| Literature DB >> 27824091 |
Qi-Bing Xu1,2, Xiang-Fan Chen1, Jiao Feng1, Jie-Fei Miao3, Ji Liu1, Feng-Tao Liu1, Bi-Xi Niu1, Jin-Yang Cai1, Chao Huang1, Yanan Zhang1, Yong Ling1,2.
Abstract
A novel series of hybrids (7a-l, 8a-l) from β-carboline and salicylic acid (SA) were designed and synthesized, and their in vitro biological activities were evaluated. Most of the hybrids displayed potent antiproliferative activity against five cancer cell lines in vitro, showing potencies superior to 5-FU and harmine. In particular, compound 8h selectively inhibited proliferation of liver cancer SMMC-7721 cells but not normal liver LO2 cells, and displayed greater inhibitory selectivity than intermediate 5h and SA. 8h also induced cancer cell apoptosis in an Annexin V-FITC/propidium iodide flow cytometry assay, and triggered the mitochondrial/caspase apoptosis by decreasing mitochondrial membrane potential which was associated with up-regulation of Bax, down-regulation of Bcl-2 and activation levels of the caspase cascade in a concentration-dependent manner. Our findings suggest that the β-carboline/SA hybrids may hold greater promise as therapeutic agents for the intervention of human cancers.Entities:
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Year: 2016 PMID: 27824091 PMCID: PMC5099944 DOI: 10.1038/srep36238
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The design of novel β-carbolines/salicylic acid hybrids.
Figure 2Reagents and conditions.
(a) H+ or OH−, RCHO, reflux, 2–4 h, 81–86%; (b) SOCl2, MeOH, 0 °C, 1 h, and then reflux 6 h, 90–95%; (c) KMnO4, DMF, reflux, 6 h, 60–70%; (d) different diamines, EtOH, reflux, 3–5 h, 81–89%; (e) i) N-methylmorpholine, ethyl chloroformate, THF, 0 °C, 1 h; ii) Et3N, THF, 0 °C, 1–3 h, 55–68%; (f) NaOH, MeOH, r.t., 2 h, 90–96%; (g) triethylamine, CH2Cl2, r.t., 2 h, 75–79%.
The IC50 values of synthetic compounds 7a-l, 8a-l, and 10a-b against five human cancer cell lines.
| Compd. | R | n | |||||
|---|---|---|---|---|---|---|---|
| SMMC-7721 | Hep G2 | HCT116 | EJ | H460 | |||
| 5-FU | / | / | 28.7 | 35.2 | 19.6 | ND | ND |
| harmine | / | / | 49.1 | 55.3 | 46.7 | ND | ND |
| H | 2 | 34.7 | 32.0 | 36.0 | 25.3 | 31.1 | |
| Me | 2 | 27.3 | 23.7 | 28.9 | 23.2 | 30.5 | |
| Ph-4-OMe | 2 | >50 | >50 | >50 | >50 | >50 | |
| H | 3 | 24.3 | 19.1 | 21.4 | 18.4 | 23.2 | |
| Me | 3 | 17.8 | 15.2 | 14.8 | 13.3 | 20.1 | |
| Ph-4-OMe | 3 | 25.6 | 31.2 | 32.6 | 29.4 | 38.4 | |
| H | 4 | 15.9 | 14.3 | 17.1 | 15.3 | 19.4 | |
| Me | 4 | 12.8 | 11.3 | 15.8 | 12.1 | 13.2 | |
| Ph-4-OMe | 4 | 38.2 | >50 | 45.2 | >50 | 27.5 | |
| H | 5 | 23.3 | 28.0 | 26.6 | 18.2 | 15.3 | |
| Me | 5 | 11.3 | 16.9 | 15.3 | 13.7 | 14.3 | |
| Ph-4-OMe | 5 | >50 | ND | >50 | ND | >50 | |
| H | 2 | 22.6 | 18.9 | 20.1 | 15.9 | 25.5 | |
| Me | 2 | 19.1 | ND | 13.6 | 15.3 | 22.2 | |
| Ph-4-OMe | 2 | 36.0 | 45.8 | 33.2 | 38.6 | >50 | |
| H | 3 | 13.0 | 11.7 | 15.9 | 12.1 | 15.2 | |
| Me | 3 | 7.93 | 9.26 | 9.36 | 9.01 | 11.9 | |
| Ph-4-OMe | 3 | 20.1 | 17.7 | 18.2 | 15.0 | 22.8 | |
| H | 4 | 10.7 | 9.12 | 9.18 | 8.71 | 12.5 | |
| Me | 4 | 6.97 | 7.12 | 8.25 | 7.89 | 13.1 | |
| Ph-4-OMe | 4 | 46.8 | 30.8 | >50 | >50 | 38.5 | |
| H | 5 | 13.4 | 17.2 | 18.6 | 16.5 | 21.5 | |
| Me | 5 | 10.1 | 13.6 | 10.7 | 13.2 | 11.4 | |
| Ph-4-OMe | 5 | >50 | 42.0 | >50 | ND | >50 | |
| / | / | >50 | >50 | >50 | ND | ND | |
| / | / | >50 | >50 | >50 | ND | ND | |
aThe inhibitory effects of individual compounds on the proliferation of cancer cell lines were determined by the MTT assay. The data are the mean values of IC50 from at least three independent experiments.
bNot detected.
Figure 3(A) Inhibitory effects of 8h on the proliferation of SMMC-7721 and LO2 cells. Cells were incubated with the indicated concentrations of 8h for 48 h. Cell proliferation was assessed using the MTT assay. Data are means ± SD of the inhibition (%) from three independent experiments. (B) Inhibitory effects of 5h, 8h, and SA or the vehicle control against SMMC-7721 and LO2 cells. SMMC-7721 and LO2 cells were incubated with the indicated compounds at 25 μM for 48 h, and cell proliferation was assessed by the MTT assay. Data are means ± SD of the inhibition (%) from three independent experiments. *P < 0.01 versus control of SMMC-7721, #P < 0.01 inhibitory effects of 8h in SMMC-7721 versus LO2 cells.
Figure 4Compound 8h induced SMMC-7721 cell apoptosis in vitro.
SMMC-7721 cells were incubated with the indicated concentrations of 8h and 14 μM 5-FU for 48 h, and the cells were stained with FITC-Annexin V and PI, followed by flow cytometry analysis. (A) Flow cytometry analysis. (B) Quantitative analysis of apoptotic cells. Data are expressed as means ± SD of the percentages of apoptotic cells from three independent experiments. *P < 0.01 vs control.
Figure 5Effect of 8h on the expression of apoptosis-related proteins in SMMC-7721 cells.
(A) The expression of Bax, Bcl2, caspase 3 and β-actin was examined by western blot analysis. SMMC-7721 cells were incubated with, or without, 8h at the indicated concentrations for 48 h and the levels of protein expression were detected using specific antibodies, and β-actin was used as the control. Data shown are representative images of each protein for three separate experiments. (B) Quantitative analysis: the relative levels of each protein compared to control β-actin were determined by densimetric scanning. Data are expressed as means ± SD from three separate experiments. *P < 0.01 vs control.