| Literature DB >> 35494350 |
Thabo Peme1, Dean Brady1, Wanyama Juma1, Maya Makatini1.
Abstract
This study describes the design and synthesis of mimetic peptides modelled on the catalytic active site of the fructose-1,6-bisphosphate aldolase (FBPA) enzyme. The synthesized peptides consisting of the turn motifs and catalytic site amino acids of FBPA enzyme were evaluated for catalytic activity in direct asymmetric aldol reactions of ketones and aldehydes. The influence of substrate scope, catalyst loading and solvents including water, on the reaction were also investigated. Nuclear magnetic resonance (NMR) and circular dichroism (CD) were used to determine the secondary structure of the peptides to provide an understanding of the structure-activity relationship. The peptides showed catalytic activity and the aldol products were obtained in low yields (up to 44%), but excellent enantioselectivity (up to 93%) and moderate diastereoselectivity (65 : 35). This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35494350 PMCID: PMC9043830 DOI: 10.1039/d1ra06616a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Structure depicting the FBPA enzyme's active site residues interaction with the substrate molecule (FBP), based on the sequence from: https://www.uniprot.org/uniprot/P07764; and generated using pyMOL software.
Detailed summary of the two synthesized (TP_Asp and TP_ADLys) peptides
| Peptide | Sequence | Calculated mass | Half mass found [M + 2H]2+ |
| Av. yield% |
|---|---|---|---|---|---|
| TP_Asp | CRYKDGASGKDYRC | C66H102N22O23S2, 1618.70 | 810.7915 |
| 55.7 |
| TP_ADLys | CRYKDGASGKDYRC | C66H102N22O23S2, 1618.70 | 809.8573 |
| 62.40 |
Peptide-catalysed aldol reaction between acetone and substituted aromatic aldehydesa
|
| ||||||
|---|---|---|---|---|---|---|
| Entry | Catalyst | R | Solvent | Time (h) | Yield | ee |
| 1 | TP_Asp | 4-NO2 | Acetone/H2O | 48 | 16 | 70 |
| 2 | 2-NO2 | Acetone/H2O | 48 | 13 | 12 | |
| 3 | 4-Cl | Acetone/H2O | 48 | 14 | 79 | |
| 4 | TP_ADLys | 4-NO2 | Acetone/H2O | 48 | 15 | 82 |
| 5 | 2-NO2 | Acetone/H2O | 48 | 10 | 7 | |
| 6 | 4-Cl | Acetone/H2O | 48 | 14 | 85 | |
| 7 | TP_Asp | 4-NO2 | DMSO/H2O | 72 | Trace | — |
| 8 | 2-NO2 | DMSO/H2O | 72 | Trace | — | |
| 9 | 4-Cl | DMSO/H2O | 72 | Trace | ||
| 10 | TP_ADLys | 4-NO2 | DMSO/H2O | 72 | Trace | — |
| 11 | 2-NO2 | DMSO/H2O | 72 | Trace | ||
| 12 | 4-Cl | DMSO/H2O | 72 | Trace | — | |
The reaction was performed using aldehyde (0.25 mmol), pep. catalyst (4 mol%), dissolved in 0.75 mL of 3 : 1 acetone/water (molar ratio 30 : 42; acetone/water), at r.t. for 48 h.
Isolated yield.
ee values determined by chiral-phase HPLC analysis.
Reaction was performed using acetone (0.628 mmol, 50 μL), 0.75 mL DMSO/H2O (0.5173 mL DMSO, 0.237 mL water).
Aldol reaction between cyclohexanone and various aromatic aldehydes catalysed by peptidesa
|
| ||||||
|---|---|---|---|---|---|---|
| Entry | Catalyst | R | Time (h) | Yield | ee | dr |
| 1 | TP_ADLys | 4-NO2 | 48 | NR | — | — |
| 2 | 2-NO2 | 48 | NR | — | — | |
| 3 | 4-Cl | 48 | NR | — | — | |
| 4 | TP_Asp | 4-NO2 | 48 | 17 | 7 | 43 : 57 |
| 5 | 2-NO2 | 48 | 11 | 9 | 47 : 53 | |
| 6 | 4-Cl | 48 | Trace | — | — | |
| 7 | 4-Br | 48 | Trace | — | — | |
| 8 | 4-H | 48 | Trace | — | — | |
| 9 | TP_ADLys | 4-NO2 | 48 | 15 | 5 | 49 : 51 |
| 10 | 2-NO2 | 48 | 13 | 14 | 22 : 78 | |
| 11 | 4-Cl | 48 | Trace | — | — | |
| 12 | 4-Br | 48 | Trace | — | — | |
| 13 | 4-H | 48 | Trace | — | — | |
The reaction was performed using aldehyde (0.157 mmol), pep. catalyst (4 mol%), 0.45 mL of solvent, ketone/water 20 : 1 (v : v) at r.t. for 48 h.
Isolated yield.
ee values determined by chiral-phase HPLC analysis.
Determine by 1H NMR analysis of the crude product.
The reaction was performed in ketone/water 10 : 1 (v : v).
The effect of solvent for peptide-catalysed aldol reaction using 4 mol%a
|
| ||||||
|---|---|---|---|---|---|---|
| Entry | Catalyst | Solvent | Time (h) | Yield | ee | dr |
| 1 | TP_ADLys | MeCN/H2O | 96 | NR | — | — |
| 2 | CHCl3/H2O | 96 | NR | — | — | |
| 3 | IPA/H2O | 72 | <10 | — | — | |
| 4 | DMSO | 72 | 12 | 5 | 48 : 52 | |
| 5 | DMF | 96 | NR | — | ||
| 6 | DMSO/H2O | 72 | 16 | 14 | 57 : 43 | |
| 7 | DMF/H2O | 96 | <9 | — | — | |
| 8 | H2O/DMSO | 72 | <8 | — | — | |
| 9 | Brine | 72 | 13 | 39 | 31 : 69 | |
| 10 | TP_Asp | MeCN/H2O | 96 | NR | — | — |
| 11 | CHCl3/H2O | 96 | NR | — | — | |
| 12 | IPA/H2O | 72 | <9 | — | — | |
| 13 | DMSO | 72 | 11 | 8 | 45 : 55 | |
| 14 | DMF | 96 | NR | — | — | |
| 15 | DMSO/H2O | 72 | 13 | 20 | 63 : 37 | |
| 16 | DMF/H2O | 96 | Traces | — | — | |
| 17 | H2O/DMSO | 72 | <7 | — | — | |
| 18 | Brine | 72 | 14 | 12 | 37 : 63 | |
The reaction was performed using p-nitrobenzaldehyde (0.157 mmol, 24 mg), cyclohexanone (0.628 mmol, 70 μL), pep. catalyst (4 mol%) and dissolved in 0.75 mL (0.5173 mL solvent and 0.237 mL water) at r.t.
Isolated yield.
ee values determined by chiral-phase HPLC analysis.
Determine by 1H NMR analysis of the crude product.
Estimated by TLC.
Effect of catalyst loading in the peptide-catalysed aldol reactiona
|
| |||||||
|---|---|---|---|---|---|---|---|
| Entry | Catalyst | R1, R2 | Solvent | Time (h) | Yield | ee | dr |
| 1 | TP_Asp | (CH2)4 | Ketone | 48 | 42 | 20 | 32 : 68 |
| 2 | (CH2)4 | DMSO | 72 | 21 | 8 | 54 : 44 | |
| 3 | (CH2)4 | DMSO/H2O | 72 | 25 | 16 | 65 : 35 | |
| 4 | (CH2)4 | Brine | 72 | 24 | 37 | 43 : 57 | |
| 5 | TP_ADLys | (CH2)4 | Ketone | 48 | 40 | 6 | 59 : 41 |
| 6 | (CH2)4 | DMSO | 72 | 20 | 6 | 58 : 42 | |
| 7 | (CH2)4 | DMSO/H2O | 72 | 27 | 31 | 64 : 36 | |
| 8 | (CH2)4 | Brine | 72 | 23 | 65 | 64 : 36 | |
| 9 | (CH2)4 | Buffer | 72 | 38 | 80 | 57 : 43 | |
| 10 | Plain buffer | (CH2)4 | Buffer | 120 | Trace | — | — |
| 11 | TP_Asp | CH3, H | Ketone | 48 | 15 | 93 | — |
| 12 | TP_ADLys | CH3, H | Ketone | 48 | 13 | 91 | — |
The reaction was performed using p-nitrobenzaldehyde (0.157 mmol, 24 mg), cyclohexanone (0.628 mmol, 70 μL), pep. catalyst (8 mol%) and dissolved in 0.75 mL (0.5173 mL solvent and 0.237 mL water) at r.t.
Isolated yield.
ee values determined by chiral-phase HPLC analysis.
Determine by 1H NMR analysis of the crude product.
The reaction was performed in ketone/water 20 : 1 (v : v).
The reaction was performed in a phosphate buffer (pH 8.0).
Reaction was performed in 0.75 mL of 3 : 1 acetone/water (molar ratio 30 : 42; acetone/water).
Recovery and reuse of catalyst TP_ADLys in aldol reactiona
| Entry | Solvent | Time (h) | Yield | ee | dr |
|---|---|---|---|---|---|
| 1 | DMSO | 72 | Trace | — | — |
| 2 | DMSO/H2O | 72 | Trace | — | — |
| 3 | Brine | 72 | Trace | — | — |
| 4 | Ketone | 72 | Trace | — | — |
| 5 | Buffer | 72 | 13 | — | — |
| 6 | Buffer plain | 72 | 13 | 81 | 81/19 |
The reaction was performed using p-nitrobenzaldehyde (0.157 mmol, 24 mg), cyclohexanone (0.628 mmol, 70 μL), and dissolved in 0.75 mL (0.5173 mL DMSO and 0.237 mL water) at r.t.
Isolated yield.
ee values determined by chiral-phase HPLC analysis.
Determine by 1H NMR of the crude product.
The reaction was performed in ketone/water 20 : 1 (v : v).
The reaction was performed in phosphate buffer (pH 8.0).
Fig. 2Proposed aldol reaction mechanism catalysed by peptides.
Fig. 3Circular dichroism studies for (A) TP_ADLys and TP_Asp peptides in water (W) and B-200 mM phosphate buffer solution (B) the percentage of secondary structure.
Fig. 4The partial 1HN–Hα fingerprint region of 2D the TOCSY spectrum TP_Asp of the peptide, showing individual spin system patterns.
Fig. 5TP_Asp partial ROESY spectrum showing NH–NH and Hα–NH NOE connectivities from residues 1–14.
NMR chemical shifts (ppm) of individual spin assignment for TP_Asp
| Residue | H–NH | 1Hα | Cα | 1Hβ | 1Hγ | 1Hδ | 1Hε | ROESY |
|---|---|---|---|---|---|---|---|---|
| Cys1 | 7.75 | 4.36 | 55.08 | 2.89 | ||||
| Argr2 | 7.69 | 4.24 | 48.94 | 3.08 | 1.71 | 1.5 | (3.08; 7.75) | |
| Tyr3 | 8.37 | 4.55 | 49.67 | 2.69, 2.40 | (8.37; 4.24) | |||
| Lys4 | 8.15 | 4.23 | 52.86 | 3.11, 3.23 | 1.72 | 1.53 | 1.06 | |
| Asp5 | 7.91 | 4.33 | 53.02 | 2.83, 2.89 | (7.91; 4.55) | |||
| Gly6 | 7.92 | 3.58 | 64.63 | (7.92; 4.33) | ||||
| Ser7 | 8.06 | 4.41 | 49.87 | 3.61 | ||||
| Ala8 | 8.10 | 4.15 | 52.83 | 1.56 | ||||
| Gly9 | 8.09 | 3.74 | 48.58 | |||||
| Lys10 | 7.77 | 4.36 | 43.84 | 3.52, 2.73 | 1.5 | 1.27 | 1.06 | (7.77; 4.50) |
| Asp11 | 7.94 | 4.24 | 45.63 | 1.51, 1.24 | (7.94; 3.74) | |||
| Tyr12 | 8.45 | 4.50 | 49.87 | 2.63, 2.36 | ||||
| Arg13 | 8.18 | 4.48 | 52.85 | 2.8 | 1.23 | (8.18; 4.37) | ||
| Cys14 | 8.75 | 4.37 | 52.84 | 1.69, 1.52 |