| Literature DB >> 28827709 |
Yi-Fang Tsai1, Wen-I Luo1, Jen-Lin Chang2, Chun-Wei Chang1, Huai-Chun Chuang1, Ravirala Ramu1, Guor-Tzo Wei3, Jyh-Myng Zen4, Steve S-F Yu5.
Abstract
An unprecedented method for the efficient conversion of C3-C12 linearEntities:
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Year: 2017 PMID: 28827709 PMCID: PMC5566439 DOI: 10.1038/s41598-017-08610-w
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Electron pathway and protein components involved in the catalytic oxidation of medium-chain length n-alkane. The oxidation is mediated by AlkB with electrons supplied from AlkG.
Figure 2(a) Normalized XANES spectra of FeSO4 (light green), FeCl3 (cyan), AlkGreduced (magenta), AlkGoxidized (blue), AlkBreduced (red) and AlkBoxidized (black). The inset highlights the pre-edge absorption of AlkBoxidized, AlkGoxidized and AlkGreduced at ca. 7113 eV; (b) Titration of dithionite into the mixture of AlkG and AlkB with ca. 1:1 ratio (direction for the titration of dithionite, concentration from low to high: Black → Red → Blue).
Results obtained from pre-edge spectra of AlkGoxidized, AlkGreduced, AlkBoxidized and AlkBreduced.
| AlkGoxidized | AlkGreduced | AlkBoxidized | AlkBreduced | ||
|---|---|---|---|---|---|
| Pre-edge energy (eV) | 7113.7 | 7112.8 | 7114.1 | 7115.9 | NDb |
| Pre-edge areaa | 25.0 | 17.5 | 6.7 | 4.5 | NDb |
| K-edge energy (eV)c | 7120.9 | 7119.6 | 7125.7 | 7122.3 | |
aThe integrated area is reported in unit, which is the real value multiply by 100[39–41].
bND: Not detected due to the poor resolution of the spectrum after linear combination.
cK-edge energy[41] (eV) is defined herein as the energy at half its maximum normalization intensity for the rising edge of normalized XANES spectra.
Figure 3(a) Pre-edge spectra of AlkGreduced (magenta), AlkGoxidized (blue) and AlkBoxidized (black) after the subtraction from background; (b) the pre-edge spectrum of AlkBoxidized (red circled line) is de-convoluted into two pre-edge peak components (dashed lines) with the absorption maximum at 7114.1 eV and 7115.9 eV, respectively. The merged spectra of two component peaks (black line, 11.2 units) and the pre-edge spectrum of AlkBoxidized are superimposable.
Figure 4Left: Phase shift corrected Fourier transforms of Fe EXAFS (red circles) and the corresponding best fits (black solid lines); Right: Fe EXAFS (red circles) and the corresponding best fits (black solid lines) of purified AlkB.
Fitting of the k 3-weighted EXAFS data for alkane hydroxylase (AlkB).
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| Fe–O/N | Fe–O/N | Fe–C | Fe–Fe | Fe–C/N |
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|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
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| σ2 (Å2) |
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| σ2 (Å2) |
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| σ2 (Å2) |
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| σ2 (Å2) |
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| σ2 (Å2) | ∆ | ∆ |
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| 1 | 5 | 2.02 | 0.007 | 1 | 3.08 | 0.008 | [1.45, 10.83] | [1.31, 3.53] | 0.019 | |||||||||
| 2 | 5 | 2.03 | 0.007 | 3 | 4.10 | 0.007 | 1 | 3.09 | 0.008 | [1.38, 10.83] | [1.41, 4.20] | 0.080 | ||||||
| 3 | 5 | 2.03 | 0.006 | 3 | 3.13 | 0.003 | [1.35, 11.04] | [1.38, 3.52] | 0.12 | |||||||||
| 4 | 5 | 2.02 | 0.005 | 3 | 3.17 | 0.008 | 1 | 4.07 | 0.008 | [1.38, 10.88] | [1.37, 4.37] | 0.21 | ||||||
| 5 | 3 | 2.03 | 0.002 | 1 | 2.40 | 0.006 | 1 | 3.11 | 0.003 | [2.49, 10.88] | [1.31, 3.53] | 1.6 | ||||||
| 6 | 5 | 2.03 | 0.007 | 3 | 3.13 | 0.005 | 3 | 4.17 | 0.009 | [1.38, 10.68] | [1.31, 4.33] | 0.080 | ||||||
| 7 | 5 | 2.02 | 0.007 | 3 | 2.95 | 0.011 | 1 | 3.08 | 0.007 | 3 | 4.08 | 0.006 | [1.40, 10.85] | [1.40, 4.37] | 0.075 | |||
(a) Results of fits 1–7 to EXAFS data for AlkB. Errors are estimated to be 25% for coordination numbers and 0.01–0.03 Å for distances[38]. Parameters used in the fitting include: N, the coordination number; R (Å), the distance relative to Fe; σ 2 (Å2), the Debye-Waller factor; and R fit (%), the goodness-of-fit parameter. (b) Fitting range for each fit. Ranges for k space (Å−1) and R space (Å) are indicated by Δk and ΔR, respectively.
Figure 5(a) Electrochemical impedance studies of AlkG modified SPCE, AlkB-enriched membrane SPCE, and bare SPCE in 1 mM [Fe(CN)6]3−/0.1 M KCl solution. Electrochemical studies in 0.1 M phosphate buffer solution (PBS), pH 7.4: (b) cyclic voltammograms (CVs) of bare SPCE measured in the absence (black dotted line) and in the presence (black solid line) of oxygen; and CVs of AlkG-SPCE measured in the absence (red dash line) and in the presence (blue solid line) of oxygen. Inset: DET of AlkG-SPCE obtained in the absence of oxygen. (c) CVs of bare SPCE measured in the absence (black dotted line) and in the presence (black solid line) of oxygen; and CVs of AlkB-enriched membrane SPCE in the absence (red dash line) and in the presence (blue solid line) of oxygen. Inset: DET of AlkB-enriched membrane SPCE in the absence of oxygen.
Figure 6Specific activity in turnover frequency (TOF) with increasing concentration of AlkB bound to AlkG for the catalytic conversion of n-octane to 1-octanol. The red curve is resulted from the fitting using an apparent two-site binding model.
Figure 7Specific activity in turnover frequency (TOF) for the electrochemical conversion of medium-chain length n-alkanes (C3–C12) to primary alcohols mediated by AlkB-enriched membrane bound to AlkG immobilized on a SPCE.