| Literature DB >> 24625085 |
Abhishek Nandy, Sumit Kumar Dey, Sujata Das, Rudra Narayan Munda, Joydev Dinda1, Krishna Das Saha.
Abstract
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Year: 2014 PMID: 24625085 PMCID: PMC4007776 DOI: 10.1186/1476-4598-13-57
Source DB: PubMed Journal: Mol Cancer ISSN: 1476-4598 Impact factor: 27.401
Figure 1Synthesis of the gold(I) N-heterocyclic carbene complex 3.
Figure 2Growth inhibition and the subsequent evaluation of apoptosis of cancer cells in presence of complex 3. A, Percentage growth inhibition of HCT 116, HepG2, A549 and B16F10, following treatment with complex 3 (0, 2.5, 5,10 and 25 μM) for 24 h. B, Percentage of growth inhibition of HCT-116, HepG2, A549 and B16F10, following treatment with GI50 concentration of complex 3 for 0, 12, 24 and 48 h. C, Percentage of growth inhibition of HCT-116, HepG2, A549 and B16F10, following treatment with cisplatin (0, 2.5, 5,10 and 25 μM) for 24 h. D, Morphological images of the B16F10 cells treated with complex 3 (0 and 10 μM) in the upper row. Acridine orange/EtBr stained images of B16F10 cells treated with complex 3 (0 and 10 μM) in the middle row. DAPI stained image of the B16F10 cells treated with complex 3 (0 and 10 μM) in the lower row. Scale Bar = 10 mm. Magnification at 40×. E, Flow cytometric analysis of apoptosis induction in B16F10 cells treated with complex 3 (0 and 10 μM) for 24 h. F, Cell cycle analysis of complex 3 (0 and 10 μM) treated B16F10 cells for 24 h. G, DNA fragmentation analysis of complex 3 (0, 2.5, 5, 10 and 25 μM) treated B16F10 cells for 24 h. Values are mean ± S.D and represent one of the 3 representative experiments. *P < 0.05, **P < 0.01 and ***P < 0.001.
Figure 3Elucidation of the ROS mediated, mitochondrial death pathway upon caspase activation. A, Expression of various apoptotic proteins following treatment of cells with complex 3 for 24 h, with β-Actin as loading control. B, Densitometric analysis of proteins detected by Western blot. C, Determination of caspase 9 and 3 activities at 405 nm, following treatment of cells with complex 3 for 24 h. D, Determination of caspase 9 and 3 activities at 405 nm in cells, incubated 1 h with Z-LEHD-FMK and Z-DEVD-FMK prior to treatment with complex 3 for 24 h. E, Percentage of growth inhibition of cells following incubation with caspase inhibitors Z-LEHD-CHO and Z-DEVD-CHO (for caspase 9 and caspase 3 respectively), along with complex 3 for 24 h. F, Cytochrome c release into the cytosol after treatment of cells with complex 3 as determined at 450 nm assay. G, Loss of ∆ψm of complex 3 treated cells after 24 h. H, Flowcytometric analysis of loss of ∆ψm in presence of complex 3 after 24 h. I, ROS generation upon treatment of complex 3 for 6, 12 and 24 h at 529 nm. J, ROS generated in cells treated with complex 3 and with varying concentrations of NAC (0.2, 1, 5 and 10 μM) after 24 h at 529 nm. K, Percentage growth inhibition of cells in presence or absence of either complex 3 or NAC or in presence of both of them. L, Flowcytometric analysis ROS generation in cells following treatment with complex 3 along with NAC after 24 h. Values are mean ± S.D and represent one of the 3 representative experiments. *P < 0.05, **P < 0.01 and ***P < 0.001.
Figure 4Evaluation of the status of p53 following treatment of cells with complex 3. A, Upregulation of p53, p-p53 (ser 15) and p21. B, Upregulation of p53, p21 and subsequent nuclear translocation of p53 upon treatment of cells with complex 3 (0 and 10 μM). Scale Bar = 15 mm. Magnification at 40×. C-D, Expression profile of p53 and p-p53 (ser 15) along with the downregulation of p21, Bax and cytosolic cytochrome c upon treatment with 15 and 30 μM of pifthrin-α in presence of complex 3 (10 μM) after 24 h. β-Actin was used as a loading control. E, Percentage growth inhibition of cells in presence of pifthrin-α (0, 5, 15 and 30 μM) and complex 3 (10 μM) with respect to the control (cells without treatment with complex 3). F, Down regulation of p53 and p-p53 (ser 15) in the presence of NAC. β-Actin was used as a loading control. G, ROS generation as determined at 529 nm of cells treated with complex 3 (10 μM) in the presence of PFT-α (0, 5, 15, 30 μM). Values are mean ± S.D and represent one of the 3 representative experiments. *P < 0.05 and **P < 0.01.
Figure 5B16F10 cell induced tumor growth in BALB/c mice in the presence or absence of complex 3. A, Mice toxicity survival curve upon administration of various doses of complex 3. B, Treatment series depicting the sequence followed for complex 3 administration, following tumor growth. C, Percentage survival of tumor carrying mice upon administration of complex 3 (0, 5, 10 mg/kg body weight of mice) over a period of 60 days. D, Tumor size variation upon administration of complex 3 (0, 5, 10 mg/kg body weight of mice). E-F, body weight (g) and tumor volume (cm3) of mice administered with complex 3 (0, 5 and 10 mg/kg weight of mice). G-I, H/E staining (→ depicting the intact and fragmented nuclei in the control and the treated tumor sections respectively), tumor weight (g) and mitotic index of tumors excised from mice administered with complex 3 (0, 5 and 10 mg/kg body weight). The survival rate data were analyzed by Kaplan-Meier plots. Values are mean ± S.D and represent one of the 3 representative experiments . *P < 0.05 and **P < 0.01.
Figure 6The expression profile of tumor promoting and inhibiting proteins of tumor sections excised out from tumor bearing mice administered with complex 3 (0 and 10 mg/kg/body weight of mice). Immunohistochemical analysis of p53/p21 (upper panel), NF-қB p65/p50 subunits (middle panel), and VEGF/MMP9 (lower panel). Magnification at 20×. Scale Bar = 15 mm.