| Literature DB >> 29562697 |
Rania S Ali1,2, Hosam A Saad3,4.
Abstract
Our current goal is the synthesis of polyheterocyclic compounds stEntities:
Keywords: anticancer activity; molecular docking; pyrimido[2′,1′:3,4]triazino[5,6-b]indole; triazino[5,6-b]indole
Mesh:
Substances:
Year: 2018 PMID: 29562697 PMCID: PMC6017869 DOI: 10.3390/molecules23030693
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Some active poly cyclic natural compounds.
Scheme 1Synthesis of 4-iminopyrimido[4″,5″:5′,6′][1,2,4]triazino[3′,4′:3,4][1,2,4]triazino-[5,6-b]indol-3(4H)-amine 6.
Scheme 2Some reactions on 1-amino[1,2,4]triazino[3′,4′:3,4][1,2,4]triazino[5,6-b]indole-2-carbonitrile.
Scheme 3Mechanism that explains the formation of compound 11.
Scheme 4Reactions of 1-amino[1,2,4]triazino[3′,4′:3,4][1,2,4]triazino[5,6-b]indole-2-carbonitrile with glucose.
Scheme 5Maillard-type mechanism for the reaction of compound 4 with glucose.
Scheme 6Reactions of 1-amino[1,2,4]triazino[3′,4′:3,4][1,2,4]triazino[5,6-b]indole-2-carbonitrile with different reagents.
Scheme 7The proposed mechanism for the conversion of compound 17 to its substrate by hydrazine hydrate.
Scheme 8Some reactions on 4-iminopyrimido[4″,5″:5′,6′][1,2,4]triazino[3′,4′:3,4][1,2,4]triazino[5,6-b]-indol-3(4H)-amine.
Figure 2The antitumor activities of the tested compounds expressed as IC50 values and compared with reference standard drugs evaluated on breast, liver cancer and colon carcinoma cell lines.
The antitumor activities of the tested compounds expressed as IC50 values and compared with reference standard drugs evaluated on breast, liver cancer and colon carcinoma cell lines
| Compound Number | MCF-7 | HepG-2 | HCT-116 |
|---|---|---|---|
| 53.3 ± 1.9 | 27.4 ± 0.8 | 30.2 ± 0.7 | |
| 23.5 ± 0.8 | 6.93 ± 0.3 | 15.2 ± 0.4 | |
| 111 ± 2.9 | 57.1 ± 1.4 | 137 ± 6.4 | |
| 31.1 ± 0.7 | 19.7 ± 0.9 | 27.7 ± 0.9 | |
| 15.5 ± 0.8 | 7.4 ± 0.5 | 8.64 ± 0.8 | |
| 14.6 ± 1.2 | 10.1 ± 0.9 | 15 ± 0.6 | |
| 36.6 ± 1.8 | 26.5 ± 0.4 | 29.4 ± 0.7 | |
| 46.9 ± 3.4 | 29.4 ± 0.8 | 40.7 ± 2.3 | |
| 28.8 ± 0.8 | 11.6 ± 0.8 | 22 ± 0.7 | |
| 15.5 ± 0.7 | 11.8 ± 0.6 | 19.4 ± 1.8 | |
| 6.52 ± 0.6 | 3.82 ± 0.3 | 4.73 ± 0.7 | |
| Cisplatin | 5.71 ± 0.4 | 3.67 ± 0.2 | 2.43 ± 0.2 |
Energy values obtained in docking calculations of some synthesized compounds with receptor prostate cancer (2q7k).
| Compd. | Est. Free Energy of Binding | Est. Inhibition Constant, Ki | vdW + Hbond + desolv Energy | Electrostatic Energy | Total Intermolec. Energy | Interact Surface |
|---|---|---|---|---|---|---|
| −7.04 | 6.90 | −8.22 | +0.04 | −8.17 | 509.119 | |
| −7.51 | 3.12 | −8.09 | −0.02 | −8.11 | 465.35 | |
| −8.31 | 8.14 | −9.44 | −0.04 | −9.48 | 523.761 | |
| −7.98 | 1.41 | −8.03 | −0.25 | −8.28 | 508.448 | |
| −8.13 | 1.09 | −9.18 | −0.03 | −9.21 | 519.896 | |
| −6.35 | 22.23 | −6.41 | +0.06 | −6.35 | 522.705 | |
| −0.96 | 1.97 | −1.87 | +0.61 | −1.26 | 583.589 | |
| −0.26 | 6.47 | −7.64 | +0.01 | −7.63 | 576.654 | |
| −7.95 | 1.49 | −8.16 | −0.40 | −8.56 | 540.988 |
Energy values obtained in docking calculations of some synthesized compounds with receptor breast cancer (3hb5).
| Compd. | Est. Free Energy of Binding | Est. Inhibition Constant, Ki | vdW + Hbond + desolv Energy | Electrostatic Energy | Total Intermolec. Energy | Interact. Surface |
|---|---|---|---|---|---|---|
| −7.55 | 2.90 | −8.28 | −0.18 | −8.47 | 700.877 | |
| −7.66 | 2.43 | −8.03 | −0.06 | −8.09 | 639.72 | |
| −7.68 | 2.34 | −8.94 | +0.03 | −8.91 | 740.419 | |
| −7.93 | 1.53 | −8.22 | −0.01 | −8.23 | 719.146 | |
| −9.31 | 14.94 | −11.12 | −0.85 | −11.97 | 1288.56 | |
| −9.15 | 19.78 | −9.76 | +0.31 | −9.44 | 851.928 | |
| −8.01 | 1.35 | −10.31 | −0.08 | −10.39 | 911.407 | |
| −8.87 | 31.24 | −9.49 | −0.59 | −10.08 | 908.153 | |
| −8.74 | 39.33 | −9.08 | +0.34 | −8.74 | 846.707 |
Figure 3HB plots of interaction between some synthesized compounds and prostate cancer 2q7k hormone.
Figure 4HB plots of interaction between some synthesized compounds and breast cancer (3hb5) hormone.
Decomposed energy of some synthesized compounds with prostate cancer receptor (2q7k).
| Compd. | Hydrogen Bonds | Polar | cation-pi | Hydrophobic | Other |
|---|---|---|---|---|---|
| LEU704 (−0.9588) | PHE764 (−0.9244) | GLN711 (−0.3009) | |||
| ASN705 (−0.6684) | PHE764 (−1.321) | LEU704 (−1.2982) | |||
| PHE764 (−1.0213) | ARG752 (−0.2593) | LEU704 (−1.3263) | MET749 (−0.5969) | ||
| MET742 (0.5327) | THR877 (−12.988) | PHE891 (0.4955) | PHE764 (−1.6911) | GLN711 (−0.3671) | |
| GLN711 (−0.2307) | ARG752 (−0.3853) | LEU873 (−9.3441) | MET745 (−0.7229) | ||
| LEU704 (−2.7674) | THR877 (−1.5585) | PHE876 (−0.703) | PHE764 (−2.7458) | PHE891 (−1.637) | |
| GLN711 (−0.4793) | ASN705 (−1.6327) | LEU701 (−2.1158) | LEU873 (−0.4761) |
Decomposed energy of some synthesized compounds with breast cancer receptor (3hb5).
| Compd. | Hydrogen Bonds | Polar | cation-pi | Hydrophobic | Other |
|---|---|---|---|---|---|
| SER12 (−0.443) | PHE192 (−1.7843) | ALA191 (−0.3955) | |||
| ASN90 (−1.0823) | ILE14 (−0.9193) | TYR155 (−1.2233) | |||
| ASN90 (−0.9996) | PHE192 (−1.0039) | TYR155 (−0.5008) | |||
| VAL188 (−1.233) | PHE192 (−1.5739) | ASN90 (−0.9337) | |||
| VAL188 (−1.1105) | TYR155 (−0.4568) | PHE192 (−1.5267) | THR140 (−0.3635) | ||
| GLY94 (−0.9894) | LYS195 (−1.1394) | PHE192 (5.8101) | LEU93 (−1.8663) | ASN90 (−2.3374) | |
| ASN90 (−0.8782) | ARG37 (−1.3972) | PHE192 (−1.2886) | LEU93 (−0.5816) | ||
| GLY92 (−0.5283) | ARG37 (−1.8678) | PHE192 (−1.547) | VAL113 (−0.8616) | LEU93 (−0.6114) |
Figure 5(A). 2D plot of interaction between the compound 3 receptor prostate cancer (2q7k); (B). 2D plot of interaction between the compound 4 and receptor prostate cancer (2q7k).
Figure 6(A). 2D plot of interaction between the compound 3 and receptor breast cancer (3hb5); (B). 2D plot of interaction between the compound 4 and receptor breast cancer (3hb5).