| Literature DB >> 26916830 |
Shan-Shan Xue1, Meng Zhao1, Zhuo-Feng Ke1, Bei-Chen Cheng1, Hua Su1, Qian Cao1, Zhen-Kun Cao1, Jun Wang1, Liang-Nian Ji1, Zong-Wan Mao1.
Abstract
It is challenging to create artificial catalysts that approach enzymes with regard to catalytic efficiency and selectivity. The enantioselective catalysis ranks the privileged characteristic of enzymatic transformations. Here, we report two pyridine-linked bis(β-cyclodextrin) (bisCD) copper(II) complexes that enantioselectively hydrolyse chiral esters. Hydrolytic kinetic resolution of three pairs of amino acid ester enantiomers (S1-S3) at neutral pH indicated that the "back-to-back" bisCD complex CuL(1) favoured higher catalytic efficiency and more pronounced enantioselectivity than the "face-to-face" complex CuL(2). The best enantioselectivity was observed for N-Boc-phenylalanine 4-nitrophenyl ester (S2) enantiomers promoted by CuL(1), which exhibited an enantiomer selectivity of 15.7. We observed preferential hydrolysis of L-S2 by CuL(1), even in racemic S2, through chiral high-performance liquid chromatography (HPLC). We demonstrated that the enantioselective hydrolysis was related to the cooperative roles of the intramolecular flanking chiral CD cavities with the coordinated copper ion, according to the results of electrospray ionization mass spectrometry (ESI-MS), inhibition experiments, rotating-frame nuclear Overhauser effect spectroscopy (ROESY), and theoretical calculations. Although the catalytic parameters lag behind the level of enzymatic transformation, this study confirms the cooperative effect of the first and second coordination spheres of artificial catalysts in enantioselectivity and provides hints that may guide future explorations of enzyme mimics.Entities:
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Year: 2016 PMID: 26916830 PMCID: PMC4768151 DOI: 10.1038/srep22080
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic representations of (a) the structures of CuL and CuL2 and (b) the hydrolysis of S, S and S catalysed by CuL and CuL2.
Figure 2Initial-rate kinetics.
Hydrolysis of single enantiomers of the substrates (2.5 μM) a) S, b) S, c) S by CuL (50 μM) ( for the L-isomer, for the D-isomer) and CuL2 (50 μM) ( for the L-isomer, for the D-isomer) and spontaneous hydrolysis (the solid line in black). The reactions were performed in a 10% MeCN solution in HEPES buffer (pH 7.2, 50 mM) at 298 ± 0.1 K.
The initial rate constants for S1-S3 (2.5 μM) promoted by different catalysts (50.0 μM) in a 10% MeCN solution in HEPES buffer (pH 7.2, 50 mM) at 298 ± 0.1 K.
| Catalyst | ||||||
|---|---|---|---|---|---|---|
| S1 | S2 | S3 | ||||
| 3.9 | 2.1 | 5.4 | 5.2 × 10 | 2.0 | 1.3 | |
| 9.5 × 10 | 7.7 × 10 | 1.6 | 7.2 × 10 | 3.4 × 10 | 1.9 × 10 | |
| 6.2 × 10 | 4.3 × 10 | 8.5 × 10 | 1.8 × 10 | 2.1 × 10 | 1.2 × 10 | |
| 4.4 × 10 | 3.1 × 10 | 4.8 × 10 | 1.2 × 10 | 4.3 × 10 | 1.7 × 10 | |
| 1.2 × 10 | 6.7 × 10 | 6.1 × 10 | ||||
| Buffer | 5.0 × 10 | 3.2 × 10 | 2.8 × 10 | |||
Figure 3Saturation kinetics.
Michaelis–Menten kinetics for the hydrolysis of the substrates (2.5 μM) in the presence of CuL (5.0–25 μM) in a 10% MeCN solution in HEPES buffer (pH 7.2, 50 mM) at 298 ± 0.1 K.
Kinetic parameters for the hydrolysis of S1-S3 (2.5 μM) in the presence of CuL1 (5.0–125 μM) in a 10% MeCN solution in HEPES buffer (50 mM, pH = 7.2) at 298 ± 0.1 K.
| 12.0 ± 1.0 | 107.0 ± 16.0 | 1.1 | 5.0 | 2.5 × 102 | 2.9 | ||
| 4.2 ± 0.2 | 42.5 ± 4.3 | 1.0 | 8.4 × 10 | ||||
| 26.2 ± 4.2 | 197.0 ± 46.0 | 1.3 | 3.2 | 8.1 × 102 | 15.7 | ||
| 1.7 ± 0.3 | 124.0 ± 32.0 | 0.1 | 5.2 × 10 | ||||
| 3.3 ± 0.3 | 28.5 ± 5.6 | 1.2 | 2.8 | 1.2 × 102 | 1.5 | ||
| 2.2 ± 0.1 | 34.6 ± 3.4 | 0.6 | 7.9 × 10 |
Chiral HPLC analysis of the conversion of various amounts of racemic S.
| Entry | Conversion (%) | Remaining e.r. of S2( | e.r. of Boc-Phe-OH ( |
|---|---|---|---|
| 1 | 35 | 28:72 | 94:6 |
| 2 | 40 | 23:77 | 92:8 |
| 3 | 50 | 20:80 | 82:18 |
[a] The enantiomeric ratio (e.r.) values of remaining substrates were determined by HPLC analysis with a chiral stationary phase. [b] e.r. values of products were calculated from the result of HPLC analysis.
Figure 4Inhibition reaction and theoretical calculation.
Hydrolysis of (a) -S, and (b) -S by CuL in the presence or absence of DBBA in HEPES buffer (pH 7.2, 50 mM) containing 10% MeCN at (298 ± 0.1) K, [CuL] = [S] = [DBBA] = 10.0 μM. Optimized structures of the (c) -S-CuL and (d) -S-CuL complexes at the ONIOM(B3LYP/lanl2dz:UFF)/IEFPCM level of theory. Color code: O, red; N, blue; Cu, magenta; C, light grey (catalysts) and cyan (substrates). Hydrogen was omitted. The intramolecular CDs were also omitted in the bottom images for clarity. The metal ions and coordinated water are shown as spheres. All labelled distances are shown in angstroms (Å).