New Steroidal Selenides as Proapoptotic Factors
2023
Jastrzębska, Izabella | Wawrusiewicz-Kurylonek, Natalia | Grześ, Paweł A. | Ratkiewicz, Artur | Grabowska, Ewa | Czerniecka, Magdalena | Czyżewska, Urszula | Tylicki, Adam
Cytostatic and pro-apoptotic effects of selenium steroid derivatives against HeLa cells were determined. The highest cytostatic activity was shown by derivative 4 (GI₅₀25.0 µM, almost complete growth inhibition after three days of culture, and over 97% of apoptotic and dead cells at 200 µM). The results of our study (cell number measurements, apoptosis profile, relative expression of apoptosis related APAF1, BID, and mevalonate pathway-involved HMGCR, SQLE, CYP51A1, and PDHB genes, and computational chemistry data) support the hypothesis that tested selenosteroids induce the extrinsic pathway of apoptosis by affecting the cell membrane as cholesterol antimetabolites. An additional mechanism of action is possible through a direct action of derivative 4 to inhibit PDHB expression in a way similar to steroid hormones.
Show more [+] Less [-]This study was supported by the Ministry of Education and Science, Poland, as a part of subsidies for maintaining the research potential granted to the Faculty of Biology (SWB-8) and Faculty of Chemistry of the University of Białystok. The equipment used for the cell culture at the Laboratory of Tissue Culture was funded by the Ministry of Science and Higher Education (grant no. 8636/E342/R/2014; Restructuration of Faculty of Biology and Chemistry). This work was financed from a scientific project by the subsidy of the Medical University of Bialystok (B.SUB.23.306).
Show more [+] Less [-]Izabella Jastrzębska: [email protected]
Show more [+] Less [-]Adam Tylicki: [email protected]
Show more [+] Less [-]Izabella Jastrzębska - Faculty of Chemistry, University of Białystok
Show more [+] Less [-]Natalia Wawrusiewicz-Kurylonek - Department of Clinical Genetics, Medical University of Białystok
Show more [+] Less [-]Paweł A. Grześ - Faculty of Chemistry, University of Białystok
Show more [+] Less [-]Artur Ratkiewicz - Faculty of Chemistry, University of Białystok
Show more [+] Less [-]Ewa Grabowska - Doctoral School of Exact and Natural Sciences, University of Bialystok
Show more [+] Less [-]Magdalena Czerniecka - Faculty of Biology, University of Białystok
Show more [+] Less [-]Urszula Czyzewska - Faculty of Biology, University of Białystok
Show more [+] Less [-]Adam Tylicki - Faculty of Biology, University of Białystok
Show more [+] Less [-]Jastrzebska, I.; Grzes, P.A.; Niemirowicz-Laskowska, K.; Car, H. Selenosteroids—Promising hybrid compounds with pleiotropic biological activity: Synthesis and biological aspects. J. Steroid Biochem. Mol. Biol. 2021, 213, 105975.
Show more [+] Less [-]Romero-Hernández, L.L.; Merino-Montiel, P.; Montiel-Smith, S.; Meza-Reyes, S.; Vega-Báez, J.L.; Abasolo, I.; Schwartz, S.; López, Ó.; Fernández-Bolaños, J.G. Diosgenin-based thio(seleno)ureas and triazolyl glycoconjugates as hybrid drugs. Antioxidant and antiproliferative profile. Eur. J. Med. Chem. 2015, 99, 67–81.
Show more [+] Less [-]Fuentes-Aguilar, A.; Romero-Hernández, L.L.; Arenas-González, A.; Merino-Montiel, P.; Montiel-Smith, S.; Meza-Reyes, S.; Vega-Báez, J.L.; Plata, G.B.; Padrón, J.M.; López, Ó.; et al. New selenosteroids as antiproliferative agents. Org. Biomol. Chem. 2017, 15, 5041–5054.
Show more [+] Less [-]Huang, Y.; Peng, Z.; Wei, M.; Gan, C.; Zhang, Y.; Chen, S.; Xiao, J.; Cui, J. Synthesis and antiproliferative evaluation of some novel estradiol selenocyanates. Steroids 2022, 181, 108992.
Show more [+] Less [-]Huang, Y.; Peng, Z.; Wei, M.; Pang, L.; Cheng, Y.; Xiao, J.-A.; Gan, C.; Cui, J. Straightforward synthesis of steroidal selenocyanates through oxidative umpolung selenocyanation of steroids and their antitumor activity. J. Steroid Biochem. Mol. Biol. 2023, 225, 106203.
Show more [+] Less [-]Huang, Y.-M.; Cheng, Y.; Peng, Z.-N.; Pang, L.-P.; Li, J.-Y.; Xiao, J.-A.; Zhang, Y.-F.; Cui, J.-G. Synthesis and antitumor activity of some cholesterol-based selenocyanate compounds. Steroids 2023, 194, 109217.
Show more [+] Less [-]Chen, P.; Wang, P.; Song, N.; Li, M. Convergent synthesis and cytotoxic activities of 26-thio- and selenodioscin. Steroids 2013, 78, 959–966.
Show more [+] Less [-]Cui, J.; Pang, L.; Wei, M.; Gan, C.; Liu, D.; Yuan, H.; Huang, Y. Synthesis and antiproliferative activity of 17-[1',2',3']-selenadiazolylpregnenolone compounds. Steroids 2018, 140, 151–158.
Show more [+] Less [-]Jastrzebska, I.; Mellea, S.; Salerno, V.; Grzes, P.A.; Siergiejczyk, L.; Niemirowicz-Laskowska, K.; Bucki, R.; Monti, B.; Santi, C. PhSeZnCl in the Synthesis of Steroidal β-Hydroxy-Phenylselenides Having Antibacterial Activity. Int. J. Mol. Sci. 2019, 20, 2121.
Show more [+] Less [-]Huang, Y.; Wei, M.; Peng, Z.; Cheng, Y.; Zhang, Y.; Li, J.; Xiao, J.; Gan, C.; Cui, J. Synthesis of estrone selenocyanate Compounds, anti-tumor activity evaluation and Structure-activity relationship analysis. Bioorg. Med. Chem. 2022, 76, 117086.
Show more [+] Less [-]Grześ, P.A.; Monti, B.; Wawrusiewicz-Kurylonek, N.; Bagnoli, L.; Sancineto, L.; Jastrzebska, I.; Santi, C. Simple Zn-Mediated Seleno- and Thio-Functionalization of Steroids at C-1 Position. Int. J. Mol. Sci. 2022, 23, 3022.
Show more [+] Less [-]Izadi, M.; Ali, T.A.; Pourkarimi, E. Over Fifty Years of Life, Death, and Cannibalism: A Historical Recollection of Apoptosis and Autophagy. Int. J. Mol. Sci. 2021, 22, 12466.
Show more [+] Less [-]Göbel, A.; Rauner, M.; Hofbauer, L.C.; Rachner, T.D. Cholesterol and beyond—The role of the mevalonate pathway in cancer biology. Biochim. Biophys. Acta Rev. Cancer 2020, 1873, 188351.
Show more [+] Less [-]Lepesheva, G.I.; Waterman, M.R. Sterol 14α-demethylase cytochrome P450 (CYP51), a P450 in all biological kingdoms. Biochim. Biophys. Acta Gen. Subj. 2007, 1770, 467–477.
Show more [+] Less [-]Saunier, E.; Benelli, C.; Bortoli, S. The pyruvate dehydrogenase complex in cancer: An old metabolic gatekeeper regulated by new pathways and pharmacological agents: Pyruvate dehydrogenase complex in cancer. Int. J. Cancer 2016, 138, 809–817.
Show more [+] Less [-]Dorstyn, L.; Akey, C.W.; Kumar, S. New insights into apoptosome structure and function. Cell Death Differ. 2018, 25, 1194–1208.
Show more [+] Less [-]Zou, H.; Henzel, W.J.; Liu, X.; Lutschg, A.; Wang, X. Apaf-1, a Human Protein Homologous to C. elegans CED-4, Participates in Cytochrome c–Dependent Activation of Caspase-3. Cell 1997, 90, 405–413.
Show more [+] Less [-]Billen, L.P.; Shamas-Din, A.; Andrews, D.W. Bid: A Bax-like BH3 protein. Oncogene 2008, 27, S93–S104.
Show more [+] Less [-]Grzes, P.A.; Sawicka, A.; Niemirowicz-Laskowska, K.; Wielgat, P.; Sawicka, D.; Car, H.; Jastrzebska, I. Metal-promoted synthesis of steroidal ethynyl selenides having anticancer activity. J. Steroid Biochem. Mol. Biol. 2023, 227, 106232.
Show more [+] Less [-]Cui, J.; Wei, M.; Pang, L.; Gan, C.; Xiao, J.; Shi, H.; Zhan, J.; Liu, Z.; Huang, Y. Synthesis and antiproliferative evaluation of novel steroid-benzisoselenazolone hybrids. Steroids 2019, 152, 108502.
Show more [+] Less [-]Juarez, D.; Fruman, D.A. Targeting the Mevalonate Pathway in Cancer. Trends Cancer 2021, 7, 525–540.
Show more [+] Less [-]Xu, Z.; Huang, L.; Dai, T.; Pei, X.; Xia, L.; Zeng, G.; Ye, M.; Liu, K.; Zeng, F.; Han, W.; et al. SQLE Mediates Metabolic Reprogramming to Promote LN Metastasis in Castration-Resistant Prostate Cancer. OncoTargets Ther. 2021, 14, 4285–4295.
Show more [+] Less [-]Xu, H.; Zhou, S.; Tang, Q.; Xia, H.; Bi, F. Cholesterol metabolism: New functions and therapeutic approaches in cancer. Biochim. Biophys. Acta Rev. Cancer 2020, 1874, 188394.
Show more [+] Less [-]Ge, H.; Zhao, Y.; Shi, X.; Tan, Z.; Chi, X.; He, M.; Jiang, G.; Ji, L.; Li, H. Squalene epoxidase promotes the proliferation and metastasis of lung squamous cell carcinoma cells though extracellular signal-regulated kinase signaling. Thorac. Cancer 2019, 10, 428–436.
Show more [+] Less [-]Brown, D.N.; Caffa, I.; Cirmena, G.; Piras, D.; Garuti, A.; Gallo, M.; Alberti, S.; Nencioni, A.; Ballestrero, A.; Zoppoli, G. Squalene epoxidase is a bona fide oncogene by amplification with clinical relevance in breast cancer. Sci. Rep. 2016, 6, 19435.
Show more [+] Less [-]Zhang, H.-Y.; Li, H.-M.; Yu, Z.; Yu, X.; Guo, K. Expression and significance of squalene epoxidase in squamous lung cancerous tissues and pericarcinoma tissues: Expression of SQLE mRNA and protein. Thorac. Cancer 2014, 5, 275–280.
Show more [+] Less [-]Micheau, O.; Tschopp, J. Induction of TNF Receptor I-Mediated Apoptosis via Two Sequential Signaling Complexes. Cell 2003, 114, 181–190.
Show more [+] Less [-]Berghe, T.V.; van Loo, G.; Saelens, X.; van Gurp, M.; Brouckaert, G.; Kalai, M.; Declercq, W.; Vandenabeele, P. Differential Signaling to Apoptotic and Necrotic Cell Death by Fas-associated Death Domain Protein FADD. J. Biol. Chem. 2004, 279, 7925–7933.
Show more [+] Less [-]Wu, C.-C.; Lee, S.; Malladi, S.; Chen, M.-D.; Mastrandrea, N.J.; Zhang, Z.; Bratton, S.B. The Apaf-1 apoptosome induces formation of caspase-9 homo- and heterodimers with distinct activities. Nat Commun. 2016, 7, 13565.
Show more [+] Less [-]Bunik, V.I.; Tylicki, A.; Lukashev, N.V. Thiamin diphosphate-dependent enzymes: From enzymology to metabolic regulation, drug design and disease models. FEBS J. 2013, 280, 6412–6442.
Show more [+] Less [-]Maliszewski, D.; Demirel, R.; Wróbel, A.; Baradyn, M.; Ratkiewicz, A.; Drozdowska, D. s-Triazine Derivatives Functionalized with Alkylating 2-Chloroethylamine Fragments as Promising Antimicrobial Agents: Inhibition of Bacterial DNA Gyrases, Molecular Docking Studies, and Antibacterial and Antifungal Activity. Pharmaceuticals 2023, 16, 1248.
Show more [+] Less [-]Wróbel, A.; Baradyn, M.; Ratkiewicz, A.; Drozdowska, D. Synthesis, Biological Activity, and Molecular Dynamics Study of Novel Series of a Trimethoprim Analogs as Multi-Targeted Compounds: Dihydrofolate Reductase (DHFR) Inhibitors and DNA-Binding Agents. Int. J. Mol. Sci. 2021, 22, 3685.
Show more [+] Less [-]Mahipal, S.; Kya, M.; Xiaoling, M. Effect of dimethyl sulfoxide on in vitro proliferation of skin fibroblast cells. J. Biotech Res. 2017, 8, 78–82.
Show more [+] Less [-]Timm, M.; Saaby, L.; Moesby, L.; Hansen, E.W. Considerations regarding use of solvents in in vitro cell based assays. Cytotechnology 2013, 65, 887–894.
Show more [+] Less [-]Da Violante, G.; Zerrouk, N.; Richard, I.; Provot, G.; Chaumeil, J.C.; Arnaud, P. Evaluation of the Cytotoxicity Effect of Dimethyl Sulfoxide (DMSO) on Caco2/TC7 Colon Tumor Cell Cultures. Biol. Pharm. Bull. 2002, 25, 1600–1603.
Show more [+] Less [-]Trott, O.; Olson, A.J. AutoDock Vina: Improving the speed and accuracy of docking with a new scoring function, efficient optimization, and multithreading. J. Comput. Chem. 2010, 31, 455–461.
Show more [+] Less [-]The PyMOL Molecular Graphics System, Version 2.2.3. Copyright Schrodinger LLC. Available online: https://pymol.org (accessed on 30 October 2021).
Show more [+] Less [-]Jo, S.; Kim, T.; Im, W. Automated Builder and Database of Protein/Membrane Complexes for Molecular Dynamics Simulations. PLoS ONE 2007, 2, e880.
Show more [+] Less [-]Jo, S.; Kim, T.; Iyer, V.G.; Im, W. CHARMM-GUI: A web-based graphical user interface for CHARMM. J. Comput. Chem. 2008, 29, 1859–1865.
Show more [+] Less [-]Botet-Carreras, A.; Montero, M.T.; Sot, J.; Domènech, Ò.; Borrell, J.H. Characterization of monolayers and liposomes that mimic lipid composition of HeLa cells. Colloids Surfaces B Biointerfaces 2020, 196, 111288.
Show more [+] Less [-]Singh, U.C.; Kollman, P.A. An approach to computing electrostatic charges for molecules. J. Comput. Chem. 1984, 5, 129–145.
Show more [+] Less [-]Hub, J.S.; Winkler, F.K.; Merrick, M.; De Groot, B.L. Potentials of Mean Force and Permeabilities for Carbon Dioxide, Ammonia, and Water Flux across a Rhesus Protein Channel and Lipid Membranes. J. Am. Chem. Soc. 2010, 132, 13251–13263.
Show more [+] Less [-]Wennberg, C.L.; Van Der Spoel, D.; Hub, J.S. Large Influence of Cholesterol on Solute Partitioning into Lipid Membranes. J. Am. Chem. Soc. 2012, 134, 5351–5361.
Show more [+] Less [-]Phillips, J.C.; Hardy, D.J.; Maia, J.D.C.; Stone, J.E.; Ribeiro, J.V.; Bernardi, R.C.; Buch, R.; Fiorin, G.; Hénin, J.; Jiang, W.; et al. Scalable molecular dynamics on CPU and GPU architectures with NAMD. J. Chem. Phys. 2020, 153, 044130.
Show more [+] Less [-]Humphrey, W.; Dalke, A.; Schulten, K. VMD: Visual molecular dynamics. J. Mol. Graph. 1996, 14, 33–38.
Show more [+] Less [-]AGROVOC Keywords
Bibliographic information
This bibliographic record has been provided by University of Bialystok