| Literature DB >> 26068013 |
Julian Ihssen1, Renate Reiss1, Ronny Luchsinger1, Linda Thöny-Meyer1, Michael Richter1.
Abstract
Laccases are multi-copper oxidases that oxidize a broad range of substrates at the expense of molecular oxygen, without any need for co-factor regeneration. These enzymes bear high potential for the sustainable synthesis of fine chemicals and the modification of (bio)polymers. Here we describe cloning and expression of five novel bacterial laccase-like multi copper oxidases (LMCOs) of diverse origin which were identified by homology searches in online databases. Activity yields under different expression conditions and temperature stabilities were compared to three previously described enzymes from Bacillus subtilis, Bacillus pumilus and Bacillus clausii. In almost all cases, a switch to oxygen-limited growth conditions after induction increased volumetric activity considerably. For proteins with predicted signal peptides for secretion, recombinant expression with and without signal sequence was investigated. Bacillus CotA-type LMCOs outperformed enzymes from Streptomyces and Gram-negative bacteria with respect to activity yields in Escherichia coli and application relevant biochemical properties. The novel Bacillus coagulans LMCO combined high activity yields in E. coli with unprecedented activity at strong alkaline pH and high storage stability, making it a promising candidate for further development.Entities:
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Year: 2015 PMID: 26068013 PMCID: PMC4464401 DOI: 10.1038/srep10465
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Plasmids used in this study.
| pQE-60 | Medium copy number vector for IPTG-inducible expression, Ptac, ori: pBR322 | AmpR | Qiagen |
| pET-22b(+) | Medium copy number vector for T7 polymerase dependent, IPTG-inducible expression, | AmpR | Novagen |
| pJET/Blunt | Multi-purpose cloning vector | AmpR | Fermentas |
| pBpL6 | AmpR | ||
| pBuL | AmpR | This study | |
| pLOM10 | AmpR | ||
| pBaL | AmpR | This study | |
| pBoL | AmpR | This study | |
| pGoL1 | codon-optimised | AmpR | This study |
| pGoL2 | codon-optimised | AmpR | This study |
| pGoL3 | codon-optimised | AmpR | This study |
| pMtraL | AmpR | This study | |
| pSpL1 | full-length | AmpR | This study |
| pSpL2 | AmpR | This study | |
| pSpL3 | full-length | AmpR | This study |
| pSiL | AmpR | This study | |
| pRARE2 | Supplies tRNAs for seven rare codons in | CamR | Novagen |
Final optical densities and volumetric activity yields in shake flask cultures (SF) of E. coli expressing bacterial LMCOs.
| pBuL | 3.8 (±0.2) | 1.2 (±0.1) | 1.0 (±0.11) | 1.7 (±0.6) | 12 (±1) | 97 (±19) | 617 (±81) | 4157 (±452) | |
| pLOM10 | 4.5 (±0.2) | 1.5 (±0.1) | 2.4 (±1.0) | 1.2 (±0.1) | 18 (±1) | 526 (±47) | 2648 (±273) | 2612 (±217) | |
| pBaL | 2.3 (±0.4) | 1.5 (±0.1) | 1.2 (±0.1) | 1.5 (±0.06) | 8.6 (±1.4) | 60 (±9) | 19 (±2) | 110 (±8) | |
| pBoL | 2.4 (±0.4) | 1.3 (±0.4) | 2.0 (±0.1) | 1.3 (±0.04) | 7.8 (±0.7) | 924 (±133) | 52 (±5) | 719 (±25) | |
| pGoL1 | n.a. | 2.7 (±0.4) | 2.0 (±0.4) | n.a. | n.a. | 36 (±8) | 26 (±5) | n.a. | |
| pGoL3 | 5.4 (±0.2) | 2.5 (±0.2) | 1.3 (±0.2) | 1.9 (±0.1) | 137 (±12) | 2440 (±244) | 220 (±32) | 422 (±3) | |
| pMtraL | 4.3 (±0.1) | 1.7 (±0.1) | 1.1 (±0.3) | 1.3 (±0.04) | 30 (±5) | 1615 (±118) | 1356 (±128) | 353 (±47) | |
| pSpL3 | 6.6 (±0.5) | 1.7 (±0.1) | 2.3 (±0.2) | 1.2 (±0.1) | 57 (±14) | 83 (±7) | 2.7 (±0.7) | 85.5 (±5.7) | |
| pSiL | 5.2 (±0.2) | 1.7 (±0.1) | 1.9 (±0.2) | 1.4 (±0.2) | 3.0 (±0.1) | 2.1 (±0.6) | 2.4 (±1.6) | 5.1 (±0.9) | |
| w/o=without, SP=signal peptide, S.D.=standard deviation, n.a.=not analysed | |||||||||
Figure 1Expression levels of diverse bacterial LMCOs in E. coli. SDS PAGE of biomass-normalised (OD600) total cell protein (TCP) and cell free extract (CFE) samples prepared after overnight induction under static conditions. Samples were denatured for 20 min at 95 °C before loading and proteins were visualised by Coomassie Brilliant Blue staining. Expected molecular masses of recombinant LMCOs: B. coagulans 59.7 kDa, B. clausii 58.4 kDa, S. pristinaespiralis 32.6 kDa, B. subtilis 58.5 kDa, G. forsetii 59.0 kDa, M. tractuosa 59.6 kDa, S. linguale 51.1 kDa.
Figure 2Heat stability of recombinant bacterial LMCOs and a fungal reference enzyme. Open circles: B. clausii, closed circles: B. subtilis, closed squares: M. tractuosa, open squares: B. coagulans, open triangles: S. linguale, closed triangles: S. pristinaespiralis, open diamonds: G. forsetii, closed diamonds: fungal laccase (T. versicolor). Average values and standard deviations of 3 replicate experiments.
Figure 3Storage stability of purified bacterial LMCOs in (A) 100 mM potassium phosphate buffer pH 7.0 and (B) double-distilled water. Open symbols: incubation at 25 °C, closed symbols: incubation at 45 °C; squares: B. clausii LMCO; circles: B. coagulans LMCO. Average values and standard deviations of relative activities (ABTS, pH 4, 30 °C) determined in 3 replicate experiments.
Substrate range of B. clausii and B. coagulans LMCOs compared to previously characterised B. subtilis CotA (Reiss et al. 4). Out of 91 tested compounds only those are shown which were oxidised by at least one of the three enzymes.
| Aromatic carboxylic acids | +/− | + | + | |
| Caffeic acid | + | − | − | |
| Ferulic acid | + | +/− | +/− | |
| Sinapic acid | + | + | + | |
| 3,4-Dihydroxybenzoic acid | + | +/− | +/− | |
| Gallic acid | + | − | − | |
| Syringic acid | + | + | + | |
| 3-Amino-4 hydroxybenzoic acid | + | − | +/− | |
| 4-Amino-3 hydroxybenzoic acid | + | + | + | |
| Vanillic acid | +/− | +/− | +/− | |
| 3-(Dimethylamino) benzoic acid | − | +/− | + | |
| 3-Hydroxyanthranilic acid | + | − | − | |
| + | − | − | ||
| Aromatic alcohols | Vanillyl alcohol | + | + | + |
| Isovanillyl alcohol | + | + | +/− | |
| Coniferyl alcohol | + | + | + | |
| Tyrosol | + | − | − | |
| + | +/− | − | ||
| 2,6-Dimethylphenol | + | − | + | |
| Catechol | + | + | + | |
| 4-Methylcatechol | + | + | + | |
| Pyrogallol | + | +/− | +/− | |
| 2,6-Dimethoxyphenol | + | + | + | |
| 3,4,5-Trimethoxyphenol | +/− | − | − | |
| Guaiacol | + | + | + | |
| Hydroquinone | + | + | + | |
| Mesitol | + | + | +/− | |
| 3-Methylcatechol | + | + | + | |
| Eugenol | + | + | + | |
| Arbutin | + | + | + | |
| Resveratrol | + | +/− | +/− | |
| Quercetin hydrate | +/− | + | + | |
| Aromatic ketones | Acetovanillone | + | +/− | + |
| Acetosyringone | + | +/− | +/− | |
| Aromatic aldehydes | + | + | + | |
| Syringaldehyde | + | +/− | +/− | |
| Ethyl vanillin | + | + | + | |
| Vanillin | +/− | − | +/− | |
| Sinapaldehyde | + | + | + | |
| Coniferyl aldehyde | + | + | + | |
| Aromatic amines | Dopamine hydrochloride | + | + | + |
| Aromatic esters | Methyl vanillate | + | +/− | +/− |
| Methylsyringate | + | − | − | |
| Aromatic amides | Syringamide | + | + | + |
| + | + | + | ||
| Polyphenol | Tannic acid | + | + | + |
| N-heterocycles | Violuric acid hydrate | − | +/− | +/− |
| 1-(3-Sulfophenyl)-3-methyl-2-pyrazolin-5-one | + | + | + | |
| 1-(4-Sulfophenyl)-3-methyl-5-pyrazolone | + | + | + | |
| Aromatic azo compounds | ABTS | + | + | + |
| Syringaldazine | + | + | + | |
| Triphenyl compounds | Cresol red sodium salt | + | + | + |
| Chromans | (+)-Catechin hydrate | + | + | + |
| (−)-Epicatechin | + | + | + | |
| Phenothiazines | Phenothiazine | + | + | + |
| Promazine hydrochloride | + | + | + | |
| Benzonitriles | 2,3-Dimethoxybenzonitrile | +/− | − | − |
| Naphtalenes | 1-Nitroso-2-naphthol-3,6-disulfonic acid | + | + | + |
| 2-Nitroso-1-naphthol-4-sulfonic acid | + | + | + | |
| 1-Amino-2-naphthol-4-sulfonic acid | + | − | +/− |
Figure 4pH-activity profiles of B. coagulans (open symbols) and B. clausii (closed symbols) LMCOs. Substrates were (A) ABTS, (B) 2,6-dimethoxyphenol, (C) syringaldazine, and (D) guaiacol. Average values and standard deviations of 3 replicate experiments.
Kinetic constants of B. coagulans and B. clausii LMCOs compared to previously characterised B. pumilus CotA28. Enzyme assays were carried out at the optimal pH for each substrate. Parameters were estimated with a Michaelis Menten equation with uncompetitive substrate inhibition.
| ABTS | 31 ±3 | 132 ±11 | 80 ±4 | |
| 69 ±3.1 | 90 ±2.3 | 291 ±2.7 | ||
| 0.94 ±0.11 | 44 ±2.3 | − | ||
| 2,6-DMP | 628 ±67 | 8535 ±2394 | 680 ±27 | |
| 17 ±0.8 | 65 ±15.2 | 11 ±0.1 | ||
| 36 ±9.8 | 3.8 ±1.2 | − |