Experimental
All melting points were recorded on a Stuart SMP3 melting-point apparatus and are uncorrected. The IR spectra ῦ in cm −1 (KBr) were recorded on a Shimadzu FTIR 8400 S spectrometer. All the microwave irradiation experiments were performed in a CEM Discover microwave system at reaction temperatures at 100 W for 4–6 min and monitored using an equipped IR temperature sensor. 1 H NMR and 13 C NMR spectra were measured on a Bruker Avance-400 spectrometer at 400 and 100 MHz, respectively, using tetramethylsilane (TMS) as the internal reference and CDCl 3 as the solvent. Mass spectra (EI) were recorded on a Finnigan MAT 1020 mass spectrometer in m / z . All reactions were monitored on silica gel percolated Merck 60 F254 TLC plates and spots were visualized under UV light. The antimicrobial activity study was carried out on nutrient agar medium containing 0.5% peptone, 0.5% NaCl, and 0.3% beef extract (HiMedia, Mumbai, India) and potato dextrose agar (PDA, HiMedia, Mumbai, India) using microbial pathogens such as Bacillus subtilis (MTCC 121), Staphylococcus aureus (MTCC 96), Escherichia coli (MTCC43), Klebsiella pneumonia (MTCC 530) and Pseudomonas aeruginosa (ATCC-27853, USA) procured from the Institute of Microbial Technology (IMTECH, India) and American Type Culture Collection (ATCC, USA) and the fungal strain Aspergillus flavus (NRRL 3357) purchased from Northern Regional Research Laboratory (NRRL, Peoria). The antioxidant activity was investigated using DPPH (0.2 M, Sigma, St. Louis, USA) and HRS mixture (1,10-phenanthroline, 2.5 mM; PBS, pH 7.4; and FeSO 4 , 2.5 mM HiMedia, Mumbai, India). The human cervical cancer cell line (HeLa) and human breast cancer cell line (MCF-7) were procured from the National Center for Cell Sciences (NCCS) Pune, India, and maintained in Dulbecco's modified Eagle medium (DMEM-Gibco, St, Louis, USA) supplemented with antibiotic solution (100×, Thermo Fisher Scientific, St. Louis, USA) and 10% fetal calf serum (FCS-Gibco, St. Louis, USA). The cultured cells were propagated and maintained at 37 °C in a CO 2 incubator containing 5% CO 2 and 95% O 2 atmosphere.
NaH (sodium hydride) (23.38 mmol) was added slowly to a stirred solution of compound (1) (11 mmol) in DMF (dimethylformamide) (20 mL) at 0 °C, and stirring continued for 15 min. Subsequently, propargyl bromide (22 mmol) was added to this mixture and stirred for 3 h at room temperature. After completion of the reaction, the reaction mixture was poured into ice-cold water and extracted with ethyl acetate. The combined organic layer was dried over Na 2 SO 4 (sodium sulphate) and evaporated under vacuum. The crude reaction mixture was purified by silica gel column chromatography to give compound 2 in 95% yield.
Yield: 90%; mp: 132–133 °C; IR (KBr, cm −1 ): 3398 (C–H), 1656 (C
Created by potrace 1.16, written by Peter Selinger 2001-2019
C), 1465 (C–C), 1233 (C–N). 1 H NMR (400 MHz, CDCl 3 ) δ 7.47 (d, J = 7.5 Hz, 1H, Ar–H), 7.34 (d, J = 8.0 Hz, 1H, Ar–H), 7.16–7.20 (m, 1H, Ar–H), 7.07–7.12 (m, 1H, Ar–H), 4.76 (d, J = 2.5 Hz, 2H, N–CH 2 ), 2.70–2.78 (m, 4H, aliphatic-H), 2.23 (t, J = 2.5 Hz, 1H, C
Created by potrace 1.16, written by Peter Selinger 2001-2019
C–H), 1.93–1.99 (m, 2H, aliphatic-H), 1.83–1.89 (m, 2H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 135.8, 134.8, 127.6, 120.9, 119.1, 117.9, 110.4, 108.6, 78.5 (C C), 71.9 (C C), 31.9 (N–CH 2 carbon), 23.1, 23.0, 21.8, 20.9, mass spectrum, m / z ( Irel , %): calcd 209 observed: 210 [M + H] + .
CuSO 4 ·5H 2 O (0.1514 mmol), sodium ascorbate (0.1314 mmol) and aryl azides 3(a–m) (0.7 mmol) were added to a mixture of 9-(prop-2-yn-1-yl)-2,3,4,9-tetrahydro-1 H -carbazole (2) (0.7 mmol) in DMF:water (1 : 1 v/v). This mixture was stirred at room temperature for 8–10 h. The reaction was monitored by TLC, and after completion of the reaction, the reaction mixture was poured into ice-cold water and extracted with ethyl acetate. The combined organic layer was dried over Na 2 SO 4 and evaporated under vacuum, and the crude material was purified by column chromatography on silica gel using hexane/ethyl acetate (7 : 3, v/v) as the eluent to afford compounds 4(a–u).
The procedure was similar to the usual approach described above, with the exception that the mixture was placed in a closed vessel and microwaved for 4–6 min at 100 W. After the reaction was completed, the mixture was poured into ice-cold water and extracted with ethyl acetate under the supervision of TLC. The combined organic layer was vacuum evaporated and dried over Na 2 SO 4 , and the crude substance was purified by column chromatography on silica gel using hexane/ethyl acetate (7 : 3, v/v) as an eluent to afford compounds 4(a–u).
Yield: 95%; mp: 112–114 °C; IR (KBr, cm −1 ): 2927 (C–H), 1595 (N N), 1465 (C C), 759 (C–N). 1 H NMR (400 MHz, CDCl 3 ) δ 7.60 (d, J = 7.5 Hz, 2H, Ar–H), 7.33–7.51 (m, 6H, Ar–H), 7.09–7.17 (m, 2H, Ar–H), 5.44 (s, 2H, N–CH 2 ), 2.72–2.81 (m, 4H, aliphatic-H), 1.85–1.96 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 146.1, 136.8, 135.9, 135.1, 129.5, 128.7, 127.6, 120.9, 120.4, 119.5, 119.1 (Triazole-C), 117.9, 110.3, 108.6, 38.5 (N–CH 2 carbon), 23.1, 23.0, 22.0, mass spectrum, m / z ( Irel , %): calcd 328 observed : 329 [M + H] + .
Yield: 90%; mp: 100–102 °C; IR (KBr, cm −1 ): 3126 (C–H), 1720 (C O), 1465 (C–C), 1294 (C–N), 754 (C–O). 1 H NMR (400 MHz, CDCl 3 ) δ 7.93 (dd, J = 7.7, 7.6 Hz, 1H, Ar–H), 7.51–7.60 (m, 2H, Ar–H), 7.47 (d, J = 7.7 Hz, 1H, Ar–H), 7.29–7.39 (m, 3H, Ar–H), 7.05–7.5 (m, 2H, Ar–H), 5.44 (s, 2H, N–CH 2 ), 3.52 (s, 3H, Ar–H), 2.82 (t, J = 5.9, 6.2 Hz, 2H, aliphatic-H), 2.72 (t, J = 5.9 Hz, 2H, aliphatic-H), 1.93–1.98 (m, 2H, aliphatic-H), 1.83–1.88 (m, 2H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 165.4, 145.1, 135.9, 135.8, 135.1, 132.5, 131.1, 129.8, 127.7, 127.2, 126.6, 123.4, 120.8, 119.0 (Triazole-C), 117.8, 110.2, 108.6, 52.3 (Ar–C), 38.5 (N–CH 2 carbon), 23.1, 23.0, 22.0, 21.0, mass spectrum, m / z ( Irel , %): calcd : 386 observed: 387 [M + H] + .
Yield: 91%; mp: 116–118 °C; IR (KBr, cm −1 ): 3149, 2929, 2833 (C–H), 1 H NMR (400 MHz, CDCl 3 ) δ 8.14 (t, J = 1.8 Hz, 3H, Ar–H), 7.86–7.96 (m, 2H, Ar–H), 7.55–7.58 (m, 2H, Ar–H), 7.49 (d, J = 7.7 Hz, 1H, Ar–H), 7.33 (d, J = 8.1 Hz, 1H, Ar–H), 7.08–7.17 (m, 2 H, Ar–H), 5.44 (s, 2H, N–CH 2 ), 2.80 (t, J = 6.2, 5.9 Hz, 2H, aliphatic-H), 2.74 (t, J = 6.1, 5.9 Hz, 2H, aliphatic-H), 2.62 (s, 3H, Ar–H), 1.94–1.98 (m, 2H, aliphatic-H), 1.85–1.89 (m, 2H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 196.6, 146.5, 138.3, 137.1, 135.9, 135.1, 130.0, 128.3, 127.6, 124.7, 121.0, 119.6, 119.5, 119.2 (Triazole-C), 118.0, 110.4, 108.5, 38.5 (N–CH 2 carbon), 26.7, 23.1, 23.0, 22.0, 21.0, mass spectrum, m / z ( Irel , %): calcd : 370 observed: 371 [M + H] + .
Yield: 83%; mp: 155–157 °C; IR (KBr, cm −1 ): 3134 (C–H), 2836, 1602, 1504, 1049 (C–O). 1 H NMR (400 MHz, CDCl 3 ) δ 7.61–7.67 (m, 2H, Ar–H), 7.48 (d, J = 7.7 Hz, 1H, Ar–H), 7.34–7.40 (m, 2H, Ar–H), 6.98–7.17 (m, 4H, Ar–H), 5.43 (s, 2H, N–CH 2 ), 3.77 (s, 3H, Ar–H), 2.83 (t, J = 6.0, 6.2 Hz, 2H, aliphatic-H), 2.73 (t, J = 6.0 Hz, 2H, aliphatic-H), 1.83–1.99 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 151.0, 144.5, 135.3, 130.1, 125.4, 123.7, 121.0, 120.7, 119.3 (Triazole-C), 118.9, 117.8, 112.0, 110.1, 108.8, 55.8 (Ar–C), 38.6 (N–CH 2 carbon), 23.2, 23.1, 22.1, 21.0, mass spectrum, m / z ( Irel , %): calcd : 358 observed : 359 [M + H] + .
Yield: 87%; mp: 182–184 °C; IR (KBr, cm −1 ): 3134 (C–H), 3043, 2929, 2852, 1674. 1 H NMR (400 MHz, CDCl 3 ) δ 8.04 (d, J = 8.6 Hz, 2H, Ar–H), 7.74 (d, J = 8.6 Hz, 2H, Ar–H), 7.54 (s, 1H, triazole-H), 7.50 (d, J = 7.7 Hz, 1H, Ar–H), 7.32 (d, J = 8.0, 1H, Ar–H), 7.09–7.18 (m, 2H, Ar–H), 5.45 (s, 2H, N–CH 2 ), 2.79 (t, J = 5.7, 6.1 Hz, 2H, aliphatic-H), 2.74 (t, J = 6.1, 5.6 Hz, 2H, aliphatic-H), 2.62 (s, 3H, Ar–H), 1.93–1.98 (m, 2H, aliphatic-H), 1.85–1.89 (m, 2H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 196.4, 140.0, 136.8, 136.7, 135.9, 135.1, 129.9, 127.7, 126.0, 121.0, 119.9, 119.2 (Triazole-C), 118.0, 110.4, 108.5, 38.5 (N–CH 2 carbon), 26.6, 23.1, 23.0, 22.0, 21.0, mass spectrum, m / z ( Irel , %): calcd : 370 observed : 371 [M + H] + .
Yield: 90%; mp: 114–116 °C; IR (KBr, cm −1 ): 3136 (C–H), 1609, 1508, 1468, 1230 (C–F). 1 H NMR (400 MHz, CDCl 3 ) δ 7.83 (td, J = 7.8, 1.7 Hz, 1H, Ar–H), 7.61 (d, J = 2.7 Hz, 1H, Ar–H), 7.48 (d, J = 7.7 Hz, 1H, Ar–H), 7.34–7.41 (m, 2H, Ar–H), 7.04–7.27 (m, 4H, Ar–H), 5.44 (s, 2H, N–CH 2 ), 2.82 (t, J = 6.1 Hz, 2H, aliphatic-H), 2.73 (t, J = 6.0 Hz, 2H, aliphatic-H), 1.92–1.99 (m, 2H, aliphatic-H), 1.83–1.90 (m, 2H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 154.5, 152.0, 145.6, 135.9, 135.1, 129.7, 127.6, 124.8, 122.8, 120.9, 119.0 (Triazole-C), 117.9, 116.9, 116.7, 110.3, 108.6, 38.4 (N–CH 2 carbon), 23.1, 23.0, 22.0, 21.0, mass spectrum, m / z ( Irel , %): calcd : 346 observed : 347 [M + H] + .
Yield: 85%; mp: 146–148 °C; IR (KBr, cm −1 ): 3118, 3076 (C–H), 3045, 2912, 1463 (C C). 1 H NMR (400 MHz, CDCl 3 ) δ 7.57–7.60 (m, 2H, Ar–H), 7.51 (d, J = 7.3 Hz, 1H, Ar–H), 7.41–7.46 (m, 3H, Ar–H), 7.35–7.39 (m, 1H, Ar–H), 7.32 (d, J = 7.9 Hz, 1H, Ar–H), 7.08–7.16 (m, 2H, Ar–H), 5.50 (s, 2H, N–CH 2 ), 2.93 (t, J = 5.6 Hz, 2H, aliphatic-H), 2.85 (t, J = 5.6 Hz, 2H, aliphatic-H), 1.87–1.92 (m, 2H, aliphatic-H), 1.74–1.79 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 146.4, 138.4, 136.7, 135.2, 129.6, 128.7, 128.2, 120.8, 120.4, 119.5, 119.1 (Triazole-C), 117.7, 114.6, 108.6, 38.8 (N–CH 2 carbon), 31.5, 28.2, 27.1, 26.4, 24.3, mass spectrum, m / z ( Irel , %): calcd : 342 observed : 343 [M + H] + .
Yield: 85%; mp: 126–128 °C; IR (KBr, cm −1 ): 3128 (C–H), 3049, 2839, 1718 (C O), 1467 (C–C), 1294 (C–N). 1 H NMR (400 MHz, CDCl 3 ) δ 7.94 (dd, J = 7.7, 7.5 Hz, 1H, Ar–H), 7.48–7.61 (m, 3H, Ar–H), 7.32–7.38 (m, 2H, Ar–H), 7.27 (s, 1H, triazole-H), 7.06–7.16 (m, 2H, Ar–H), 5.52 (s, 2H, N–CH 2 ), 3.53 (s, 3H, Ar–H), 2.96 (t, 2H, J = 5.5 Hz, aliphatic-H), 2.83 (t, 2H, J = 5.7, 5.5 Hz, aliphatic-H), 1.86–1.92 (m, 2H, aliphatic-H), 1.74–1.81 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 165.4, 145.4, 138.4, 135.8, 135.1, 132.5, 131.1, 129.8, 128.2, 127.2, 126.6, 123.3, 120.7, 119.1 (Triazole-C), 117.7, 114.5, 108.7, 52.3 (Ar–C), 38.7 (N–CH 2 carbon), 31.5, 28.2, 27.0, 26.3, 24.2, mass spectrum, m / z ( Irel , %): calcd : 400 observed : 401 [M + H] + .
Yield: 72%; mp: 120–122 °C; IR (KBr, cm −1 ): 3136, 3091 (C–H), 1467 (C–C), 1232 (C–F). 1 H NMR (400 MHz, CDCl 3 ) δ 7.83 (t, J = 7.9, 7.6 Hz, 1H, Ar–H), 7.53 (s, 1H, triazole-H), 7.49 (d, J = 7.7 Hz, 1H, Ar–H), 7.32–7.39 (m, 2H, Ar–H), 7.19–7.27 (m, 2H, Ar–H), 7.06–7.15 (m, 2H, Ar–H), 5.50 (s, 2H, N–CH 2 ), 2.94 (t, J = 5.3 Hz, 2H, aliphatic-H), 2.84 (t, J = 5.3 Hz, 2H, aliphatic-H), 1.87–1.92 (m, 2H, aliphatic-H), 1.75–1.80 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 154.5, 152.0, 146.0, 138.4, 135.2, 130.1, 128.2, 124.8, 122.6, 120.7, 119.1 (Triazole-C), 117.7, 116.9, 116.7, 114.7, 108.7, 38.7 (N–CH 2 carbon), 31.5, 28.2, 27.0, 26.4, 24.3, mass spectrum, m / z ( Irel , %): calcd : 360 observed : 361 [M + H] + .
Yield: 76%; mp: 173–175 °C; IR (KBr, cm −1 ): 3142, 3049 (C–H), 1676 (C O), 1589. 1 H NMR (400 MHz, CDCl 3 ) δ 8.14 (t, J = 1.8, 1H, Ar–H), 7.94–7.97 (m, 1H, Ar–H), 7.84–7.88 (m, 1H, Ar–H), 7.50–7.58 (m, 3H, Ar–H), 7.32 (d, J = 7.5 Hz, 1H, Ar–H), 7.09–7.17 (m, 2H, Ar–H), 5.51 (s, 2H, N–CH 2 ), 2.94 (t, J = 5.5, 5.7 Hz, 2H, aliphatic-H), 2.85 (t, J = 5.6 Hz, 2H, aliphatic-H), 2.62 (s, 3H, Ar–H), 1.88–1.92 (m, 2H, aliphatic-H), 1.76–1.80 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 196.6, 146.8, 138.4, 137.2, 135.2, 130.1, 128.4, 128.2, 124.7, 120.9, 119.7, 119.6, 119.3 (Triazole-C), 117.9, 114.8, 108.7, 38.8 (N–CH 2 carbon), 31.5, 28.3, 27.1, 26.7, 26.4, 24.3, mass spectrum, m / z ( Irel , %) calcd : 384 observed : 385 [M + H] + .
Yield: 92%; mp: 138–140 °C; IR (KBr, cm −1 ): 3047 (C–H), 2921, 1605 (C O), 1467 (C–C). 1 H NMR (400 MHz, CDCl 3 ) δ 8.04 (d, J = 8.8 Hz, 2H, Ar–H), 7.73 (d, J = 8.8 Hz, 2H, Ar–H), 7.49–7.53 (m, 2H, Ar–H); 7.31 (d, J = 7.3 Hz, 1H, Ar–H), 7.09–7.17 (m, 2H, Ar–H), 5.51 (s, 2H, N–CH 2 ), 2.93 (t, J = 5.6 Hz, 2H, aliphatic-H), 2.85 (t, J = 5.6 Hz, 2H, aliphatic-H), 2.61 (s, 3H, Ar–H), 1.87–1.92 (m, 2H, aliphatic-H), 1.74–1.80 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 196.5, 146.9, 139.8, 138.4, 136.8, 135.2, 130.0, 128.3, 120.9, 119.9, 119.4, 119.3 (Triazole-C), 117.9, 114.8, 108.7, 38.7 (N–CH 2 carbon), 31.5, 28.3, 27.1, 26.6, 26.4, 24.3, mass spectrum, m / z ( Irel , %) calcd : 384 observed : 385 [M + H] + .
Yield: 90%; mp: 168–170 °C; IR (KBr, cm −1 ): 3137, 2847 (C–H), 1230 (C–N), 736 (C–Cl). 1 H NMR (400 MHz, CDCl 3 ) δ 7.50–7.58 (m, 3H, Ar–H), 7.39–7.44 (m, 3H, Ar–H), 7.30 (d, J = 7.3 Hz, 1H, Ar–H), 7.09–7.17 (m, 2H, Ar–H), 5.50 (s, 2H, N–CH 2 ), 2.92 (t, J = 5.7, 5.6, 2H, aliphatic-H), 2.85 (t, J = 5.6 Hz, 2H, aliphatic-H), 1.87–1.93 (m, 2H, aliphatic-H), 1.73–1.80 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 146.7, 138.4, 135.3, 135.2, 134.5, 129.8, 128.3, 121.5, 120.9, 119.4, 119.3 (Triazole-C), 117.9, 114.7, 108.7, 38.8 (N–CH 2 carbon), 31.5, 28.3, 27.1, 26.4, 24.3, mass spectrum, m / z ( Irel , %): calcd : 376 observed : 377 [M + H] + .
Yield: 96%; mp: 150–152 °C; IR (KBr, cm −1 ): 3422, 2911, 1464 (C–C), 730 (C–Cl). 1 H NMR (400 MHz, CDCl 3 ) δ 7.47–7.52 (m, 3H, Ar–H), 7.31–7.43 (m, 4H, Ar–H), 7.06–7.15 (m, 2H, Ar–H), 5.53 (s, 2H, N–CH 2 ), 2.94 (t, J = 5.6, 5.7 Hz, 2H, aliphatic-H), 2.84 (t, J = 5.6 Hz, 2H, aliphatic-H), 1.86–1.92 (m, 2H, aliphatic-H), 1.74–1.81 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 145.5, 138.4, 135.2, 134.6, 130.7, 130.6, 128.5, 128.1, 127.7, 127.6, 123.5, 120.7, 119.1 (Triazole-C), 117.7, 114.7, 108.7, 38.7 (N–CH 2 carbon), 31.5, 28.2, 27.0, 26.4, 24.3, mass spectrum, m / z ( Irel , %) calcd : 376 observed : 377 [M + H] + .
Yield: 92%; mp: 104–106 °C; IR (KBr, cm −1 ): 3045, 2980, 1459, 1232 (C–F). 1 H NMR (400 MHz, CDCl 3 ) δ 7.90 (s, 1H, Ar–H), 7.81 (d, J = 8.0 Hz, 1H, Ar–H), 7.65 (d, J = 7.8 Hz, 1H, Ar–H), 7.58 (t, J = 7.9 Hz, 1H, Ar–H), 7.53–7.48 (m, 2H, Ar–H), 7.32 (d, J = 8.0 Hz, 1H, Ar–H), 7.19–7.08 (m, 2H, Ar–H), 5.44 (s, 2H, N–CH 2 ), 2.76 (dt, J = 20.6, 5.8 Hz, 4H, aliphatic-H), 1.98–1.83 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 146.7, 137.1, 136.0, 135.1, 132.2, 130.4, 127.8, 124.6, 123.5, 121.1, 119.5, 119.3 (Triazole-C), 118.0, 110.5, 108.5, 38.5 (N–CH 2 carbon), 23.6, 23.1, 22.0, 21.0, mass spectrum, m / z ( Irel , %) calcd : 396 observed : 397 [M + H] + .
Yield: 94%; mp: 131–132 °C; IR (KBr, cm −1 ): 3423, 3073, 1547, 695. 1 H NMR (400 MHz, CDCl 3 ) δ 7.48 (d, J = 7.5 Hz, 1H, Ar–H), 7.43–7.39 (m, 2H, Ar–H), 7.32 (dd, J = 9.4, 4.6 Hz, 3H, Ar–H), 7.29–7.26 (m, 1H, Ar–H), 7.25–7.19 (m, 3H, Ar–H), 7.16–7.12 (m, 3H, Ar–H), 7.09 (dd, J = 10.8, 4.0 Hz, 1H, Ar–H), 5.41 (s, 2H, N–CH 3 ), 2.75 (dt, J = 23.1, 5.8 Hz, 4H, aliphatic-H), 1.96–1.82 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 145.0, 136.6, 136.0, 135.2, 133.1, 132.6, 132.5, 131.7, 130.2, 129.4, 127.9, 127.8, 127.7, 127.0, 123.6, 120.9, 119.0 (Triazole-C), 117.9, 110.2, 108.7, 38.5 (N–CH 2 carbon), 23.2, 23.1, 22.1, 21.0, mass spectrum, m / z ( Irel , %) calcd : 436 observed: 437 [M + H] + .
Yield: 90%; mp: 145–147 °C; IR (KBr, cm −1 ): 3135, 2380 (C–C), 1453, 1230. 1 H NMR (400 MHz, CDCl 3 ) δ 7.84 (tt, J = 9.3, 4.6 Hz, 1H, Ar–H), 7.72 (m, J = 13.4, 9.6, 2.2 Hz, 1H, Ar–H), 7.65 (d, J = 2.7 Hz, 1H, Ar–H), 7.47 (d, J = 7.7 Hz, 1H, Ar–H), 7.40–7.37 (m, 2H, Ar–H), 7.33 (d, J = 1.9 Hz, 1, Ar–H), 7.31–7.15 (m, 6H, Ar–H), 7.10 (dd, J = 11.0, 3.9 Hz, 1H, Ar–H), 5.47 (s, 2H, N–CH 2 ), 3.12–3.03 (m, 2H, aliphatic-H), 3.01–2.94 (m, 2H, aliphatic-H), 2.88–2.79 (m, 1H, aliphatic-H), 2.31–2.08 (m, 2H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 154.5, 146.5, 136.3, 134.8, 130.3, 130.2, 145.5, 128.4, 128.8, 127.0, 126.2, 124.9, 121.2, 119.3, 119.0 (Triazole-C), 118.0, 117.0, 116.8, 110.3, 108.8, 40.9, 38.6 (N–CH 2 carbon), 30.3, 29.3, 22.3, mass spectrum, m / z ( Irel , %) calcd : 422 observed : 423 [M + H] + .
Yield: 85%; mp: 160–162 °C; IR (KBr, cm −1 ): 3548, 3085, 2850, 3085, 1300 (C–OH). 1 H NMR (400 MHz, CDCl 3 ) δ 7.52 (d, J = 7.2 Hz, 1H, Ar–H), 7.45 (d, J = 8.8 Hz, 2H, Ar–H), 7.32 (d, J = 6.9 Hz, 2H, Ar–H), 7.18–7.08 (m, 2H, Ar–H), 6.89 (d, J = 8.8 Hz, 2H), 5.49 (s, 2H, N–CH 2 ), 5.30 (s, 1H, C–OH), 2.95–2.90 (m, 2H, aliphatic-H), 2.87–2.82 (m, 2H, aliphatic-H), 1.89 (d, J = 5.0 Hz, 2H, aliphatic-H), 1.76 (d, J = 4.8 Hz, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 156.1, 146.2, 146.5, 138.4, 129.0, 128.2, 127.8, 122.4, 120.8, 119.7, 119.2 (Triazole-C), 117.8, 116.2, 114.6, 109.3, 108.7, 38.8 (N–CH 2 carbon), 31.5, 28.3, 27.1, 26.4, 24.3, mass spectrum, m / z ( Irel , %) calcd : 358 observed: 359 [M + H] + .
Yield: 87%; mp: 147–149 °C; IR (KBr, cm −1 ): 3105, 2930 (C–H), 1583, 1650 (C–NO 2 ). 1 H NMR (400 MHz, CDCl 3 ) δ 8.36–8.31 (m, 2H, Ar–H), 7.87–7.81 (m, 2H, Ar–H), 7.57–7.49 (m, 2H, Ar–H), 7.30 (d, J = 7.3 Hz, 1H, Ar–H), 7.14 (m, J = 7.0, 1.2 Hz, 2H, Ar–H), 5.52 (s, 2H, N–CH 2 ), 2.95–2.89 (m, 2H, aliphatic-H), 2.88–2.83 (m, 2H, aliphatic-H), 1.89 (dd, J = 7.3, 3.8 Hz, 2H, aliphatic-H), 1.79 (dd, J = 9.9, 4.8 Hz, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 147.4, 147.2, 140.9, 138.3, 135.2, 128.3, 125.4, 121.0, 120.4, 119.5, 119.4 (Triazole-C), 117.9, 114.9, 108.6, 38.7 (N–CH 2 carbon), 31.4, 28.2, 27.1, 26.4, 24.3, mass spectrum, m / z ( Irel , %) calcd : 387 observed: 388 [M + H] + (100).
Yield: 95%; mp: 153–155 °C; IR (KBr, cm −1 ): 3145 (C–C), 2860 (C–H), 1601 (C–NO 2 ), 1535. 1 H NMR (400 MHz, CDCl 3 ) δ 8.38–8.30 (m, 2H, Ar–H), 7.87–7.82 (m, 2H, Ar–H), 7.57 (s, 1H, Ar–H), 7.47 (d, J = 7.6 Hz, 1H, Ar–H), 7.30 (d, J = 8.0 Hz, 1H, Ar–H), 7.20–7.07 (m, 2H, Ar–H), 5.46 (s, 2H, N–CH 2 ), 4.09–4.01 (m, 4H, aliphatic-H), 2.99 (d, J = 8.4 Hz, 3H, aliphatic-H), 2.17 (s, 1H), 2.11 (t, J = 6.6 Hz, 2H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 147.2, 146.9, 140.9, 136.7, 133.4, 127.5, 125.4, 121.5, 120.4, 119.6, 119.5 (Triazole-C), 118.0, 108.9, 108.7, 108.5, 64.7, 38.8 (N–CH 2 carbon), 32.0, 31.6, 20.5, mass spectrum, m / z ( Irel , %) calcd : 431 observed: 432 [M + H] + (100).
Yield: 90%; mp: 121–123 °C; IR (KBr, cm −1 ): 3146, 2750, 1759, 1600. 1 H NMR (400 MHz, CDCl 3 ) δ 10.98 (s, 1H, –OH proton), 8.19 (d, J = 8.7 Hz, 2H, Ar–H), 7.76 (d, J = 8.7 Hz, 2H, Ar–H), 7.55–7.50 (m, 2H, Ar–H), 7.33 (d, J = 8.0 Hz, 1H, Ar–H), 7.18–7.09 (m, 2H, Ar–H), 5.46 (s, 2H, N–CH 2 ), 2.77 (dd, J = 14.3, 6.1 Hz, 4H, aliphatic-H), 1.91 (dd, J = 30.5, 5.7 Hz, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 169.3, 142.0, 136.9, 135.5, 131.8, 130.7, 130.6, 127.7, 123.3, 121.6, 119.9, 119.4, 118.4, 109.9, 108.5, 54.1, 23.1, 23.1, 23.8, 21.0, mass spectrum, m / z ( Irel , %) calcd : 431 observed: 432 [M + H] + .
Yield: 72%; mp: 152–154 °C; IR (KBr, cm −1 ): 3031 (C–C), 2988, 1498, 1230 (C–F). 1 H NMR (400 MHz, CDCl 3 ) δ 7.91 (s, 1H), 7.81 (d, J = 8.0 Hz, 1H), 7.65 (d, J = 7.8 Hz, 1H, Ar–H), 7.59 (t, J = 7.9 Hz, 1H, Ar–H), 7.54–7.51 (m, 1H), 7.48 (s, 1H), 7.31 (d, J = 7.5 Hz, 1H), 7.18–7.09 (m, 2H, Ar–H), 5.51 (s, 2H, N–CH 2 ), 2.96–2.90 (m, 2H, aliphatic-H), 2.88–2.82 (m, 2H, aliphatic-H), 1.89 (dd, J = 7.3, 3.7 Hz, 2H, aliphatic-H), 1.81–1.74 (m, 4H, aliphatic-H). 13 C NMR (100 MHz, CDCl 3 ) δ 147.0, 138.4, 137.1, 135.2, 132.5, 130.4, 128.3, 123.5, 120.9, 119.4, 119.3, 117.9, 114.8, 108.6, 117.4, 38.8, 31.5, 28.3, 27.1, 26.4, 24.3. Mass spectrum, m / z ( Irel , %) calcd : 409 observed: 410 [M + H] + .
All the new N-substituted 1,2,3-triazolylmethyl indole derivatives were evaluated for antimicrobial activity against various bacterial and fungal cultures at a concentration of 10, 20 (μM) employing the well diffusion method. 35 The standard antibiotic streptomycin was employed as standard. The well diffusion method was carried out on nutrient agar medium (0.5% peptone, 0.5% NaCl and 0.3% beef extract, HiMedia, Mumbai). The nutrient agar medium was autoclaved at 121 °C/15 lbs, after the autoclaving medium was cooled (40 °C) and poured into Petri dishes (Borosil, S-Line). After solidification, the Petri dishes were observed for sterility by overnight incubation. After the sterility check, the medium was cultured with 10 8 cfu mL −1 actively grown (0.1 mL) bacterial culture using the spread plate technique. After a few minutes, wells were created on the cultured medium using a sterile well borer (5 mm) and selected dilutions of the synthesized N-substituted 1,2,3-triazolylmethyl indole derivatives with selected concentrations were inoculated. After inoculation, the cultured plates were incubated at 37 °C/24 h, and the antimicrobial activity was evaluated based on the zone of inhibition (mm) around the well.
The radical scavenging activity of the synthesized compounds was evaluated by using DPPH (2,2-diphenyl-1-picrylhydrazyl) 36 and HRS (hydroxyl radical scavenging) methods. 37 The reaction mixture was set with selected concentrations of synthesized compounds in 0.2 mM DPPH, and HRS mixture (1,10-phenanthroline: 2.5 mM, PBS: pH 7.4 and FeSO 4 : 2.5 mM) and incubated for 30 min in the dark and its absorbance recorded at 517 nm. Radical scavenging activity was evaluated using the following formula. DPPH activity (%) = (ABS C − ABS S )/ S × 100 where ABS C and ABS S are the absorbance of the control and test samples, respectively. S is the volume (mL) of sample. HRS activity (%) = ( A s – A c )/( A b – A c ) × 100 where A s is the absorbance of the sample, A c is the absorbance of the control (deionized water) and A b is the absorbance of the solution without sample and H 2 O 2 .
The HeLa (cervical cancer) and MCF-7 (breast cancer) cell lines were procured from the National Center of Cell Sciences (NCCS), Pune. Both cell lines were maintained in Dulbecco's modified Eagle medium (DMEM-Gibco, USA) supplemented with antibiotic solution (100×) and 10% fetal calf serum (FCS-Gibco, USA). The cultured cells were propagated and maintained at 37 °C in a CO 2 incubator containing 5% CO 2 and 95% air. The cells were sub-cultured every 2 days by trypsinization for further experiments.
The evaluation of the anti-cancer activity of the synthesized compounds with HeLa and MCF-7 cells was performed using the MTT assay. 38–40 The cancer cells were seeded on 96-well tissue plates (Thermo Fisher Scientific, USA), where 1 × 10 5 cells were seeded in each well. The plates were incubated in a 5% carbon dioxide incubator at 37 °C for 24 h, and post-seeding, the previous medium was replaced with 5 μM, 10 μM, 15 μM, 20 μM, and 25 μM of test compounds with DMEM in each well to achieve a total volume of 200 μL. The treated cells were incubated for 24 h. After a certain incubation period, the test compounds were discarded and 100 μL of 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) solution (5 mM mL −1 in MEM) was filled in each well and kept for 2–4 h in a 5% CO 2 incubator in the dark. The formazan crystals formed by MTT was dissolved by adding 100 μL of dimethyl sulfoxide (DMSO) and incubated for another 20 min. The adsorption of the dissolved formazan crystal was measured using an ELISA reader (BioTek instrument, USA) at 570 nm. The experiments were carried out in triplicate. The anticancer activity of each tested compound was calculated as reported. 40
In the present study, the AutoDock Vina PyRx virtual screening tool was used, 49 which contributes a higher docking efficiency and accuracy. Autodock Vina uses a scoring function with efficient optimization and multithreading. 50 The PyRx virtual screening tool is an open source ( https://pyrx.sourceforge.io/ ) software downloaded and installed on a computer configured with Intel(R) Core (TM) i5-8250U CPU @1.60 GHz 1.80 GHz processor and RAM capacity of 8.00 GB. The ligand molecules were drawn using the ChemSketch ( https://www.acdlabs.com ) software tool and saved in MDL file (.mol) format, and converted to a PDB file using the Open Babel GUI tool.
To study the interactions between the newly synthesized ligand molecules and the target receptor, the crystal structure of the HeLa cell line protein caspase-3 (PDB id: 5IAE ) and the crystal structure Human 17-beta-hydroxysteroid dehydrogenase type 1(PDB ID: 1FDW ) (HBS) of the MCF-7 cell line were downloaded from the Protein Data Bank ( https://www.rcsb.org ). The proteins were prepared using the Biovia Discovery Studio software tool ( https://discover.3ds.com/discovery-studio-visualizer-download ). Initially, the water molecules were removed, and polar hydrogens added. The target protein was loaded in the PyRx tool and saved as a PBDQT file using the Autodock command. The ligands were loaded in PyRx using the Open Babel GUI input wizard. The energies of the ligands were minimized and converted to PDBQT file format. The Autodock Vina wizard was used to perform docking simulations after setting up a grid box in the active site pocket of the target molecule.
According to the docked procedure, the conformations were ranked according to their binding energy and the confirmation with lowest binding energy was considered the best docking score. The docking results were visualized using the Pymol, Biovia Discovery Studio Visualizer and Ligplot protocol.