOSCALE POLYMERIC CARRIERS ON CELLULAR ULTRASTRUCTURE OF MURINE LYMPHOMA CELLS IN VIVO
DOI: http://dx.doi.org/10.30970/sbi.1502.653
Abstract
Background. A pronounced cytotoxic action of the thiazole derivatives complexed with polymeric carriers on tumor cells in vitro was reported earlier, while no cytotoxicity of these compounds was detected toward noncancerous cells. It was found that thiazole derivatives at concentrations of 10 and 50 µM affected lymphoma cell ultrastructure in vitro. The purpose of this work was to investigate the effect of thiazole derivative 8-methyl-2-Me-7-[trifluoromethyl-phenylmethyl]-pyrazolo-[4,3-e]-[1,3]- thiazolo-[3,2-a]-pyrimidin-4(2H)-one (PP2) and its complexes with polymeric carriers poly(VEP-co-GMA)-graft-mPEG (Th12) and poly(PEGMA) (Th14) on the ultrastructure of lymphoma cells in vivo.
Materials and Methods. Experiments were conducted on white wild-type male mice with grafted NK/Ly lymphoma. Ascite tumors were created by intreperitoneal inoculation of 1–2 mln of Nemet–Kelner lymphoma cells to mice. On the 12th day after inoculation, the body weight of animals was increased by 140–160 % mostly due to ascites growth. For treatment of ascites three solutions of the chemical compounds were prepared: PP2, PP2 + Th12, PP2 + Th14 and administered to the mice intraperitoneally for 5 days. The final concentration of PP2 was 5 mg/kg of body weight. Abdominal drainage from ascites was performed with a sterile syringe under chloroform anesthesia on the 10th day after the start of treatment. The ultrastructure of the cells was examined by electron microscopy.
Results. Еlectron microscopy study showed that control lymphoma cells have a special subcellular formations such as a relatively large nucleus, and specific plasma membrane filaments. The effects of thiazole derivative revealed apoptotic and necrotic manifestations of cytotoxicity, such as a deformation and disintegration of nucleus, a decreased nucleus/cytoplasm ratio, a destruction of the plasma membrane and a change of mitochondria shape. The studied compound complexed with polymeric carriers caused an apoptotic-like changes in lymphoma cells. Under the action of such complexes, the nucleus/cytoplasm ratio decreased and the area of mitochondria increased.
Conclusions. The obtained results suggest that the tested compounds induce apoptosis in tumor cells. Complexes of thiazole derivative with polymers do not impair the effect of the compound on lymphoma cells. The obtained data can be used to carry out further preclinical studies of thiazole derivatives complexed with polymeric carriers as potential antitumor drugs.
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1. Avramović N., Mandić B., Savić-Radojević A., Simić T. Polymeric nanocarriers of drug delivery systems in cancer therapy. Pharmaceutics, 2020; 12 (4): 298. Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
2. Finiuk N., Klyuchivska O., Ivasechko I., Hreniukh V., Ostapiuk Yu., Shalai Ya., Panchuk R., Matiychuk V., Obushak M., Stoika R., Babsky A. Proapoptotic effects of novel thiazole derivative on human glioma cells. Anticancer Drugs, 2019; 1(3): 27-37. Crossref ● PubMed ● Google Scholar | ||||
| ||||
3. Finiuk N.S., Ostapiuk Yu.V., Hreniuh V.P., Shalai Ya.R., Matiychuk V.S., Obushak M.D., Stoika R.S., Babsky A.M. Evaluation of antiproliferative activity of pyrazolothiazolopyrimidine derivatives. The Ukrainian Biochemical Journal, 2018; 90(2): 25-32. Crossref ● Google Scholar | ||||
| ||||
4. Finiuk N.S., Popovych M.V., Shalai Ya.R., Mandzynets' S.M., Hreniuh V.P., Ostapiuk Yu.V., Obushak M.D., Mitina N.E., Zaichenko O.S., Stoika R.S., Babsky A.M. Antineoplastic activity in vitro of 2-amino-5-benzylthiasol derivative in the complex with nanoscale polymeric carriers. Cytology and Genetics, 2021; 55 (1): 19-27. Crossref ● Google Scholar | ||||
| ||||
5. Han J., Zhao D., Li D., Wang X., Jin Z., Zhao K. Polymer-based nanomaterials and applications for vaccines and drugs. Polymers, 2018; 10(1): 31. Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
6. Kaminskyy V., Kulachkovskyy O., Stoika R. A decisive role of mitochondria in defining rate and intensity of apoptosis induction by different alkaloids. Toxicology Letters, 2008; 177(3): 168-181. Crossref ● PubMed ● Google Scholar | ||||
| ||||
7. Kobylinska L.I., Havrylyuk D.Ya., Mitina N.E., Zaichenko O.S., Lesyk R.B., Zimenkovsky B.S., Stoika R.S. Biochemical indicators of nephrotoxicity in blood serum of rats treated with novel 4-thiazolidinone derivatives or their complexes with polyethyleneglycol-containing nanoscale polymeric carrier. The Ukrainian Biochemical Journal, 2016; 88(1): 51-60. Crossref ● PubMed ● Google Scholar | ||||
| ||||
8. Mandzynets S.M., Kulachkovskii O.R., Bura M.V. Effect of avermectin on the ultrastructural characteristics of loach embryos. Cytology and Genetics, 2011; 45(5): 318-323. (In Ukrainian) Crossref ● Google Scholar | ||||
| ||||
9. Mulik R.S., Mцnkkцnen J., Juvonen R.O., Mahadik K.R., Paradkar A.R. Apoptosis-induced anticancer effect of transferrin-conjugated solid lipid nanoparticles of curcumin. Cancer Nanotechnology, 2012; 3(1-6): 65-81. Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
10. Nath Roy D., Goswami R., Pal A. Nanomaterial and toxicity: what can proteomics tell us about the nanotoxicology? Xenobiotica, 2017; 47(7): 632-43. Crossref ● PubMed ● Google Scholar | ||||
| ||||
11. Pei X., Zhou Z., Gan Z., Chen J., Zhang X., Cheng X., Wan Q., Wang J. PEGylated nano-graphene oxide as a nanocarrier for delivering mixed anticancer drugs to improve anticancer activity. Scientific Reports, 2020; 10(1): 2717. Crossref ● PubMed ● PMC ● Google Scholar | ||||
| ||||
12. Shalai Ya.R., Mandzynets S.M., Finiuk N.S., Hreniukh V.P., Babsky A.M. Processes of lipoperoxidation and respiration of mitochondria in the rat liver under the action of thiazoles derivatives in vitro. Studia Biologica, 2018; 12(2): 35-44. Crossref ● Google Scholar | ||||
| ||||
13. Shalai Ya.R., Mandzynets S.M., Hreniukh V.P., Finiuk N.S., Babsky A.M. Free-radical processes in NK/Ly lymphoma cells and hepatocytes under the effect of thiazole derivative. Bulletin of problems biology and medicin, 2018; 1.2(143): 234-238. Crossref | ||||
| ||||
14. Shalai Ya.R., Popovych M.V., Kulachkovskyy O.R., Hreniukh V.P., Mandzynets S.M., Finiuk N.S., Babsky A.M. Effect of novel 2-amino-5-benzylthiazole derivative on cellular ultrastructure and activity of antioxidant system in lymphoma cells. Studia Biologica, 2019; 13(1): 51-60. Crossref ● Google Scholar | ||||
| ||||
15. Senkiv Y., Riabtseva A., Heffeter P., Boiko N., Kowol C.R., Jungwith U., Shlyakhtina Y., Garasevych S.G., Mitina N., Berger W., Zaichenko O., Stoika R. Enhanced anticancer activity and circumvention of resistance mechanisms by novel polymeric/phospholipidic nanocarriers of doxorubicin. Journal of Biomedical Nanotechnology, 2014; 10(7): 1369-1381. Crossref ● PubMed ● Google Scholar | ||||
| ||||
16. Yang C., Liu H.-Z., Fu Z.-X. Effects of PEG-liposomal oxaliplatin on apoptosis, and expression of cyclin A and cyclin D1 in colorectal cancer cells. Oncology Reports, 2012; 28(3): 1006-1012. Crossref ● PubMed ● Google Scholar | ||||
| ||||
17. Wang L., Du J., Zhou Y., Wang Y. Safety of nanosuspensions in drug delivery. Nanomedicine: Nanotechnology, Biology and Medicine, 2017; 13(2): 455-469. Crossref ● PubMed ● Google Scholar |
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Copyright (c) 2021 M. V. Popovych, Ya. R. Shalai, V. P. Hreniukh, O. R. Kulachkovskyy, S. M. Mandzynets, N. E. Mitina, O. S. Zaichenko, A. M. Babsky
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