| Literature DB >> 32316479 |
Anita Umerska1, Klaudia Bialek1, Julija Zotova1, Marcin Skotnicki1,2, Lidia Tajber1.
Abstract
Ionic liquids (ILs) and deep eutectic mixtures (DEMs) are potential solutions to theEntities:
Keywords: anticrystal engineering; benzocaine; deep eutectic mixtures; ionic liquids; ketoprofen; local anesthetics; mechanochemistry; non-steroidal anti-inflammatory drugs (NSAIDs); procaine; tetracaine
Year: 2020 PMID: 32316479 PMCID: PMC7237996 DOI: 10.3390/pharmaceutics12040368
Source DB: PubMed Journal: Pharmaceutics ISSN: 1999-4923 Impact factor: 6.321
Physicochemical properties of the investigated molecules (obtained from [32]).
| Molecule | Ketoprofen | Tetracaine | Procaine | Benzocaine |
|---|---|---|---|---|
| Molecular weight | 254.28 g/mol | 264.37 g/mol | 236.32 g/mol | 165.19 g/mol |
| Melting point 1 | 94.7 ± 0.4 °C | 42.2 ± 0.0 °C | 60.5 ± 0.1 °C | 90.0 ± 0.1 °C |
| Δ | 106.0 ± 1.3 J/g | 144.2 ± 0.2 J/g | 106.0 ± 0.5 J/g | 129.3 ± 0.7 J/g |
| pKa 2 | 3.88 | 8.42 | 8.96 | 2.78 |
| Physiological charge | −1 | +1 | +1 | 0 |
| Hydrogen donor counts | 1 | 1 | 1 | 1 |
| Hydrogen acceptor counts | 3 | 3 | 3 | 2 |
1 Obtained experimentally in this work. 2 Strongest acidic for KET, protonated amine for LAs.
Figure 1Chemical structures of the investigated molecules: (a) ketoprofen (KET), (b) procaine (PRO), (c) tetracaine (TET) and (d) benzocaine (BEN).
Figure 2Thermal analysis of KET-PRO systems: (a) DSC thermograms from first heating; the broken line indicates the position of the eutectic peak while the arrows show the position of the melting peaks, (b) phase diagram based on thermal analysis of first DSC heating; the broken lines show the theoretical liquidus curves calculated using Equation (1), (c) DSC thermograms from second heating (the samples were first heated to 110 °C at 10 °C/min, quench cooled at a nominal cooling rate of 300 °C/min and reheated at 10 °C/min) (d) phase diagram based on thermal analysis of second DSC heating; the broken line shows the theoretical Tg values calculated using Equation (2). For plots (a) and (c) the subscript indicates the content of the named component in mole%.
Figure 3PXRD of: (a) KET, PRO and equimolar KET-PRO mixtures; (b) KET, TET and KET-TET mixtures; (c) KET, BEN and KET-BEN mixtures. QC-quench cooled, PM-physical mixture, raw-as supplied, TET I-TET polymorphic form I, TET II-TET polymorphic form II. The subscript indicates the KET content in mole%.
Figure 4HSDSC thermograms of equimolar KET-LA powder mixtures heated at different rates: (a) KET-PRO and (b) KET-TET.
Figure 5Infrared spectra of: (a) quench-cooled KET, PRO and KET-PRO mixtures; (b) quench-cooled KET, TET I, TET II and KET-PRO mixtures and (c) quench-cooled KET, BEN and KET-BEN mixtures. ν—stretching, ν—asymmetric stretching, ν—symmetric stretching and Δ—bending vibrations. The subscript indicates the content of the named component in mole%.
Figure 6Thermal analysis of KET-TET systems: (a) DSC thermograms from first heating; the broken line indicates the position of the eutectic peak while the arrows show the position of the melting peaks, (b) phase diagram based on thermal analysis of first DSC heating; the broken lines show the theoretical liquidus curves calculated using Equation (1), (c) DSC thermograms from second heating (the samples were first heated 110 °C at 10 °C/min, quench cooled at a nominal cooling rate of 300 °C/min and reheated at 10 °C/min) (d) phase diagram based on thermal analysis of second DSC heating; the broken line shows the theoretical Tg values calculated using Equation (2). For plots (a) and (c) the subscript indicates the content of the named component in mole%.
Figure 7Thermal analysis of KET-BEN systems: (a) DSC thermograms from first heating; the broken line indicates the position of the eutectic peak while the arrows show the position of the melting peaks, (b) phase diagram based on thermal analysis of first DSC heating; the broken lines show the theoretical liquidus curves calculated using Equation (1). The Tammann plot is shown in the inset; the broken lines present the best linear fits to the experimental data, (c) DSC thermograms from second heating (the samples were first heated 110 °C at 10 °C/min, quench cooled at a nominal cooling rate of 300 °C/min and reheated at 10 °C/min) (d) phase diagram based on thermal analysis of second DSC heating; the broken line shows the theoretical Tg values calculated using Equation (2). For plots (a) and (c) the subscript indicates the content of the named component in mole%.
Dipole moments and global reactivity parameters of KET, PRO, TET and BEN. ΔE—HOMO/LUMO energy gap, I—electron affinity, A—ionization potential, χ—electronegativity, η—hardness and ω—electrophilicity index.
| Dipole moment | HOMO (eV) | LUMO (eV) | ΔE (eV) |
|
|
|
|
| |
|---|---|---|---|---|---|---|---|---|---|
| KET | 2.4855 | −7.048 | −2.150 | 4.898 | 7.048 | 2.150 | 4.599 | 2.449 | 4.318 |
| PRO | 3.2811 | −5.905 | −1.143 | 4.762 | 5.905 | 1.143 | 3.524 | 2.381 | 2.608 |
| TET | 4.5044 | −5.769 | −1.034 | 4.735 | 5.769 | 1.034 | 3.4015 | 2.3675 | 2.444 |
| BEN | 3.4108 | −6.068 | −1.143 | 4.925 | 6.068 | 1.143 | 3.6055 | 2.4625 | 2.640 |
Figure 8Electrostatic potential of: (a) KET, (b) PRO, (c) TET and (d) BEN mapped on the 0.001 au contours of the electron density of the molecules optimized by DFT. The negative regions are indicated in blue, while the positive regions are shown in red. Surface local minima and maxima (only values > 15 kcal/mol) are represented as orange and cyan points, respectively. The global maximum and minimum for every molecule are shown in boxes in large font. The unit is kcal/mol.