3. Materials and Methods
3.1. General
All reagents were used as supplied without prior purification. The progression of the reaction was monitored by analytical thin-layer chromatography using TLC sheets ALUGRAM-SIL G/UV254 (Macherey Nagel, Dueren, Germany). Purification by flash chromatography was performed using silica gel (60 Å, 230–400 mesh, Merck, Darmstadt, Germany) with the indicated eluent.
3.2. Melting Point Determination
The melting points of the synthesized derivatives 6–10 were determined using a StuartTM melting point apparatus SMP10. However, during the melting point determination, it was observed that the compound underwent decomposition before reaching its true melting point. Several attempts were made to obtain a reliable melting point, including varying the heating rate and using different apparatuses, but the compounds continued to decompose. As a result, the definitive melting points could not be obtained for these derivatives, and only decomposition points (d) were observed.
3.3. NMR Spectroscopy
NMR spectra were acquired using a Varian VNMRS spectrometer operating at 599.87 MHz for 1H, 150.84 MHz for 13C, and 60.79 MHz for 15N. These experiments were conducted at a temperature of 299.15 K, and a 5 mm inverse-detection H-X probe with a z-gradient coil was used. Pulse programs from the Varian sequence library were employed. Chemical shifts (δ in ppm) were referenced to internal solvent standards: DMSO-d6 at 39.5 ppm, acetone-d6 at 29.8 ppm, and CD3OD 49.0 ppm for 13C, while the partially deuterated signals of DMSO-d5 at 2.5 ppm, acetone-d5 at 2.05 ppm, and CHD2OD at 3.31 ppm were used for 1H referencing. For 15N NMR, external nitromethane served as the reference at 0.0 ppm. MestReNova v. 14.2.1 (Mestrelab Research, Santiago de Compostela, Spain) was utilized for NMR spectra processing and analysis.
3.4. X-ray Data Collection and Structure Refinement
The data collection for
6a·AC (
Appendix A) was performed using an Oxford Diffraction Xcalibur2 diffractometer equipped with a Sapphire2 CCD detector. CrysAlisPro software, version 1.0.43 was utilized for data collection, cell refinement, data reduction, and absorption correction. The structure was solved with SHELXT [
39] and refined using SHELXL-2018 [
40] in the WinGX program suite [
41]. Hydrogen atoms bonded to carbon atoms were placed at calculated positions and refined by riding on their parent atoms. Geometric analysis and hydrogen bonds analysis were conducted using SHELXL-2018, while PLATON [
42] was used to analyze the π–π interaction and DIAMOND [
43] was employed for molecular graphics. A summary of the crystal data and structure refinement for
6a·AC is presented in
Table 7.
3.5. IR Spectroscopy
The infrared spectra of the synthesized compounds were recorded using an Nicolete 6700 FT-IR spectrophotometer (Thermo Fisher Scientific, Waltham, MA, USA) in the range of 400–4000 cm−1 with 64 repetitions for each spectrum, employing the ATR (attenuated total reflectance) technique. All acquired data were analyzed using Omnic 8.2.0.387 (2010) software. The FT-IR spectra were examined to confirm the structure of each new compound and identify the presence of specific functional groups.
3.6. Chiral HPLC Conditions
Analytical high-performance liquid chromatography (HPLC) experiments were conducted using a Shimadzu HPLC system, which included a CBM-20A system controller, LC-20AD pump, CTO-20AC column oven, and RID-10A detector. The analysis was conducted with a flow rate of 0.5 mL/min and a column temperature maintained at 25 °C. For the isocratic analysis, a Chiralpak IA column from Daicel was employed, with the mobile phase consisting of n-hexane and acetone in varying percentages. Prior to usage, HPLC-grade solvents (n-hexane, acetone) were degassed. Sample solutions were prepared by dissolving the compounds in the appropriate mobile phase, resulting in a concentration of approximately 0.5 mg/mL, followed by injection into the system. Data acquisition and instrument control were expertly managed through the LabSolutions Lite software, version 5.52.
3.7. HR-MS
The solid samples were dissolved in methanol and then diluted to a final concentration ranging from 1 to 5 µg/mL using methanol containing 0.5% formic acid and 5 mM ammonium formate. The samples were injected using a nanoelectrospray robot, TriVersa NanoMate
® (Advion, Ithaca, NY, USA). The volume of the sample aspired into the tip for a single injection was 20 µL, and the maximum spraying rate was approximately 220 nL/min. In the positive mode, the gas pressure (N
2 extruding the sample from the tip) was set to 0.3 psi, and the applied voltage was 1.4 kV. The samples were injected into a mass spectrometer, Orbitrap Fusion
TM Lumos
TM Tribrid
TM (Thermo Fisher Scientific, Waltham, MA, USA). The ion transfer tube temperature was maintained at 275 °C. Full scan (MS
1) was performed using an Orbitrap detector with a resolution of 120,000, a maximum injection time of 200 ms, and 2 microscans. Subsequent scans (MS
2 to MS
4) were also performed with the Orbitrap detector after fragmentation using CID (collision-induced dissociation) with relative energies ranging from 10 to 100 and HCD (higher-energy collisional dissociation) with relative energies ranging from 10 to 200. The collision pressure was 8 × 10
−3 Torr. The isolation width for all levels of fragmentation was set to 1 unit (minimum). The automatic gain control was typically set between values of 2 × 10
4 and 5 × 10
5, depending on the sample concentration. The obtained data were of high quality, as it included high-resolution MS/MS and multi-stage MSn spectra acquired at various collision energies using different fragmentation techniques. The measured data were manually processed using Mass Frontier™ 8.0 software (Thermo Scientific™, Bratislava, Slovakia) within the Curator module. This module employs advanced algorithms to detect incompatibilities between the declared structure precursor and the product MS
n fragmentation spectra. These compounds were added to the high-quality mzCloud™ spectral library (
https://www.mzcloud.org). For compounds
6–
10, the mzCloud™ ID ranged from 11372 to 11404. HR MS data are tabulated in ESI (
Table S2).
3.8. Biological Activity
3.8.1. Cell Lines and Culture Conditions
The human cancer cell lines employed in this study were sourced from reputable institutions, including the American Type Culture Collection (ATCC; Manassas, VA, USA) and the European Collection of Authenticated Cell Cultures (ECACC, Salisbury, UK). Specifically, HeLa (93021013, human cervical adenocarcinoma), HCT116 (CCL-247TM, human colorectal carcinoma), and Jurkat (88042803, human leukemic T-cell lymphoma) were cultured in RPMI 1640 medium (Biosera, Kansas City, MO, USA). In contrast, MCF-7 (HTB-22TM, human Caucasian breast adenocarcinoma, ER+), MDA-MB-231 (HTB-26TM, human breast adenocarcinoma, ER−), and COS-7 (CRL-1651TM, kidney fibroblasts) were nurtured in high-glucose Dulbecco’s Modified Eagle Medium (DMEM) supplemented with sodium pyruvate (Biosera). Furthermore, BJ-5ta (CRL-4001TM, human dermal fibroblasts) was cultured in a composite medium of high-glucose DMEM and M199 (4:1) (Biosera), supplemented with Hygromycin B (0.01 mg/mL; Merck, Darmstadt, Germany). All culture media were enriched with a 10% fetal bovine serum (FBS; Gibco, Thermo Scientific, Rockford, IL, USA) and an antibiotic/antimycotic solution (Merck) to ensure optimal growth conditions. The cells were meticulously maintained within a humidified environment containing 5% CO2 at 37 °C. Regular screenings for mycoplasma contamination were conducted using Hoechst 33342 staining (Merck), confirming the integrity of the cell lines.
3.8.2. MTT Assay
To assess the antiproliferative impact of the synthesized compounds
6–
10, their half-maximal inhibitory concentration (IC
50) and the MTT colorimetric assay were employed. MDA-MB-231 and MCF-7 cells were seeded into 96-well microplates (SARSTEDT, Nümbrecht, Germany) at a density of 5 × 103 cells per well. After 24 h of cell seeding, various concentrations (100, 50, and 10 µmol/L) of acridine derivatives
6–
10 were introduced, alongside cisplatin (utilized as a reference) at concentrations of 5, 10, 20, 50, and 100 µmol/L. Subsequent to 24, 48, and 72 h of treatment, the cells in each well underwent incubation with MTT (5 mg/mL, Sigma-Aldrich Chemie, Steinheim, Germany) for 4 h at 37 °C in the dark. During this period, mitochondrial oxidoreductases metabolized MTT, forming insoluble formazan. Following this, 100 µL of SDS (10% sodium decyl sulfate) was added to dissolve the formazan crystals, and the cells were incubated for an additional 12 h. Absorbance at 540 nm was measured using the automated Cytation™ 3 Cell Imaging Multi-Mode Reader (Biotek, Winooski, VT, USA). Each test was performed in triplicate, and three independent experiments were conducted to ensure precision and reliability [
37].
3.8.3. Primary Endothelial Cell Isolation
Primary brain endothelial cells were isolated from rats (200–250 g, 6 months old; n = 5 per isolation). Euthanasia was performed by CO2 exposure, followed by brain removal. The brainstem and cerebellum were dissected, and the white matter from the midbrain and choroid plexus was excised under sterile conditions. Cortical tissues were meticulously cleaned of meninges and homogenized on ice in a DMEM-F12 medium (PAA Laboratories GmbH, Cölbe, Germany) with 0.1% bovine serum albumin (BSA, Sigma-Aldrich, St. Louis, MO, USA). The homogenate was centrifuged at 800× g for 10 min at 4 °C. After aspirating the supernatant, the pellet was resuspended in a pre-warmed digestion mix containing 1 mg/mL collagenase/dispase (Roche Diagnostics, Indianapolis, IN, USA) and 10 μg/mL DNase I (Roche Diagnostics, Indianapolis, IN, USA). The homogenates were then incubated with the pre-prepared digestion mix at 37 °C for 30 min with gentle shaking. The preparation was centrifuged at 800× g for 10 min at 4 °C, and the pellets were resuspended in 20% BSA in the medium. The tissues were centrifuged at 1500× g for 15 min at 4 °C to obtain a pellet containing microvessels with a fraction of myelin and BSA on top, which was centrifuged again. The microvessels were pooled and resuspended in a pre-warmed digestion mix and incubated for 15 min at 37 °C. The pellet was then centrifuged at 800× g for 10 min at 4 °C and washed with a serum-containing DMEM-F12 culture medium. The microvessels were cultured in a DMEM-F12 medium containing 15% plasma-derived serum (PDS, First Link, Birmingham, UK), 2 mM UltraGlutamine (GE Healthcare, Chalfont Saint Giles, UK), BME vitamins (Sigma-Aldrich, St. Louis, MO, USA), heparin (Sigma-Aldrich, St. Louis, MO, USA), and 3 μM puromycin (Sigma-Aldrich, St. Louis, MO, USA) in 6-well tissue culture plates for the following 3 days. After 3 days, the cells were switched to serum-free media. The endothelial cells were ready to use after 7 days.
3.8.4. Endothelial Cell Viability Assay
The endothelial cell viability was assessed through the quantification of adenosine triphosphate (ATP) released from the cells, utilizing the ATP assay as per the manufacturer’s instructions (The Promega CellTiter-Glo™ Luminescent Cell Viability Assay Kit, Madison, WI, USA). Cell viability data were fitted to an inverse sigmoidal curve, and a four-parameter logistic model was employed to calculate the IC50. Data analysis was executed using Prism 8.0 software (GraphPad Inc., San Diego, CA, USA).
3.9. General Synthetic Procedure for Compounds 6a–e
To a mixture of acridine-9-carbaldehyde (4, 100 mg, 0.48 mmol) and 3a–e (0.48 mmol) in dry ethanol (2 mL), anhydrous sodium acetate was added (4 mg, 0.05 mmol). The reaction mixture was stirred at room temperature under TLC monitoring (nHex:EtOAc, v/v 3:1) until the complete consumption of acridine-9-carbaldehyde (4). The formed yellow precipitate was filtered off, washed with a small amount of absolute ethanol, and dried. The crude product was crystallized using hot acetone to yield 6a–e.
3-{4′-Cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}-1-phenylthiourea (6a). Yellow solid; yield: 74% (0.152 g), m. p.: 194–195 °C (d). 1H NMR (600 MHz, acetone-d6): δ 9.06 (s, 1H, H-10′), 8.52 (s, 1H, H-3), 8.34 (s, 1H, H-10), 8.31 (s, 1H, H-8), 7.47 (br s, 2H, H-1′,8′), 7.33 (ddt, J = 8.3, 7.1, 1.3 Hz, 2H, H-3′,6′), 7.19 (m, 2H, H-2″,6″), 7.14 (m, 2H, H-3″,5″), 7.08 (m, 3H, H-4′,5′,4″), 6.97 (ddd, J = 8.1, 7.1, 1.2 Hz, 2H, H-2′,7′). 13C NMR (150 MHz, acetone-d6): δ 182.49 (C-9), 182.35 (C-9), 163.80 (C-5), 162.53 (C-3), 162.52 (C-3), 140.53 (C-4′a,10′a), 140.44 (C-4′a,10′a), 139.36 (C-1″), 139.35 (C-1″), 131.30 (C-3′,6′), 129.10 (C-1′,8′), 128.70 (C-3″,5″), 126.24 (C-4″), 126.22 (C-4″), 125.66 (C-2″,6″), 125.54 (C-2″,6″), 121.74 (C-2′,7′), 121.73 (C-2′,7′), 116.56 (C-4′,5′), 116.48 (C-4′,5′), 112.66 (C-8′a,9′a), 112.60 (C-4), 112.60 (C-6), 70.55 (C-9′), 70.54 (C-9′). 15N NMR (61 MHz, acetone-d6): δ −284.8 (NH-10′), −261.5 (NH-8), −255.2 (NH-10), −206.8 (N-1). HRMS: m/z [M + H]+ calcd. for C24H17N5OS: 424.12266; found: 424.12300.
3-{4′-Cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}-1-(4-methoxyphenyl)thiourea (6b). Yellow solid; yield: 67% (0.148 g), m. p.: 185–188 °C (d). 1H NMR (600 MHz, acetone-d6): δ 9.04 (s, 1H, H-10′), 8.51 (s, 1H, H-3), 8.24 (s, 1H, H-10), 8.20 (s, 1H, H-8), 7.48 (br s, 2H, H-1′,8′), 7.35 (ddt, J = 8.3, 7.1, 1.1 Hz, 2H, H-3′,6′), 7.09 (d, J = 7.9 Hz, 2H, H-4′,5′), 6.97 (ddd, J = 8.2, 7.1, 1.2 Hz, 2H, H-2′,7′), 6.93 (d, J = 9.0 Hz, 2H, H-2″,6″), 6.74 (d, J = 9.0 Hz, 2H, H-3″,5″), 3.74 (s, 3H, OCH3). 13C NMR (150 MHz, acetone-d6): δ 182.86 (C-9), 182.72 (C-9), 163.73 (C-5), 162.46 (C-3), 158.50 (C-4″), 158.59 (C-4″), 140.53 (C-4′a,10′a), 140.44 (C-4′a,10′a), 132.16 (C-1″), 132.04 (C-1″), 131.25 (C-3′,6′), 129.07 (C-1′,8′), 127.62 (C-2″,6″), 127.54 (C-2″,6″), 121.69 (C-2′,7′), 116.55 (C-4′,5′), 116.47 (C-4′,5′), 113.88 (C-3″,5″), 112.68 (C-8′a,9′a), 112.60 (C-4), 112.60 (C-6), 70.50 (C-9′), 55.60 (OCH3). 15N NMR (61 MHz, acetone-d6): δ −284.9 (N-10′), −262.7 (N-8), −257.1 (N-10), −206.9 (N-1). HRMS: m/z [M + H]+ calcd. for C25H19N5O2S: 454.13322; found: 454.13420.
3-{4′-Cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}-1-(3-methoxyphenyl)thiourea (6c). Yellow solid; yield: 68% (0.150 g), m. p.: 184–186 °C (d). 1H NMR (600 MHz, acetone-d6): δ 9.04 (s, 1H, H-10′), 8.53 (s, 1H, H-3), 8.30 (s, 2H, H-8, H-10), 7.47 (br s, 2H, H-1′,8′), 7.34 (ddt, J = 8.4, 7.1, 1.3 Hz, 2H, H-3′,6′), 7.08 (m, 3H, H-4′,5′,5″), 6.99 (ddd, J = 8.1, 7.1, 1.2 Hz, 2H, H-2′,7′), 6.86 (dt, J = 13.7, 2.3 Hz, 1H, H-2″), 6.76 (tdd, J = 8.2, 2.0, 0.9 Hz, 1H, H-6″), 6.65 (ddd, J = 8.2, 2.0, 0.9 Hz, 1H, H-4″), 3.72 (s, 3H, OCH3). 13C NMR (150 MHz, acetone-d6): δ 182.06 (C-9), 182.01 (C-9), 163.87 (C-5), 162.57 (C-3), 160.28 (C-3″), 140.52 (C-4′a,10′a), 140.41 (C-4′a,10′a), 131.26 (C-3′,6′), 129.37 (C-5″), 129.06 (C-1′,8′), 121.73 (C-2′,7′), 121.72 (C-2′,7′), 117.59 (C-6″), 117.45 (C-6″), 116.56 (C-4′,5′), 116.48 (C-4′,5′), 112.64 (C-8′a,9′a), 112.60 (C-4), 112.57 (C-6), 112.08 (C-4″), 112.05 (C-4″), 110.81 (C-2″), 110.68 (C-2″), 70.54 (C-9′), 55.63 (OCH3). 15N NMR (61 MHz, acetone-d6): δ −284.8 (N-10′), −261.1 (N-8), −254.9 (N-10), −206.8 (N-1). HRMS: m/z [M + H]+ calcd. for C25H19N5O2S: 454.13322; found: 454.13390.
3-{4′-Cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}-1-(4-fluorophenyl)thiourea (6d). Yellow solid; yield: 70% (0.149 g), m. p.: 197–199 °C (d). 1H NMR (600 MHz, acetone-d6): δ 9.06 (s, 1H, H-10′), 8.53 (s, 1H, H-3), 8.40 (s, 1H, H-10), 8.36 (s, 1H, H-8), 7.47 (br s, 2H, H-1′,8′), 7.34 (ddt, J = 8.4, 7.3, 1.3 Hz, 2H, H-3′,6′), 7.09 (m, 4H, H-4′,5′, H-2″,6″), 6.97 (m, 4H, H-2′,7′,3″,5″). 13C NMR (150 MHz, acetone-d6): δ 182.87 (C-9), 182.73 (C-9), 163.65 (C-5), 162.49 (C-3), 162.48 (C-3), 161.10 (dd, J = 241.5, 3.0 Hz, C-4″), 140.56 (C-4′a,10′a), 140.47 (C-4′a,10′a), 135.5 (dt, J = 16.7, 3.0 Hz, C-1″), 131.27 (C-3′,6′), 129.09 (C-1′,8′), 128.06 (d, J = 8.3 Hz, C-2″,6″), 127.96 (d, J = 8.3 Hz, C-2″,6″), 121.70 (C-2′,7′), 121.69 (C-2′,7′), 116.54 (C-4′,5′), 116.46 (C-4′,5′), 115.29 (d, J = 22.8 Hz, C-3″,5″), 112.70 (C-4), 112.70 (C-6), 112.65 (C-8′a,9′a), 70.56 (C-9′), 70.55 (C-9′). 15N NMR (61 MHz, acetone-d6): δ −284.7 (N-10′), −261.6 (N-8), −257.5 (N-10), −206.9 (N-1). HRMS: m/z [M + H]+ calcd. for C24H16FN5OS: 442.11324; found: 442.11340.
3-{4′-Cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}-1-(4-nitrophenyl)thiourea (6e). Yellow solid; yield: 59% (0.133 g), m. p.: 175–179 °C (d). 1H NMR (600 MHz, acetone-d6): δ 9.07 (s, 1H, H-10′), 8.91 (s, 1H, H-10), 8.75 (s, 1H, H-8), 8.59 (s, 1H, H-3), 8.08 (d, J = 9.2 Hz, 2H, H-3″,5″), 7.66 (d, J = 9.2 Hz, 2H, H-2″,6″), 7.28 (br s, 2H, H-3′,6′), 7.06 (br d, J = 8.1 Hz, 2H, H-4′,5′), 6.97 (ddd, J = 8.2, 7.2, 1.2 Hz, 2H, H-2′,7′). 13C NMR (150 MHz, acetone-d6): δ 181.82 (C-9), 163.73 (C-5), 162.62 (C-3), 145.39 (C-1″), 145.28 (C-1′’), 144.85 (C-4″), 140.44 (C-4′a,10′a), 131.32 (C-3′,6′), 129.05 (C-1′,8′), 124.31 (C-3″,5″), 123.96 (C-2″,6″), 123.81 (C-2″,6″), 121.79 (C-2′,7′), 116.51 (C-4′,5′), 116.43 (C-4′,5′), 112.82 (C-8′a,9′a), 112.80 (C-4), 112.57 (C-6), 70.80 (C-9′). 15N NMR (61 MHz, acetone-d6): δ −284.5 (N-10′), −257.2 (N-10), −207.0 (N-1). HRMS: m/z [M + H]+ calcd. for C24H16N6O3S: 469.10774; found: 469.10790.
3.10. General Synthetic Procedure for Compounds 7a–d
To a suspension of 6a–d (50 mg) in dry ethanol (0.6 mL), methyl-bromoacetate (1.2 equiv) and triethylamine (1.0 equiv) were added. The reaction mixture was stirred at room temperature. After 1 h, another amount of triethylamine (1.0 equiv) was added. The mixture was stirred for another 2–3 h. The progress of the reaction was monitored by TLC (nHex:EtOAc, v/v 1:3). The formed yellow precipitate was filtered off, washed with a small amount of absolute ethanol, and dried.
5′-Oxo-1′-{[(2Z)-4-oxo-3-phenyl-1,3-thiazolidin-2-ylidene]amino}-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (7a). Yellow solid; yield: 79% (0.043 g), m. p.: 241–243 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.77 (s, 1H, H-10′), 8.69 (s, 1H, H-3), 7.29 (m, 3H, H-3″,4″,5″), 7.26 (ddd, J = 8.4, 7.1, 1.4 Hz, 2H, H-3′,6′), 7.05 (m, 2H, H-2″,6″), 7.02 (dd, J = 8.2, 1.2 Hz, 2H, H-4′,5′), 7.02 (dd, J = 7.9, 1.4 Hz, 2H, H-1′,8′), 6.81 (ddd, J = 7.9, 7.1, 1.2 Hz, 2H, H-2′,7′), 4.03 (s, 2H, H-12). 13C NMR (151 MHz, DMSO-d6): δ 171.0 (C-11), 167.0 (C-9), 162.0 (C-3), 157.4 (C-5), 139.2 (C-4′a,10′a), 133.8 (C-1″), 129.8 (C-3′,6′), 128.4 (C-3″,5″), 128.2 (C-4″), 127.7 (C-1′,8′), 127.4 (C-2″,6″), 120.0 (C-2′,7′), 114.8 (C-4′,5′), 112.5 (C-6), 112.4 (C-8′a,9′a), 110.9 (C-4), 69.6 (C-9′), 32.7 (C-12). 15N NMR (61 MHz, DMSO-d6): δ −284.4 (N-10′), −217.2 (N-10), −186.9 (N-1). HRMS: m/z [M + H]+ calcd. for C26H17N5O2S: 464.11757; found: 464.11790.
1′-{[(2Z)-3-(4-Methoxyphenyl)-4-oxo-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (7b). Yellow solid; yield: 66% (0.036 g), m. p.: 207–210 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.74 (s, 1H, H-10′), 8.69 (s, 1H, H-3), 7.27 (ddd, J = 8.4, 7.2, 1.4 Hz, 2H, H-3′,6′), 7.02 (dd, J = 8.2, 1.4 Hz, 2H, H-1′,8′), 7.02 (dd, J = 8.2, 1.4 Hz, 2H, H-4′,5′), 6.95 (d, J = 9.0 Hz, 2H, H-2″,6″), 6.83 (ddd, J = 8.4, 7.2, 1.4 Hz, 2H, H-2′,7′), 6.82 (d, J = 9.0 Hz, 2H, H-3″,5″), 4.00 (s, 2H, H-12), 3.73 (s, 3H, OCH3). 13C NMR (151 MHz, DMSO-d6): δ 171.1 (C-11), 167.1 (C-9), 162.0 (C-3), 158.5 (C-4″), 157.3 (C-5), 139.1 (C-4′a,10′a), 129.8 (C-3′,6′), 128.5 (C-2″,6″), 127.7 (C-1′,8′), 126.4 (C-1″), 120.0 (C-2′,7′), 114.8 (C-4′,5′), 113.6 (C-3″,5″), 112.5 (C-6), 112.4 (C-8′a,9′a), 111.0 (C-4), 69.6 (C-9′), 55.3 (OCH3), 32.6 (C-12). 15N NMR (61 MHz, DMSO-d6): δ −283.5 (N-10′), −218.5 (N-10), −186.0 (N-1). HRMS: m/z [M + H]+ calcd. for C27H19N5O3S: 494.12814; found: 494.12880.
1′-{[(2Z)-3-(3-Methoxyphenyl)-4-oxo-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (7c). Yellow solid; yield: 83% (0.045 g), m. p.: 217–220 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.69 (s, 1H, H-10′), 8.65 (s, 1H, H-3), 7.25 (ddd, J = 8.4, 7.2, 1.4 Hz, 2H, H-3′,6′), 7.19 (t, J = 8.4 Hz, 1H, H-5″), 7.02 (dd, J = 8.2, 1.4 Hz, 2H, H-1′,8′), 6.99 (dd, J = 8.2, 1.2 Hz, 2H, H-4′,5′), 6.85 (ddd, J = 8.4, 2.4, 1.1 Hz, 1H H-4″), 6.81 (ddd, J = 8.2, 7.2, 1.2 Hz, 2H, H-2′,7′), 6.62 (m, 2H, H-2″,6″), 4.03 (s, 2H, H-12), 3.66 (s, 3H, OCH3). 13C NMR (151 MHz, DMSO-d6): δ 171.0 (C-11), 166.9 (C-9), 162.1 (C-3), 159.1 (C-3″), 157.6 (C-5), 139.1 (C-4′a,10′a), 134.8 (C-1″), 129.7 (C-3′,6′), 129.1 (C-5″), 127.7 (C-1′,8′), 119.9 (C-2′,7′), 119.7 (C-6″), 114.9 (C-4′,5′), 114.1 (C-4″), 113.1 (C-2″), 112.5 (C-6), 112.2 (C-8′a,9′a), 110.3 (C-4), 69.6 (C-9′), 55.2 (OCH3), 32.7 (C-12). 15N NMR (61 MHz, DMSO-d6): δ −283.8 (N-10′), −186.3 (N-1). HRMS: m/z [M + H]+ calcd. for C27H19N5O3S: 494.12814; found: 494.12880.
1′-{[(2Z)-3-(4-Fluorophenyl)-4-oxo-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (7d). Yellow solid; yield: 70% (0.038 g), m. p.: 249–252 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.73 (s, 1H, H-10′), 8.69 (s, 1H, H-3), 7.27 (ddd, J = 8.4, 7.1, 1.4 Hz, 2H, H-3′,6′), 7.12 (t, J = 8.8 Hz, 2H, H-3″,5″), 7.09 (dd, J = 9.0, 5.1 Hz, 2H, H-2″,6″), 7.02 (dd, J = 8.0, 1.4 Hz, 2H, H-1′,8′), 7.01 (dd, J = 8.4, 1.2 Hz, 2H, H-4′,5′), 6.82 (ddd, J = 8.0, 7.1, 1.2 Hz, 2H, H-2′,7′), 4.02 (s, 2H, H-12). 13C NMR (151 MHz, DMSO-d6): δ 171.0 (C-11), 166.7 (C-9), 162.0 (C-3), 160.3 (d, J = 245.6 Hz, C-4″), 157.5 (C-5), 139.1 (C-4′a,10′a), 130.0 (d, J = 2.9 Hz, C-1″), 129.8 (C-3′,6′), 129.7 (d, J = 8.9 Hz, C-2″,6″), 127.7 (C-1′,8′), 120.1 (C-2′,7′), 115.4 (d, J = 22.9 Hz, H-3″,5″), 114.8 (C-4′,5′), 112.5 (C-6), 112.4 (C-8′a,9′a), 111.0 (C-4), 69.7 (C-9′), 32.9 (C-12). 15N NMR (61 MHz, DMSO-d6): δ −283.5 (C-10′), −219.1 (N-10), −186.3 (N-1). HRMS: m/z [M + H]+ calcd. for C26H16FN5O2S: 482.10815; found: 482.10870.
3.11. Synthetic Procedure for Compound 7e
To a suspension of 6e (50 mg, 0.11 mmol) in dry ethanol (0.6 mL), anhydrous sodium acetate was added (35 mg, 0.43 mmol). The reaction mixture was stirred at 70 °C. After 15 min, methyl-bromoacetate (15 μL, 0.16 mmol) was added dropwise. The mixture was stirred for 3 h at 70 °C. The progress of the reaction was monitored by TLC (nHex:EtOAc, v/v 1:3). After the completion of the reaction, the mixture was cooled, and the yellow precipitate was filtered off, washed with a small amount of absolute ethanol, and dried.
1′-{[(2Z)-3-(4-Nitrophenyl)-4-oxo-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (7e). Yellow solid; yield: 41% (0.022 g), m. p.: 244–247 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.75 (s, 1H, H-10′), 8.70 (s, 1H, H-3), 8.14 (d, J = 9.1 Hz, 2H, H-3″,5″), 7.35 (d, J = 9.1 Hz, 2H, H-2″,6″), 7.26 (ddd, J = 8.4, 7.1, 1.4 Hz, 2H, H-3′,6′), 7.02 (dd, J = 8.0, 1.4 Hz, 2H, H-1′,8′), 7.02 (dd, J = 8.4, 1.2 Hz, 2H, H-4′,5′), 6.82 (ddd, J = 8.0, 7.1, 1.2 Hz, 2H, H-2′,7′), 4.08 (s, 2H, H-12). 13C NMR (151 MHz, DMSO-d6): δ 170.5 (C-11), 165.5 (C-9), 162.0 (C-3), 157.5 (C-5), 146.4 (C-4″), 139.4 (C-1″), 139.0 (C-4′a,10′a), 129.8 (C-3′,6′), 128.8 (C-2″,6″), 127.7 (C-1′,8′), 123.6 (C-3″,5″), 120.1 (C-2′,7′), 114.8 (C-4′,5′), 112.4 (C-6), 112.3 (C-8′a,9′a), 110.8 (C-4), 69.7 (C-9′), 33.3 (C-12). 15N NMR (61 MHz, DMSO-d6): δ −283.6 (N-10′), −218.5 (N-10), −186.5 (N-1), −11.6 (NO2). HRMS: m/z [M + H]+ calcd. for C26H16N6O4S: 509.10265; found: 509.10330.
3.12. General Synthetic Procedure for Compounds 8a–e
To a suspension of 6a–e (50 mg, 0.11 mmol) in dry ethanol (0.8 mL), an equimolar amount of diethyl acetylene-dicarboxylate was added. The reaction mixture was stirred at 70 °C for 7 h. The progress of the reaction was monitored by TLC (nHex:EtOAc, v/v 1:3). After the completion of the reaction, the mixture was cooled, and the yellow precipitate was filtered off, washed with a small amount of absolute ethanol, and dried.
Ethyl 2-[(2Z,5Z)-2-({4′-cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}imino)-4-oxo-3-phenyl-1,3-thiazolidin-5-ylidene]acetate (8a). Yellow solid; yield: 75% (0.048 g), m. p.: 256–259 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.80 (s, 1H, H-10′), 8.77 (s, 1H, H-3), 7.33 (m, 3H, H-3″,4″,5″), 7.25 (ddd, J = 8.2, 7.1, 1.4 Hz, 2H, H-3′,6′), 7.15 (m, 2H, H-2″,6″), 7.07 (dd, J = 7.9, 1.4 Hz, 2H, H-1′,8′), 7.01 (dd, J = 8.2, 1.2 Hz, 2H, H-4′,5′), 6.82 (ddd, J = 8.0, 7.1, 1.2 Hz, 2H, H-2′,7′), 6.73 (s, 1H, H-14), 4.25 (q, J = 7.1 Hz, 2H, H-16), 1.26 (t, J = 7.1 Hz, 3H, H-17). 13C NMR (151 MHz, DMSO-d6): δ 165.2 (C-15), 163.1 (C-11), 162.1 (C-3), 161.9 (C-9), 157.8 (C-5), 140.0 (C-12), 139.1 (C-4′a,10′a), 133.0 (C-1″), 129.9 (C-3′,6′), 128.6 (C-4″), 128.5 (C-3″,5″), 127.6 (C-1′,8′), 127.4 (C-2″,6″), 120.1 (C-2′,7′), 116.3 (C-14), 114.9 (C-4′,5′), 112.3 (C-6), 112.1 (C-8′a,9′a), 111.0 (C-4), 70.1 (C-9′), 61.7 (C-16), 14.0 (C-17). 15N NMR (61 MHz, DMSO-d6): δ −283.1 (N-10′), −219.4 (N-10), −184.7 (N-1). HRMS: m/z [M + H]+ calcd. for C30H21N5O4S: 548.13870; found: 548.13920.
Ethyl 2-[(2Z,5Z)-2-({4′-cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}imino)-3-(4-methoxyphenyl)-4-oxo-1,3-thiazolidin-5-ylidene]acetate (8b). Yellow solid; yield: 57% (0.036 g), m. p.: 203–207 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.78 (s, 1H, H-10′), 8.77 (s, 1H, H-3), 7.26 (ddd, J = 8.2, 7.1, 1.4 Hz, 2H, H-3′,6′), 7.07 (dd, J = 7.8, 1.4 Hz, 2H, H-1′,8′), 7.05 (d, J = 9.0 Hz, 2H, H-2″,6″), 7.01 (dd, J = 8.2, 1.2 Hz, 2H, H-4′,5′), 6.86 (d, J = 9.0 Hz, 2H, H-3″,5″), 6.83 (ddd, J = 8.1, 7.1, 1.2 Hz, 2H, H-2′,7′), 6.71 (s, 1H, H-14), 4.24 (q, J = 7.1 Hz, 2H, H-16), 3.75 (s, 3H, OCH3), 1.25 (t, J = 7.1 Hz, 3H, H-17). 13C NMR (151 MHz, DMSO-d6): δ 165.2 (C-15), 163.2 (C-11), 162.1 (C-3), 161.9 (C-9), 158.9 (C-4″), 157.7 (C-5), 140.0 (C-12), 139.1 (C-4′a,10′a), 129.9 (C-3′,6′), 128.5 (C-2″,6″), 127.6 (C-1′,8′), 125.5 (C-1″), 120.2 (C-2′,7′), 116.2 (C-14), 114.9 (C-4′,5′), 113.7 (C-3″,5″), 112.3 (C-6), 112.2 (C-8′a,9′a), 111.1 (C-4), 70.1 (C-9′), 61.7 (C-16), 55.4 (OCH3), 14.0 (C-17). 15N NMR (61 MHz, DMSO-d6): δ −282.6 (N-10′), −220.0 (N-10), −184.1 (N-1). HRMS: m/z [M + H]+ calcd. for C31H23N5O5S: 578.14927; found: 578.15000.
Ethyl 2-[(2Z,5Z)-2-({4′-cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}imino)-3-(3-methoxyphenyl)-4-oxo-1,3-thiazolidin-5-ylidene]acetate (8c). Yellow solid; yield: 66% (0.042 g), m. p.: 239–243 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.73 (s, 1H, H-10′), 8.73 (s, 1H, H-3), 7.24 (ddd, J = 8.4, 7.1, 1.4 Hz, 2H, H-3′,6′), 7.22 (t, J = 8.2 Hz, 1H, H-5″), 7.06 (dd, J = 7.9, 1.4 Hz, 2H, H-1′,8′), 6.98 (dd, J = 8.2, 1.2 Hz, 2H, H-4′,5′), 6.90 (ddd, J = 8.4, 2.6, 0.9 Hz, 1H, H-4″), 6.82 (ddd, J = 8.2, 7.1, 1.2 Hz, 2H, H-2′,7′), 6.75 (t, J = 1.8 Hz, 1H, H-2″), 6.72 (s, 1H, H-14), 6.70 (ddd, J = 7.9, 2.0, 0.9 Hz, 1H, H-6″), 4.25 (q, J = 7.1 Hz, 2H, H-16), 3.67 (s, 3H, OCH3), 1.26 (t, J = 7.1 Hz, 3H, H-17). 13C NMR (151 MHz, DMSO-d6): δ 165.2 (C-15), 163.1 (C-11), 162.2 (C-3), 161.9 (C-9), 159.2 (C-3″), 158.0 (C-5), 140.0 (C-12), 139.1 (C-4′a,10′a), 133.9 (C-1″), 129.9 (C-3′,6′), 129.2 (C-5″), 127.6 (C-1′,8′), 120.1 (C-2′,7′), 119.6 (C-6″), 116.3 (C-14), 115.0 (C-4′,5′), 114.6 (C-4″), 113.2 (C-2″), 112.3 (C-6), 111.9 (C-8′a,9′a), 110.5 (C-4), 70.1 (C-9′), 61.7 (C-16), 55.3 (OCH3), 14.0 (C-17). 15N NMR (61 MHz, DMSO-d6): δ −283.5 (N-10′), −184.9 (N-1). HRMS: m/z [M + H]+ calcd. For C31H23N5O5S: 578.14927; found: 578.15000.
Ethyl 2-[(2Z,5Z)-2-({4′-cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}imino)-3-(4-fluorophenyl)-4-oxo-1,3-thiazolidin-5-ylidene]acetate (8d). Yellow solid; yield: 60% (0.038 g), m. p.: 269–272 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.75 (s, 1H, H-10′), 8.76 (s, 1H, H-3), 7.26 (ddd, J = 8.4, 7.1, 1.4 Hz, 2H, H-3′,6′), 7.19 (dd, J = 9.3, 5.4 Hz, 2H, H-2″,6″), 7.16 (t, J = 9.3 Hz, 2H, H-3″,5″), 7.06 (dd, J = 8.2, 1.4 Hz, 2H, H-1′,8′), 7.00 (dd, J = 8.2, 1.2 Hz, 2H, H-4′,5′), 6.83 (ddd, J = 8.2, 7.2, 1.2 Hz, 2H, H-2′,7′), 6.72 (s, 1H, H-14), 4.24 (q, J = 7.1 Hz, 2H, H-16), 1.25 (t, J = 7.1 Hz, 3H, H-17). 13C NMR (151 MHz, DMSO-d6): δ 165.2 (C-15), 163.1 (C-11), 162.1 (C-3), 161.4 (d, J = 246.4 Hz, C-4″), 161.2 (C-9), 157.8 (C-5), 140.1 (C-12), 139.1 (C-4′a,10′a), 129.9 (C-3′,6′), 129.7 (d, J = 9.1 Hz, C-2″,6″), 129.2 (d, J = 2.9 Hz, C-1″), 127.6 (C-1′,8′), 120.2 (C-2′,7′), 116.3 (C-14), 115.4 (d, J = 23.0 Hz, H-3″,5″), 114.9 (C-4′,5′), 112.3 (C-6), 112.1 (C-8′a,9′a), 111.0 (C-4), 70.1 (C-9′), 61.7 (C-16), 14.0 (C-17). 15N NMR (61 MHz, DMSO-d6): δ −283.3 (N-10′), −184.9 (N-1). HRMS: m/z [M + H]+ calcd. for C30H20FN5O4S: 566.12928; found: 566.13000.
Ethyl 2-[(2Z,5Z)-2-({4′-cyano-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrol]-1′-yl}imino)-3-(4-nitrophenyl)-4-oxo-1,3-thiazolidin-5-ylidene]acetate (8e). Yellow solid; yield: 60% (0.038 g), m. p.: 183–186 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.77 (s, 1H, H-10′), 8.76 (s, 1H, H-3), 8.18 (d, J = 9.1 Hz, 2H, H-3″,5″), 7.44 (d, J = 9.1 Hz, 2H, H-2″,6″), 7.24 (ddd, J = 8.2, 7.2, 1.4 Hz, 2H, H-3′,6′), 7.06 (dd, J = 8.0, 1.4 Hz, 2H, H-1′,8′), 6.99 (dd, J = 8.2, 1.2 Hz, 2H, H.4′,5′), 6.82 (ddd, J = 8.0, 7.2, 1.2 Hz, 2H, H-2′,7′), 6.75 (s, 1H, H-14), 4.25 (q, J = 7.1 Hz, 2H, H-16), 1.26 (t, J = 7.1 Hz, 3H, H-17). 13C NMR (151 MHz, DMSO-d6): δ 165.3 (C-15), 162.6 (C-11), 162.1 (C-3), 159.6 (C-9), 157.9 (C-5), 146.7 (C-4″), 140.3 (C-12), 139.0 (C-4′a,10′a), 138.6 (C-1″), 129.9 (C-3′,6′), 128.9 (C-2″,6″), 127.6 (C-1′,8′), 123.6 (C-3″,5″), 120.2 (C-2′,7′), 116.3 (C-14), 114.9 (C-4′,5′), 112.3 (C-6), 112.1 (C-8′a,9′a), 110.9 (C-4), 70.2 (C-9′), 61.8 (C-16), 14.0 (C-17). 15N NMR (61 MHz, DMSO-d6): δ −283.5 (N-10′), −221.3 (N-10), −184.9 (N-1), −11.8 (NO2). HRMS: m/z [M + H]+ calcd. for C30H20N6O6S: 593.12378; found: 593.12410.
3.13. General Synthetic Procedure for Compounds 9a–e
To a suspension of 6a–e (50 mg, 0.11 mmol) in dry ethanol (0.6 mL), ethyl-bromopropionate (1.2 equiv) and triethylamine (1.2 equiv) were added. The reaction mixture was stirred at room temperature. After 1 h, another amount of triethylamine (1.2 equiv) was added. The reaction mixture was stirred for another 2–7 h. The progress of the reaction was monitored by TLC (nHex:EtOAc, v/v 1:3). The formed yellow precipitate was filtered off, washed with a small amount of absolute ethanol, and dried.
1′-{[(2Z)-5-Methyl-4-oxo-3-phenyl-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (9a). Yellow solid; yield: 77% (0.043 g), m. p.: 245–249 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.81 (s, 1H, H-10′), 8.74 (s, 1H, H-3), 7.30 (m, 3H, H-3″,4″,5″), 7.28 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-6′), 7.26 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-3′), 7.07. (m, 2H, H-2″,6″), 7.04 (dd, J = 8.0, 1.2 Hz, 1H, H-8′), 7.03 (dd, J = 8.4, 1.2 Hz, 2H, H-4′,5′), 7.02 (dd, J = 8.0, 1.2 Hz, 1H, H-1′), 6.84 (ddd, J = 8.0, 7.2, 1.2 Hz, 1H, H-7′), 6.81 (ddd, J = 8.0, 7.2, 1.2 Hz, 1H, H-2′), 4.31 (q, J = 7.2 Hz, 1H, H-12), 1.33 (d, J = 7.2 Hz, 3H, H-14). 13C NMR (151 MHz, DMSO-d6): δ 174.24 (C-11), 166.51 (C-9), 161.84 (C-3), 156.98 (C-5), 139.27 (C-10′a), 139.19 (C-4′a), 133.88 (C-1″), 129.79 (C-6′), 129.73 (C-3′), 128.49 (C-3″,5″), 128.32 (C-4″), 127.96 (C-8′), 127.54 (C-2″,6″), 127.49 (C-1′), 120.05 (C-7′), 119.99 (C-2′), 114.78 (C-5′), 114.62 (C-4′), 112.57 (C-9′a), 112.48 (C-8′a), 112.44 (C-6), 111.47 (C-4), 69.67 (C-9′), 42.00 (C-12), 18.77 (C-14). 15N NMR (61 MHz, DMSO-d6): δ −282.5 (N-10′), −218.3 (N-10), −185.1 (N-1). HRMS: m/z [M + H]+ calcd. for C27H19N5O2S: 478.13322; found: 478.13410.
1′-{[(2Z)-3-(4-Methoxyphenyl)-5-methyl-4-oxo-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (9b). Yellow solid; yield: 64% (0.036 g), m. p.: 219–224 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.78 (s, 1H, H-10′), 8.73 (s, 1H, H-3), 7.28 (ddd, J = 8.4, 7.1, 1.4 Hz, 1H, H-6′), 7.28 (ddd, J = 8.4, 7.1, 1.4 Hz, 1H, H-3′), 7.05 (dd, J = 8.2, 1.2 Hz, 1H, H-8′), 7.03 (dd, J = 8.4, 1.2 Hz, 1H, H-5′), 7.03 (dd, J = 8.4, 1.2 Hz, 1H, H-4′), 7.02 (dd, J = 8.4, 1.2 Hz, 1H, H-1′), 6.97 (d, J = 9.0 Hz, 2H, H-2″,6″), 6.84 (ddd, J = 8.4, 7.1, 1.3 Hz, 1H, H-7′), 6.83 (ddd, J = 8.4, 7.1, 1.3 Hz, 1H, H-2′), 6.83 (d, J = 9.0 Hz, 2H, H-3″,5″), 4.28 (q, J = 7.2 Hz, 1H, H-12), 3.73 (s, 3H, OCH3), 1.32 (d, J = 7.2 Hz, 3H, H-14). 13C NMR (151 MHz, DMSO-d6): δ 174.33 (C-11), 166.64 (C-9), 161.82 (C-3), 158.71 (C-4″), 156.93 (C-5), 139.27 (C-10′a), 139.19 (C-4′a), 129.79 (C-6′), 129.75 (C-3′), 128.67 (C-2″,6″), 127.96 (C-8′), 127.49 (C-1′), 126.48 (C-1″), 120.07 (C-7′), 120.00 (C-2′), 114.79 (C-5′), 114.63 (C-4′), 113.68 (C-3″,5″), 112.61 (C-9′a), 112.53 (C-8′a), 112.46 (C-6), 111.55 (C-4), 69.67 (C-9′), 55.33 (OCH3), 41.88 (C-12), 18.76 (C-14). 15N NMR (61 MHz, DMSO-d6): δ −283.3 (N-10′), −186.0 (N-1). HRMS: m/z [M + H]+ calcd. for C28H21N5O3S: 508.14379; found: 508.14420.
1′-{[(2Z)-3-(3-Methoxyphenyl)-5-methyl-4-oxo-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (9c). Yellow solid; yield: 64% (0.037 g), m. p.: 237–240 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.74 (s, 1H, H-10′), 8.70 (s, 1H, H-3), 7.27 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-6′), 7.25 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-3′), 7.20 (t, J = 8.1 Hz, 1H, H-5″), 7.04 (dd, J = 8.0, 1.2 Hz, 1H, H-8′), 7.03 (dd, J = 8.0, 1.2 Hz, 1H, H-1′), 7.01 (dd, J = 8.4, 1.2 Hz, 2H, H-4′,5′), 6.87 (ddd, J = 8.4, 2.5, 0.9 Hz, 1H, H-4″), 6.83 (ddd, J = 8.0, 7.2, 1.2 Hz, 1H, H-7′), 6.81 (ddd, J = 8.0, 7.2, 1.2 Hz, 1H, H-2′), 6.65 (t, J = 2.2 Hz, 1H, H-2″), 6.63 (ddd, J = 7.8, 1.9, 0.9 Hz, 1H, H-6″), 4.30 (q, J = 7.2 Hz, 1H, H-12), 3.67 (s, 3H, OCH3), 1.34 (d, J = 7.2 Hz, 3H, H-14). 13C NMR (151 MHz, DMSO-d6): δ 174.15 (C-11), 166.33 (C-9), 161.91 (C-3), 159.22 (C-3″), 157.12 (C-5), 139.23 (C-10′a), 139.20 (C-4′a), 134.89 (C-1″), 129.74 (C-6′), 129.69 (C-3′), 129.16 (C-5″), 127.95 (C-8′), 127.53 (C-1′), 120.00 (C-7′), 119.93 (C-2′), 119.79 (C-6″), 114.87 (C-5′), 114.71 (C-4′), 114.21 (C-4″), 113.29 (C-2″), 112.45 (C-6), 112.38 (C-9′a), 112.29 (C-8′a), 110.89 (C-4), 69.65 (C-9′), 55.28 (OCH3), 41.98 (C-12), 18.70 (C-14). 15N NMR (61 MHz, DMSO-d6): δ −283.3 (N-10′), −186.0 (N-1). HRMS: m/z [M + H]+ calcd. for C28H21N5O3S: 508.14379; found: 508.14450.
1′-{[(2Z)-3-(4-Fluorophenyl)-5-methyl-4-oxo-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (9d). Yellow solid; yield: 73% (0.041 g), m. p.: 235–239 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.77 (s, 1H, H-10′), 8.74 (s, 1H, H-3′), 7.28 (ddd, J = 8.4, 7.1, 1.4 Hz, 1H, H-6′), 7.28 (ddd, J = 8.4, 7.1, 1.4 Hz, 1H, H-3′), 7.13 (m, 4H, H-2″,3″,5″,6″), 7.03 (m, 4H, H-1′,4′,5′,8′), 6.84 (ddd, J = 8.1, 7.2, 1.3 Hz, 1H, H-7′), 6.82 (ddd, J = 8.1, 7.1, 1.3 Hz, 1H, H-2′), 4.30 (q, J = 7.2 Hz, 1H, H-12), 1.33 (d, J = 7.2 Hz, 2H, H-14). 13C NMR (151 MHz, DMSO-d6): δ 174.17 (C-11), 166.20 (C-9), 161.85 (C-3), 161.25 (d, J = 245.8 Hz, C-4″), 157.04 (C-5), 139.21 (C-10′a), 139.15 (C-4′a), 130.9 (d, J = 2.9 Hz, C-1″), 129.81 (C-6′), 129.80 (d, J = 9.0 Hz, C-2″,6″), 129.79 (C-3′), 127.91 (C-8′), 127.48 (C-1′), 120.10 (C-7′), 120.04 (C-2′), 115.40 (d, J = 22.8 Hz, C-3″,5″), 114.79 (C-5′), 114.64 (C-4′), 112.59 (C-9′a), 112.51 (C-8′a), 112.44 (C-6), 111.49 (C-4), 69.69 (C-9′), 42.12 (C-12), 18.68 (C-14). 15N NMR (61 MHz, DMSO-d6): δ −282.6 (N-10′), −220.1 (N-10), −185.5 (N-1). HRMS: m/z [M + H]+ calcd. for C27H18FN5O2S: 496.1238; found: 496.12470.
1′-{[(2Z)-5-Methyl-3-(4-nitrophenyl)-4-oxo-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (9e). Yellow solid; yield: 38% (0.021 g), m. p.: 170–173 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.79 (s, 1H, H-10′), 8.73 (s, 1H, H-3), 8.16 (d, J = 8.8 Hz, 2H, H-3″,5″), 7.38 (d, J = 8.8 Hz, 2H, H-2″,6″), 7.28 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-6′), 7.27 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-3′), 7.04 (m, 4H, H-1′,4′,5′,8′), 6.84 (ddd, J = 8.4, 7.1, 1.5 Hz, 1H, H-7′), 6.82 (ddd, J = 8.4, 7.1, 1.5 Hz, 1H, H-2′), 4.37 (q, J = 7.2 Hz, 1H, H-12), 1.37 (d, J = 7.2 Hz, 3H, H-14). 13C NMR (151 MHz, DMSO-d6): δ 173.77 (C-11), 165.06 (C-9), 161.93 (C-3), 157.18 (C-5), 146.57 (C-4″), 139.39 (C-1″), 139.13 (C-10′a), 139.11 (C-4′a), 129.86 (C-3′,6′), 129.00 (C-2″,6″), 127.87 (C-8′), 127.58 (C-1′), 123.68 (C-3″,5″), 120.21 (C-7′), 120.13 (C-2′), 114.85 (C-5′), 114.72 (C-4′), 112.53 (C-9′a), 112.46 (C-8′a), 112.42 (C-6), 111.32 (C-4), 69.77 (C-9′), 42.62 (C-12), 18.52 (C-14). 15N NMR (61 MHz, DMSO-d6): δ −283.3 (N-10′), −220.7 (N-10), −186.1 (N-1), −11.6 (NO2). HRMS: m/z [M + H]+ calcd. for C27H18N6O4S: 523.1183; found: 523.11880.
3.14. General Synthetic Procedure for Compounds 10a–e
To a suspension of 6a–e (50 mg, 0.11 mmol) in dry ethanol (0.6 mL), ethyl-2-bromovalerate (2.0 equiv) and triethylamine (2.0 equiv) were added. The reaction mixture was stirred at room temperature. After 1.5 h, a second amount of triethylamine (2.0 equiv) was added. The mixture was stirred at room temperature for 24–48 h. After the completion of the reaction, the yellow precipitate formed was filtered off, washed with a small amount of absolute ethanol, and dried.
5′-Oxo-1′-{[(2Z)-4-oxo-3-phenyl-5-propyl-1,3-thiazolidin-2-ylidene]amino}-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (10a). Yellow solid; yield: 69% (0.041 g), m. p.: 238–240 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.83 (s, 1H, H-10′), 8.75 (s, 1H, H-3), 7.31 (m, 3H, H-3″,4″,5″), 7.28 (ddd, J = 8.3, 7.1, 1.4 Hz, 1H, H-6′), 7.25 (ddd, J = 8.3, 7.1, 1.4 Hz, 1H, H-3′), 7.13 (dd, J = 8.0, 1.4 Hz, 1H, H-8′), 7.04 (m, 4H, H-4′,5′,2″,6″), 6.97 (dd, J = 8.0, 1.4 Hz, 1H, H-1′), 6.86 (ddd, J = 8.2, 7.2, 1.2 Hz, 1H, H-7′), 6.79 (ddd, J = 8.1, 7.1, 1.2 Hz, 1H, H-2′), 4.40 (dd, J = 7.2, 4.2 Hz, 1H, H-12), 1.72 (m, 1H, H-14), 1.56 (m, 1H, H-14), 1.08 (m, 1H, H-15), 0.94 (m, 1H, H-15), 0.79 (t, J = 7.3 Hz, 3H, H-16). 13C NMR (151 MHz, DMSO-d6): δ 173.57 (C-11), 167.00 (C-9), 161.78 (C-3), 156.76 (C-5), 139.44 (C-4′a), 139.14 (C-10′a), 133.78 (C-1″), 129.74 (C-6′), 129.66 (C-3′), 128.54 (C-3″,5″), 128.35 (C-4″), 128.25 (C-8′), 127.50 (C-2″,6″), 127.31 (C-1′), 120.05 (C-7′), 119.92 (C-2′), 114.77 (C-4′), 114.59 (C-5′), 112.59 (C-9′a), 112.46 (C-6), 112.44 (C-8′a), 111.75 (C-4), 69.64 (C-9′), 47.45 (C- 12), 34.04 (C-14), 17.76 (C-15), 13.34 (C-16). 15N NMR (61 MHz, DMSO-d6): δ −283.0 (N-10′), −185.2 (N-1). HRMS: m/z [M + H]+ calcd. for C29H23N5O2S: 506.16452; found: 506.16510.
1′-{[(2Z)-3-(4-Methoxyphenyl)-4-oxo-5-propyl-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (10b). Yellow solid; yield: 46% (0.027 g), m. p.: 247–250 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.80 (s, 1H, H-10′), 8.75 (s, 1H, H-3), 7.29 (ddd, J = 8.4, 7.2, 1.4 Hz, 1H, H-6′), 7.27 (ddd, J = 8.4, 7.2, 1.4 Hz, 1H, H-3′), 7.13 (dd, J = 8.0, 1.4 Hz, 1H, H-8′), 7.05 (dd, J = 8.0, 1.2 Hz, 1H, H-4′), 7.03 (dd, J = 8.0, 1.2 Hz, 1H, H-5′), 6.97 (dd, J = 8.0, 1.4 Hz, 1H, H-1′), 6.95 (d, J = 9.0 Hz, 2H, H-2″,6″), 6.86 (ddd, J = 8.0, 7.2, 1.2 Hz, 1H, H-7′), 6.84 (d, J = 9.0 Hz, H-3″,5″), 6.80 (ddd, J = 8.0, 7.2, 1.2 Hz, 1H, H-2′), 4.36 (dd, J = 7.2, 4.2 Hz, 1H, H-12), 3.73 (s, 3H, OCH3), 1.71 (m, 1H, H-14), 1.54 (m, 1H, H-14), 1.06 (m, 1H, H-15), 0.91 (m, 1H, H-15), 0.79 (t, J = 7.3 Hz, 3H, H-16). 13C NMR (151 MHz, DMSO-d6): δ 173.68 (C-11), 167.14 (C-9), 161.76 (C-3), 158.76 (C-4″), 156.72 (C-5), 139.45 (C-4′a), 139.15 (C-10′a), 129.75 (C-6′), 129.70 (C-3′), 128.65 (C-2″,6″), 128.25 (C-8′), 127.31 (C-1′), 126.39 (C-1″), 120.09 (C-2′), 119.95 (C-7′), 114.81 (C-4′), 114.61 (C-5′), 113.75 (C-3″,5″), 112.64 (C-9′a), 112.49 (C-6), 112.49 (C-8′a), 111.84 (C-4), 69.64 (C-9′), 55.35 (OCH3), 47.34 (C-12), 34.05 (C-14), 17.79 (C-15), 13.35 (C-16). 15N NMR (61 MHz, DMSO-d6): δ −283.0 (N-10′), −218.5 (N-10), −185.0 (N-1). HRMS: m/z [M + H]+ calcd. for C30H25N5O3S: 536.17509; found: 536.17560.
1′-{[(2Z)-3-(3-Methoxyphenyl)-4-oxo-5-propyl-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (10c). Yellow solid; yield: 71% (0.042 g), m. p.: 229–231 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.76 (s, 1H, H-10′), 8.72 (s, 1H, H-3), 7.28 (ddd, J = 8.4, 7.1, 1.4 Hz, 1H, H-6′), 7.24 (ddd, J = 8.4, 7.1, 1.4 Hz, 1H, H-3′), 7.21 (t, J = 8.1 Hz, 1H, H-5″), 7.12 (dd, J = 8.0, 1.4 Hz, 1H, H-8′), 7.02 (dd, J = 8.2, 1.2 Hz, 1H, H-4′), 7.01 (dd, J = 8.2, 1.2 Hz, 1H, H-5′), 6.98 (dd, J = 8.0, 1.4 Hz, 1H, H-1′), 6.88 (ddd, J = 8.1, 2.6, 1.0 Hz, 1H, H-4″), 6.85 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-7′), 6.80 (ddd, J = 8.2, 7.2, 1.2 Hz, 1H, H-2′), 6.62 (t, J = 2.0 Hz, 1H, H-2″), 6.60 (ddd, J = 7.8, 2.0, 1.0 Hz, 1H, H-6″), 4.38 (dd, J = 7.2, 4.2 Hz, 1H, H-12), 3.68 (s, 3H, OCH3), 1.72 (m, 1H, H-14), 1.57 (m, 1H, H-14), 1.08 (m, 1H, H-15), 0.95 (m, 1H, H-15), 0.80 (t, J = 7.3 Hz, 3H, H-16). 13C NMR (151 MHz, DMSO-d6): δ 173.52 (C-11), 166.93 (C-9), 161.87 (C-3), 159.28 (C-3″), 156.89 (C-5), 139.43 (C-4′a), 139.19 (C-10′a), 134.79 (C-1″), 129.73 (C-6′), 129.63 (C-3′), 129.26 (C-5″), 128.28 (C-8′), 127.35 (C-1′), 120.03 (C-7′), 119.88 (C-2′), 119.78 (C-6″), 114.90 (C-4′), 114.68 (C-5′), 114.14 (C-4″), 113.41 (C-2″), 112.49 (C-6), 112.44 (C-9′a), 112.28 (C-8′a), 111.31 (C-4), 69.62 (C-9′), 55.32 (OCH3), 47.44 (C-12), 34.08 (C-14), 17.86 (C-15), 13.37 (C-16). 15N NMR (61 MHz, DMSO-d6): δ −282.6 (N-10′), −184.8 (N-1). HRMS: m/z [M + H]+ calcd. for C30H25N5O3S: 536.17509; found: 536.17570.
1′-{[(2Z)-3-(4-Fluorophenyl)-4-oxo-5-propyl-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (10d). Yellow solid; yield: 46% (0.026 g), m. p.: 230–232 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.79 (s, 1H, H-10′), 8.75 (s, 1H, H-3), 7.29 (ddd, J = 8.4, 7.2, 1.8 Hz, 1H, H-6′), 7.27 (ddd, J = 8.4, 7.2, 1.8 Hz, 1H, H-3′), 7.14 (m, 3H, H-8′,3″,5″), 7.09 (m, 2H, H-2″,6″), 7.03 (t, J = 7.6 Hz, 2H, H-4′,5′), 6.98 (dd, J = 8.4, 1.8 Hz, 1H, H-1′), 6.86 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-7′), 6.80 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-2′), 4.39 (dd, J = 7.1, 4.2 Hz, 1H, H-12), 1.72 (m, 1H, H-14), 1.57 (m, 1H, H-14), 1.07 (m, 1H, H-15), 0.93 (m, 1H, H-15), 0.79 (t, J = 7.3 Hz, 3H, H-16). 13C NMR (151 MHz, DMSO-d6): δ 173.53 (C-11), 166.75 (C-9), 161.79 (C-3), 161.29 (d, J = 245.8 Hz, C-4″), 156.80 (C-5), 139.40 (C-4′a), 139.10 (C-10′a), 129.98 (d, J = 2.8 Hz, C-1″), 129.79 (C-6′), 129.75 (d, J = 6.8 Hz, C-2″,6″), 129.74 (C-3′), 128.21 (C-8′), 127.31 (C-1′), 120.10 (C-7′), 120.00 (C-2′), 115.48 (d, J = 23.0 Hz, C-3″,5″), 114.79 (C-4′), 114.61 (C-5′), 112.63 (C-9′a), 112.50 (C-8′a), 112.46 (C-6), 111.82 (C-4), 69.65 (C-9′), 47.56 (C-12), 33.97 (C-14), 17.79 (C-15), 13.36 (C-16). 15N NMR (61 MHz, DMSO-d6): δ −283.0 (N-10′), −219.2 (N-10), −185.5 (N-1). HRMS: m/z [M + H]+ calcd. for C29H22FN5O2S: 524.1551; found: 524.15610.
1′-{[(2Z)-3-(4-Nitrophenyl)-4-oxo-5-propyl-1,3-thiazolidin-2-ylidene]amino}-5′-oxo-1′,5′-dihydro-10H-spiro[acridine-9,2′-pyrrole]-4′-carbonitrile (10e). Yellow solid; yield: 60% (0.035 g), m. p.: 249–251 °C (d). 1H NMR (600 MHz, DMSO-d6): δ 9.82 (s, 1H, H-10′), 8.76 (s, 1H, H-3), 8.17 (d, J = 8.5 Hz, 2H, H-3″,5″), 7.35 (d, J = 8.5 Hz, 2H, H-2″,6″), 7.30 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-6′), 7.27 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-3′), 7.13 (d, J = 8.4 Hz, 1H, H-8′), 7.06 (d, J = 8.1 Hz, 1H, H-4′), 7.03 (d, J = 8.1 Hz, 1H, H-5′), 6.99 (d, J = 8.4 Hz, 1H, H-1′), 6.87 (ddd, J = 8.4, 7.2, 1.2 Hz, 1H, H-7′), 6.81 (ddd, J = 8.4, 7.2, 1.3 Hz, 1H, H-2′), 4.45 (dd, J = 7.2, 4.2 Hz, 1H, H-12), 1.75 (m, 1H, H-14), 1.62 (m, 1H, H-14), 1.10 (m, 1H, H-15), 0.95 (m, 1H, H-15), 0.79 (t, J = 7.3 Hz, 3H, H-16). 13C NMR (151 MHz, DMSO-d6): δ 173.12 (C-11), 165.82 (C-9), 161.80 (C-3), 156.85 (C-5), 146.64 (C-4″), 139.29 (C-4′a), 139.20 (C-10′a), 139.03 (C-1″), 129.82 (C-3′,6′), 128.94 (C-2″,6″), 128.16 (C-8′), 127.39 (C-1′), 123.75 (C-3″,5″), 120.22 (C-2′), 120.08 (C-7′), 114.80 (C-4′), 114.67 (C-5′), 112.57 (C-9′a), 112.44 (C-8′a), 112.41 (C-6), 111.70 (C-4), 69.70 (C-9′), 47.99 (C-12), 33.89 (C-14), 17.85 (C-15), 13.36 (C-16). 15N NMR (61 MHz, DMSO-d6): δ −283.2 (N-10′), −219.3 (N-10), −185.7 (N-1), −11.7 (NO2). HRMS: m/z [M + H]+ calcd. for C29H22N6O4S: 551.1496; found: 551.115050.