| Literature DB >> 30223585 |
Diego Antonio Ocampo Gutiérrez de Velasco1, Aoze Su2, Luhan Zhai3, Satowa Kinoshita4,5, Yuko Otani6, Tomohiko Ohwada7.
Abstract
Non-planar class="Chemical">amides are usually transitional structures, that are involved inEntities:
Keywords: base-catalyed hydrolysis; entropy; non planar amide; water solvation
Mesh:
Substances:
Year: 2018 PMID: 30223585 PMCID: PMC6225387 DOI: 10.3390/molecules23092363
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Amide transformation processes causing non-planarity: (1) N-C bond twisting (rotation) and (2) nitrogen pyramidalization. These transformations are interconnected.
Figure 1Some examples of non-planar amides.
Figure 2Distortion angles (τ) of ground-state-stable benzoyl amides. a B3LYP/6-31 + G(d) level of theory (Reference [14]). b X-ray data (Reference [15]). Calculated dihedral angle τ. τ = (ω1 + ω2)/2 (ω1 = ∠R-N-C-O and ω2 = ∠R-N-C-R’) [14].
Figure 3Model molecules used by Brown in his comparative kinetics study.
Figure 4(a) Schematic representation of 7-azabicyclo[2.2.1]heptane amide cis-(S)-8mer. (b) Schematic representation of the trans-(R)-8mer.
Figure 5Acidic deprotection procedure in the synthesis of the homooligomers.
Figure 6Model molecules used in this study. N-Benzoylazetidines (2a–e) and N-benzoylpyrrolidines (3a–e) were examined as monocyclic amides. N-Benzoyl-7-azabicyclo[2.2.1]heptanes (4a–e) and N-benzoyl-1-(methoxymethyl)-7-azabicyclo- [2.2.1]heptanes (5a–c) were examined as bicyclic amides.
Scheme 2Synthesis of monocyclic amides 2 and 3.
Scheme 3Synthesis of bridgehead-unsubstituted bicyclic amides 4.
Scheme 4Synthesis of bridgehead-substituted bicyclic amides 5.
Figure 71H-NMR monitoring of the hydrolysis of 3a, with NaOH in D2O and 1,4-dioxane-d8 at 70 °C. The intensity of amide peaks decreased (red box) over time, and product signals appeared (blue box).
Effect of variations of co-solvent proportions on the hydrolysis rate of 3c.
| 1,4-Dioxane- | 3c | NaOD | Temperature | |
|---|---|---|---|---|
| 25/75 | 0.05 mmol | 0.5 mmol | 70 °C | 3.0 × 10−4 |
| 50/50 | 0.05 mmol | 0.5 mmol | 70 °C | 9.6 × 10−5 |
| 75/25 | 0.05 mmol | 0.5 mmol | 70 °C | 2.3 × 10−6 |
Figure 8Effect of polarity of the solvent system on the rate of alkaline hydrolysis. Higher polarity of the solvent system accelerates the reaction. The rate of hydrolysis in methanol as a solvent was arbitrarily set at unity (1.0).
Final conditions for alkaline hydrolysis of amide compounds.
| Starting Amide | NaOD 40% wt. | D2O | Co-solvent | Temperature |
|---|---|---|---|---|
| 0.05 mmol | 0.5 mmol | 250 µL | 250 µL | 70 °C |
Base-catalyzed hydrolysis rates (−kobs in M−1s−1) of amides 2x–5x (x = a–e) in two solvent systems.a Average values are shown where possible (see footnotes). Relative reaction rates (referenced to 4) are shown in parentheses.
| 1,4-Dioxane-D2O (1:1), NaOD, 70 °C a | Methanol-D2O (1:1), NaOD, 70 °C b | |||||||
|---|---|---|---|---|---|---|---|---|
| x= | 2x | 3x | 4x | 5x | 2x | 3x | 4x | 5x |
|
| 2.1 × 10−5 (5.8) | 7.8 × 10−6 (2.2) | 3.6 × 10−6 (1) | 6.5 × 10−7 (0.2) | 1.1 × 10−4 | 2.9 × 10−5 | ND | ND |
|
| 2.3 × 10−4 (82.1) | 1.8 × 10−5 (6.4) | 2.8 × 10−6 (1) | 1.2 × 10−6 (0.4) | 9.7 × 10−4 (88.2) | 7.0 × 10−5 (6.4) | 1.1 × 10−5(1) | 3.0 × 10−6 (0.3) |
|
| 9.9 × 10−4 (33.0) | 1.0 × 10−4 (3.3) | 3.0 × 10−5 (1) | 3.7 × 10−5 (1.2) | 6.5 × 10−3 (92.9) | 4.2 × 10−4 (6.0) | 7.0 × 10−5(1) | 4.3 × 10−5 (0.6) |
|
| ND | 4.1 × 10−6 | NA | NE | ND | 1.7 × 10−5 (4.2) | 4.1 × 10−6(1) | NE |
|
| ND | 4.8 × 10−6 | NE | NE | ND | 1.9 × 10−5 | NE | NE |
a Error estimation: ±13.8% (in the 1,4-dioxane system). (b) Error estimation: ±17.4% (in the methanol system). ND = not determined; NA = not available (due to the solubility problem); NE = not executable (due to very slow reaction).
Figure 9Base-catalyzed hydrolysis rates of 2c, 3c, 4c and 5c in two solvent systems (1,4-dioxane and methanol). Values of −kobs (s−1) are shown. Relative reaction rates are shown in parentheses (referenced to 4c).
Figure 10Progress of the hydrolysis of 5b in methanol-d4/D2O (1:1) at 70 °C, followed by 1H-NMR; the intensity of amide peaks decreased, and new product signals appeared as the reaction progressed (red box).
Scheme 5General reaction path for the base-catalyzed hydrolysis of amides.
Figure 11Two hydrogen network patterns involving five H2O molecules in the attack of OH anion on the amide carbonyl carbon atom [32].
Figure 12M06-2X/6-31+G(d)-optimized transition structures of hydroxide anion addition to the amide. Distance between the amide carbonyl carbon atom and hydroxide oxygen atom was shown.
Scheme 6Model of base-catalyzed hydrolysis reaction of amide.
Calculated free energy barrier for the formation of the transition state at 25 °C (298.15 K) at the M06-2X/6-31+G(d) and M06-2X/6-311++G(d, p) levels, considering five water molecules. Solvent effect is SMD (solvent = water) a.
| Compound | − | |||
|---|---|---|---|---|
| M06-2X/6-31+G(d) SMD=water b | ||||
|
| 2.51 | +17.38 | −58.29 | 19.89 |
|
| 5.03 | +17.03 | −57.12 | 22.06 |
|
| 6.80 | +16.57 | −55.58 | 23.37 |
|
| 4.66 | +17.95 | −60.20 | 22.61 |
| M06-2X/6-311++G(d,p) SMD=water c | ||||
|
| 4.26 | +16.16 | −54.20 | 20.42 |
|
| 7.13 | +16.03 | −53.76 | 23.16 |
|
| 8.80 | +15.76 | −52.86 | 24.56 |
|
| 7.50 | +15.44 | −51.79 | 22.94 |
a Calculation and experimental Gibbs free energy of hydroxide anion-catalyzed hydrolysis of formamide was 21–22 kcal/mol [32]. b Full optimizations. c Single-point calculations.
Figure 13Superimposed TS structures of 4a and 5a (left) and 2a and 4a (right), showing the disrupted water network in bulky 5a (left, magenta) and 4a (right, blue).