Design, synthesis and cytotoxic evaluation of novel bis-thiazole derivatives as preferential Pim1 kinase inhibitors with in vivo and in silico study

被引:5
作者
Al-Sanea, Mohammad M. [1 ]
Nasr, Tamer M. [2 ,3 ]
Bondock, Samir [4 ,5 ]
Gawish, Aya Y. [6 ]
Mohamed, Nada M. [2 ]
机构
[1] Jouf Univ, Coll Pharm, Dept Pharmaceut Chem, Sakaka, Saudi Arabia
[2] Modern Univ Technol Informat MTI, Fac Pharm, Dept Pharmaceut Chem, Cairo, Egypt
[3] Helwan Univ, Fac Pharm, Dept Pharmaceut Chem, Helwan, Egypt
[4] King Khalid Univ, Fac Sci, Chem Dept, Abha, Saudi Arabia
[5] Mansoura Univ, Fac Sci, Chem Dept, Mansoura, Egypt
[6] Modern Univ Technol Informat MTI, Fac Pharm, Dept Pharmacol & Toxicol, Cairo, Egypt
关键词
Pim1; inhibitor; bis-thiazole; cytotoxicity; in silico and in vivo study; TUMOR-GROWTH; PROLIFERATION; ACTIVATION; MECHANISM; FLUORINE; POTENT;
D O I
10.1080/14756366.2023.2166936
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Bis-thiazole derivatives were synthesised conforming to the Pim1 pharmacophore model following Hantzsch condensation. Pim1 has a major role in regulating the G1/S phase which upon inhibition the cell cycle stops at its early stages. Derivatives 3b and 8b showed the best Pim1 IC50 0.32 and 0.24 mu M, respectively relative to staurosporine IC50 0.36 mu M. Further confirmation of 3b and 8b Pim1 inhibition was implemented by hindering the T47D cell cycle at G0/G1 and S phases where 3b showed 66.5% cells accumulation at G0/G1 phase while 8b demonstrated 26.5% cells accumulation at the S phase compared to 53.9% and 14.9% of a control group for both phases, respectively. Additional in vivo cytotoxic evaluation of 3b and 8b revealed strong antitumor activity with up-regulation of caspase-3 and down-regulation of VEGF and TNF alpha immune expression with concomitant elevation of malondialdehyde levels in case of 8b.
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页数:19
相关论文
共 53 条
[1]  
ACHARY TE, 1975, J INDIAN CHEM SOC, V52, P1065
[2]   Antitumor and multikinase inhibition activities of some synthesized coumarin and benzofuran derivatives [J].
Ahmed, Eman Y. ;
Abdelhafez, Omaima M. ;
Zaafar, Dalia ;
Serry, Aya M. ;
Ahmed, Yasmine H. ;
El-Telbany, Rania Farag A. ;
Abd Elmageed, Zakaria Y. ;
Ali, Hamed, I .
ARCHIV DER PHARMAZIE, 2022, 355 (06)
[3]  
[Anonymous], 2022, BINDING DATABASE
[4]  
[Anonymous], 2021, WHO CANC KEY FACTS
[5]  
Bancroft JD, 2008, Theory and Practice of Histological Techniques
[6]   EBNA3C Augments Pim-1 Mediated Phosphorylation and Degradation of p21 to Promote B-Cell Proliferation [J].
Banerjee, Shuvomoy ;
Lu, Jie ;
Cai, Qiliang ;
Sun, Zhiguo ;
Jha, Hem Chandra ;
Robertson, Erle S. .
PLOS PATHOGENS, 2014, 10 (08)
[7]   PIM1 kinase regulates cell death, tumor growth and chemotherapy response in triple-negative breast cancer [J].
Braso-Maristany, Fara ;
Filosto, Simone ;
Catchpole, Steven ;
Marlow, Rebecca ;
Quist, Jelmar ;
Francesch-Domenech, Erika ;
Plumb, Darren A. ;
Zakka, Leila ;
Gazinska, Patrycja ;
Liccardi, Gianmaria ;
Meier, Pascal ;
Gris-Oliver, Albert ;
Cheang, Maggie Chon U. ;
Perdrix-Rosell, Anna ;
Shafat, Manar ;
Noel, Elodie ;
Patel, Nirmesh ;
McEachern, Kristen ;
Scaltriti, Maurizio ;
Castel, Pau ;
Noor, Farzana ;
Buus, Richard ;
Mathew, Sumi ;
Watkins, Johnathan ;
Serra, Violeta ;
Marra, Pierfrancesco ;
Grigoriadis, Anita ;
Tutt, Andrew N. .
NATURE MEDICINE, 2016, 22 (11) :1303-1313
[8]  
Brighton D., 2005, ROYAL MARSDEN HOSP H, P1
[9]   Crystal Structure of the PIM2 Kinase in Complex with an Organoruthenium Inhibitor [J].
Bullock, Alex N. ;
Russo, Santina ;
Amos, Ann ;
Pagano, Nicholas ;
Bregman, Howard ;
Debreczeni, Judit E. ;
Lee, Wen Hwa ;
von Delft, Frank ;
Meggers, Eric ;
Knapp, Stefan .
PLOS ONE, 2009, 4 (10)
[10]  
CHAUDHARY HS, 1968, INDIAN J CHEM, V6, P488