| Literature DB >> 26389866 |
Gemma Aragay1, Daniel Hernández2, Begoña Verdejo3, Eduardo C Escudero-Adán4, Marta Martínez5, Pablo Ballester6,7.
Abstract
We describe the use of two series of aryl-extended calix[4]pyrrole receptors bearing two and four electronically tunable phenyl groups, respectively, in their meso-positions as model systems for the quantification of CH-π interactions in solution. The "four-wall" and the "two-wall" receptors formed thermodynamically stable 1:1 complexes in acetonitrile solution with both trimethylamine N-oxide and trimethylphosphine P-oxide as guests. The complexes were mainly stabilized by the formation of four convergent hydrogen bonds between the oxygen atom of the guests and the pyrrole NHs of the host. In general, the N-oxide produced thermodynamically more stable hydrogen bonding interactions than the P-oxide. Upon guest binding, the receptors adopted the cone conformation and the methyl groups of the included guests engaged in CH-π interactions with the aromatic walls. We show that the modification of the electronic properties of the aromatic surfaces, in any of the receptor series, did not have a significant impact in the measured binding affinities for a given guest. However, the larger binding affinities determined for the "four-wall" receptors in comparison to the "two-wall" counterparts supported the importance of CH-π interactions on guest complexation. The strength of the CH-π interactions present in the inclusion complexes was quantified employing the octamethyl calix[4]pyrrole as reference. We determined an average magnitude of ~1 kcal·mol(-1) for each CH-π interaction. The CH-π interactions featured a reduced electrostatic nature and thus dispersion forces were assigned as main contributors of their strength.Entities:
Keywords: CH-π interactions; calix[4]pyrrole; dispersion forces; electrostatic forces; trimethylamine oxide; trimethylphosphine oxide
Mesh:
Substances:
Year: 2015 PMID: 26389866 PMCID: PMC6332063 DOI: 10.3390/molecules200916672
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Molecular structures of the calix[4]pyrrole receptors (1a–1f) and guests (2a and 2b) used in this work.
Figure 2Top and side views of the representation of the electrostatic potential on the van der Waals surface for trimethylamine oxide 2a (a) and trimethylphosphine oxide 2b (b). The surface was calculated by using B3LYP/6-31G* in vacuum [24]. The location and the value for the minimum ESP are specified in each case.
Figure 3Energy minimized structures for the inclusion complexes of a “two-wall” aryl-extended calix[4]pyrrole with trimethylamine N-oxide 2a (a) and with trimethylphosphine P-oxide 2b (b) obtained at the BP86/def2-SVP level of theory using TURBOMOLE version 7.0 software [26]; (c) Schematic representation of the CH-π interactions occurring in the complexes highlighting three geometric parameters (d, Φ, Θ) typically used to characterize them in previously reported computational studies [2].
Figure 4Selected regions of the 1H-NMR (Proton Nuclear Magnetic Resonance) spectra of a 1.6 mM CD3CN solution of calix[4]pyrrole 1c with 0 eq (a); 2 eq (b); and 8 eq (c) of 2a added.
Electrostatic Surface Potential (ESP) values (kcal·mol−1), association constant values (Ka, M−1), free energies of complexation (ΔG, kcal·mol−1) measured in CH3CN at 298 K for the 1:1 complexes of guests 2a and 2b with calix[4]pyrroles 1a–f and free energy values calculated for CH-π interactions (ΔΔG, kcal·mol−1 = ΔG(2a–b@1b–d) − ΔG(2a–b@1a).
| ESP a | 2a | 2b | |||||
|---|---|---|---|---|---|---|---|
| Ka | −Δ | −ΔΔ | Ka | −Δ | −ΔΔ | ||
| - | 7.22 ± 1.4 × 101 b | 2.53 | - | 8.91 ± 1.8 | 1.30 | - | |
| −20.7 | 5.15 ± 1.3 × 103 b | 5.06 | 2.51 ± 0.19 | 8.21 ± 0.9 × 101 b | 2.61 | 1.32 ± 0.13 | |
| −12.9 | 3.87 ± 0.4 × 103 b | 4.89 | 2.36 ± 0.12 | 7.00 ± 0.8 × 101 b | 2.52 | 1.22 ± 0.14 | |
| −2.0 | 4.72 ± 0.9 × 103 b | 5.01 | 2.52 ± 0.16 | 7.98 ± 1.6 × 101 b | 2.59 | 1.30 ± 0.17 | |
| −20.7 | 1.41 ± 0.1 × 105 c | 7.02 | 4.49 ± 0.12 | 9.60 ± 0.9 × 101 b | 2.70 | 1.41 ± 0.13 | |
| −2.0 | 1.06 ± 0.1 × 105 c | 6.85 | 4.32 ± 0.12 | 2.57 ± 0.3 × 102 b | 3.29 | 2.00 ± 0.14 | |
a: Value of the electrostatic surface potential at the center of the aromatic ring calculated in vacuum;
b: Determined by 1H-NMR spectroscopic titration; c: Determined by ITC.
Figure 5Plot of the experimental free energy values calculated for the CH-π interactions of guests 2a (black) and 2b (green) vs. the ESP values calculated in vacuum at the centroid of the aromatic rings using a model system based on “two-wall” calix[4]pyrrole receptors.
Figure 6Selected regions of the 1H-NMR spectra of a CD3CN solution of calix[4]pyrrole 1e with 0 eq (a); 0.4 eq (b); and 1 eq (c) of 2a added.
Figure 7Side (a,c) and top (b,d) views of the X-ray structure of 2a@1e and 2b@1f complexes, respectively. Distances and angles related to the CH-π interactions are detailed.