Synthesis of (R)-Dihydropyridones as Key Intermediates for an Efficient Access to Piperidine Alkaloids
Abstract
Introduction

Results and Discussion

–25.5) constitutes additional proof of the assigned configuration, since its enantiomer displays the opposite sign (
+27.9) [20b].


Conclusions
Experimental
General
+28.7, c 2.03, MeOH) was prepared according to a literature procedure [22]. All reactions were monitored by thin-layer chromatography using TLC sheets coated with silica gel 60 F254 (Merck); spots were visualized with UV light or/and an alcohol solution of anisaldehyde. Products were purified by flash chromatography on Merck silica gel 60 (230-400 mesh ASTM). Melting points (uncorrected): Büchi melting point apparatus. FT-IR: Nicolet Magna 750, series II. Samples were recorded as KBr pellets, unless otherwise stated. Optical rotations were measured with a Perkin-Elmer-241 polarimeter. 1H-NMR spectra were recorded on a Bruker DRX-400 (400 MHz) spectrometer, in CDCl3. Chemical shifts are referenced to internal TMS. Coupling constants (J) are expressed in Hz. HPLC: Hewlett Packard 1100 series instrument with a variable wavelength UV detector and coupled to HP Chem-Station utilizing the manufacturer’s 5.01 software package.
−5.7 (c 1.00, EtOAc); 1H-NMR δ: 1.42 (s, 9H, C-CH3), 4.53 (dd, J = 10.7, 4.8, 1H, CH2), 4.65 (dd, J = 10.7, 4.8, 1H, CH2), 6.78 (dd, J = 7.2, 4.9, 1H, CH), 6.88 (d, J = 6.8, 1H, H-3), 7.70-8.10 (m, 15H, Ph-H, H-4, H-5), 8.50 (d, J = 6.8, 2H, Ph-H); Anal. Calcd. for C29H30O4Si (470.63) C, 74.01; H, 6.43. Found: C, 74.19; H, 6.30.
–4.2 (c 1.03, EtOAc); IR (neat): ṽ= 3350 (OH), 740, 1020 (furan) cm-1; 1H-NMR δ: 1.07 (s, 9H, C-CH3), 3.95 (d, J = 1.4, 2H, CH2), 4.83 (m, 1H, CH), 6.27 (d, J = 3.2, 1H, H-3), 6.3 (dd, J = 5.0, 1.8, 1H, H-4), 7.3-7.6 (m, 11H, Ph-H, H-5); Anal. Calcd. for C22H26O3Si (366.53): C, 72.09; H, 7.15. Found: C, 72.31; H, 7.02.
+50.8 (c 1.01, EtOAc); IR (neat): ṽ= 2110 (N3), 742, 1020 (furan) cm-1; 1H-NMR δ: 1.10 (s, 9H, C-CH3), 4.01 (d, J = 6.7, 2H, CH2), 4.60 (t, J = 5.5, 1H, CH), 6.37 (d, J = 1.8, 2H, H-3, H-4), 7.45 (m, 7H, H-5, Ph-H), 7.70 (m, 4H, Ph-H); Anal. Calcd. for C22H25N3O2Si (391.54): C, 67.49; H, 6.44; N, 10.73. Found: C, 67.27; H, 6.52; N, 10.59.
+5.5 (c 1.01, EtOAc); IR (neat): ṽ= 3285 (N-H), 740, 1030 (furan), cm-1; 1H-NMR δ: 0.99 (s, 9H, C-CH3), 2.41 (s, 3H, PhCH3), 3.72 (dd, J = 10.1, 4.9, 1H, CH2), 3.85 (dd, J = 10.1, 4.9, 1H, CH2), 4.43 (m, 1H, CH), 5.2 (d, J = 7.6, 1H, NH), 6.13 (d, J = 3.11, 1H, H-3), 6.24 (dd, J = 3.1, 1.9, 1H, H-4), 7.20-7.52 (m, 13H, Ph-H, H-5), 7.22 (d, J = 8.3, 1H), 7.66 (d, J = 8.0, 2H, Ph-H); Anal. Calcd. for C29H33NO4SSi (519.73): C, 67.02; H, 6.40; N, 2.70. Found: C, 66.78; H, 6.30; N, 2.81.
–25.5 (c 1.00, MeOH); IR (neat): ṽ= 3397 (OH), 1692 (C=O), 1595 (C=C) cm-1; 1H-NMR δ: 0.95 (s, 9H, C-CH3), 2.45 (s, 3H, PhCH3), 3.60 (dd, J = 10.7, 2.4, 1H, CH2), 3.90 (dd, J =10.7, 2.4, 1H, CH2 ), 4.55 (m, 1H, H-2), 4.96 (d, J = 11.5, 1H, OH), 6.10 (m, 1H, H-6), 6.22 (d, J = 10.4, 1H, H-4), 7.08 (dd, J = 10.4, 4.8, 1H, H-5), 7.3-7.5 (m, 12H, Ph-H), 7.79 (d, J = 8.0, 2H, Ph-H); Anal. Calcd. for C29H33NO5SSi (535.73): C, 65.02; H, 6.21; N, 2.61. Found: C, 65.17; H, 6.28; N, 2.68.
−45 (c 1.02, EtOAc); IR (neat): ṽ= 1694 (C=O), 1596 (C=C) cm-1; 1H-NMR δ: 1.07 (s, 9H, C-CH3), 2.39 (s, 3H, PhCH3), 3.54 (s, 3H, CH3), 3.97 (dd, J = 10.2, 6.6, 1H, CH2), 4.07 (dd, J = 10.2, 6.6, 1H, CH2), 4.47 (t, J = 6.9, 1H, H-2), 5.51 (d, J = 4.3, 1H, H-6), 5.74 (d, J = 10.36, 1H, H-4), 6.68 (dd, J = 10.3, 4.4, 1H, H-5), 7.24 (d, J = 7.4, 2H, Ph-H), 7.44 (m, 6H, Ph-H), 7.55 (d, J = 8.2, 2H, Ph-H), 7.67 d, J = 7.4, 4H, Ph-H); Anal. Calcd. for C30H35NO5SSi (549.75): C, 65.54; H, 6.42; N, 2.55. Found: C, 65.69; H, 6.52; N, 2.44.
−32.5 (c 0.98, EtOAc); IR (neat): ṽ= 3460 (OH), 1650 (C=C) cm-1; 1H-NMR δ: 1.05 (s, 9H, C-CH3), 2.42 (s, 3H, PhCH3), 3.31 (s, 3H, CH3), 3.77 (dd, J = 10.6, 4.2, 1H, CH2), 3.95 (m, 1H, H-3), 4.17 (d, J = 6.85, 1H, OH), 4.2 (m, 1H, H-2), 4.4 (t, J = 10.3, 1H, CH2), 5.24 (m, 1H, H-6), 5.69 (m, 1H, H-5), 5.84 (m, 1H, H-4), 7.25 (t, J = 9.01, 2H, Ph-H), 7.4-7.5 (m, 6H, Ph-H), 7.6-7.7 (m, 6H, Ph-H); Anal. Calcd. for C30H37NO5SSi (551.8): C, 65.30; H, 6.76; N, 2.54. Found: C, 65.55; H, 6.90; N, 2.63.
−15.5 (c 1.02, EtOAc); IR (neat): ṽ= 3500 (OH) cm-1; 1H-NMR δ: 1.07 (s, 9H, C-CH3), 1.65 (m, 2H, H-4), 1.9 (m, 2H, H-5), 2.4 (s, 3H, PhCH3), 3.1 (s, 3H, CH3), 3.44 (m, 1H, H-3), 3.66 (m, 1H, CH2), 3.88 (dd, J = 10.2, 4.1, 1H, H-2), 4.35 (d, J = 6.26, 1H, OH), 4.5 (t, J = 10.4, 1H, CH2), 5.01 (m, 1H, H-6), 7.27 (t, J = 8.15, 2H, Ph-H), 7.3-7.5 (m, 6H, Ph-H), 7.6-7.7 (m, 6H, Ph-H); Anal. Calcd. for C30H39NO5SSi (553.8): C, 65.07; H, 7.10; N, 2.53. Found: C, 65.31; H, 7.23; N, 2.42.
−10.7 (c 1.00, EtOAc); IR (neat): ṽ= 1725 (C=O), 1692 (N-C=O) cm-1; 1H-NMR δ: 0.92 (s, 9H, C-CH3), 2.44 (s, 3H, PhCH3), 4.11 (dd, J = 10.6, 1.6, 1H, CH2), 4.42 (dd, J =10.6, 1.6, 1H, CH2), 5.02 (s, 1H, H-6), 6.72 (d, J = 10.1, 1H, H-3), 6.8 (d, J = 10.1, 1H, H-4), 7.27 (d, J = 8.1, 2H, Ph-H), 7.3-7.55 (m, 10H, Ph-H), 7.94 (d, J = 8.3, 2H, Ph-H); Anal. Calcd. for C29H31NO5SSi (533.7): C, 65.26; H, 5.85; N, 2.62. Found. C, 65.01; H, 5.98; N, 2.49.
−2.7 (c 1.02, EtOAc); IR (neat): ṽ= 1450 (C=O), 1670 (N-C=O) cm-1; 1H-NMR δ: 0.92 (s, 9H, C-CH3), 2.44 (s, 3H, PhCH3), 3.82 (dd, J = 10.6, 4.2, 1H, CH2), 4.02 (dd, J = 10.6, 4.2, 1H, CH2), 4.17 (d, J = 6.85, 1H, OH), 5.04 (m, 1H, H-5), 5.04 (m, 1H, H-5), 5.07 (m, 1H, H-6), 5.60 (dd, J = 10.0, 4.2, 1H, H-4), 7.01 (dt, J = 10.2, 1.7, 1H, H-3), 7.2 (d, J = 7.2, 2H, Ph-H), 7.40-7.52 (m, 6H, Ph-H), 7.60 (dd, J = 7.5, 1.5, 2H, Ph-H), 7.7 (d, J = 8.4, 4H, Ph-H); Anal. Calcd. for C29H31NO5SSi (533.7): C, 65.26; H, 5.85; N, 2.62. Found: C, 65.09; H, 5.71; N, 2.72.References
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Tzanetou, E.N.; Kasiotis, K.M.; Magiatis, P.; Haroutounian, S.A. Synthesis of (R)-Dihydropyridones as Key Intermediates for an Efficient Access to Piperidine Alkaloids. Molecules 2007, 12, 735-744. https://doi.org/10.3390/12040735
Tzanetou EN, Kasiotis KM, Magiatis P, Haroutounian SA. Synthesis of (R)-Dihydropyridones as Key Intermediates for an Efficient Access to Piperidine Alkaloids. Molecules. 2007; 12(4):735-744. https://doi.org/10.3390/12040735
Chicago/Turabian StyleTzanetou, Evangelia N, Konstantinos M Kasiotis, Prokopios Magiatis, and Serkos A Haroutounian. 2007. "Synthesis of (R)-Dihydropyridones as Key Intermediates for an Efficient Access to Piperidine Alkaloids" Molecules 12, no. 4: 735-744. https://doi.org/10.3390/12040735
APA StyleTzanetou, E. N., Kasiotis, K. M., Magiatis, P., & Haroutounian, S. A. (2007). Synthesis of (R)-Dihydropyridones as Key Intermediates for an Efficient Access to Piperidine Alkaloids. Molecules, 12(4), 735-744. https://doi.org/10.3390/12040735