| Literature DB >> 25853669 |
Evgeniy G Gordeev1, Valentine P Ananikov1.
Abstract
A possible mechanistic pathway related to an enzyme-catalyzed [4+2] cycloaddition reaction was studied by theoretical calculations at density functional (B3LYP, O3LYP, M062X) and semiempirical levels (PM6-DH2, PM6) performed on a model system. The calculations were carried out for the key [4+2] cycloaddition step considering enzyme-catalyzed biosynthesis of Spinosyn A in a model reaction, where a reliable example of a biological Diels-Alder reaction was reported experimentally. In the present study it was demonstrated that the [4+2] cycloaddition reaction may benefit from moving along the energetically balanced reaction coordinate, which enabled the catalytic rate enhancement of the [4+2] cycloaddition pathway involving a single transition state. Modeling of such a system with coordination of three amino acids indicated a reliable decrease of activation energy by ~18.0 kcal/mol as compared to a non-catalytic transformation.Entities:
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Year: 2015 PMID: 25853669 PMCID: PMC4390235 DOI: 10.1371/journal.pone.0119984
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 1SpnF-mediated cyclization.
SpnF-mediated cyclization leading to cyclohexene ring in the biosynthesis of Spinosyn A.
Fig 2Structural decomposition analysis of the cycloaddition reaction.
Structural decomposition analysis of the cycloaddition reaction involved in the biosynthesis of Spinosyn A into principal components (the atom numbering was the same as in compound 1 for comparative purpose).
Calculated activation and reaction energies for the cycloaddition reactions.
| Reactions | |||||
|---|---|---|---|---|---|
| (a) | (b) | (c) | (d) | (e) | |
|
| 24.5 | 26.1 | 26.1 | 23.6 | 22.9 |
|
| -32.8 | -29.7 | -29.7 | -14.0 | -9.3 |
|
| 25.6 | 25.6 | 25.7 | 22.8 | 22.0 |
|
| -28.2 | -27.2 | -27.3 | -12.2 | -7.5 |
|
| 38.9 | 30.3 | 30.2 | 27.3 | 25.4 |
|
| -15.5 | -21.9 | -22.0 | -7.2 | -2.9 |
Calculated activation and reaction energies (B3LYP/6-311+G(d) level, kcal/mol) for the cycloaddition reactions (see Fig. 2).
Calculated activation barriers of Spinosyn A formation.
| Entry[ | PM6[ | PM6-DH2[ | B3LYP[ | O3LYP[ | M062X[ |
|---|---|---|---|---|---|
| 1 | 36.6 | 35.2 | 27.8 | 26.4 | 27.2 |
| 2 (+Gln) | 33.6 | 32.7 | 28.1 | 26.1 | 27.8 |
| 3 (+Gln+Ser) | 36.0 | 35.6 | 27.0 | 23.7 | 30.4 |
| 4 (+Gln+2Ser) | 34.7 | 35.9 | 25.1 | 23.3 | 24.7 |
Calculated ΔE≠ 2-TS activation barriers (in kcal/mol) of the cycloaddition step involved in the biosynthesis of Spinosyn A showing effect of amino acids coordination. See S5 Fig; S6 Fig; S7 Fig; S8 Fig and S5 Table for structures and geometric parameters.
[a] Coordinated amino acids: 1—none; 2—Gln; 3—Gln and Ser; 4—Gln and 2 molecules of Ser.
[b] Full geometry optimization of all stationary points.
[c] Single point calculations at the PM6 geometry.
Fig 3Comparison of regular and proposed cycloaddition reactions.
Comparison of regular (black line) and proposed in the present study (blue line) cycloaddition reactions (calculated at the PM6 level). Coordination of amino acids and schematic substrate transformations are shown in the case of enzyme-catalyzed reaction (See S9 Fig and S10 Fig for structures and geometries).
Fig 4Optimized molecular structure of transition state VIII-TS.