| Literature DB >> 24927145 |
Dongjuan Yuan1, Dongming Lan2, Ruipu Xin3, Bo Yang4, Yonghua Wang5.
Abstract
Mono- and di-acylglycerol lipase has been applied to industrial usage in oil modification for its special substrate selectivity. Until now, the reported mono- and di-acylglycerol lipases from microorganism are limited, and there is no report on the mono- and di-acylglycerol lipase from bacteria. A predicted lipase (named MAJ1) from marine Janibacter sp. strain HTCC2649 was purified and biochemical characterized. MAJ1 was clustered in the family I.7 of esterase/lipase. The optimum activity of the purified MAJ1 occurred at pH 7.0 and 30 °C. The enzyme retained 50% of the optimum activity at 5 °C, indicating that MAJ1 is a cold-active lipase. The enzyme activity was stable in the presence of various metal ions, and inhibited in EDTA. MAJ1 was resistant to detergents. MAJ1 preferentially hydrolyzed mono- and di-acylglycerols, but did not show activity to triacylglycerols of camellia oil substrates. Further, MAJ1 is low homologous to that of the reported fungal diacylglycerol lipases, including Malassezia globosa lipase 1 (SMG1), Penicillium camembertii lipase U-150 (PCL), and Aspergillus oryzae lipase (AOL). Thus, we identified a novel cold-active bacterial lipase with a sn-1/3 preference towards mono- and di-acylglycerides for the first time. Moreover, it has the potential, in oil modification, for special substrate selectivity.Entities:
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Year: 2014 PMID: 24927145 PMCID: PMC4100168 DOI: 10.3390/ijms150610554
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Gene features of MAJ. (A) Phylogenetic tree of the lipase family I. The tree was constructed using the MEGA 6.0 program with the neighbor-joining algorithm. Bar: 0.2 substitutions per amino acid site; and (B) Multiple sequence alignment of MAJ1 and other related proteins. U80063: lipase from Streptomyces cinnamoneus; X99255: lipase from Propionibacterium acnes; WP_017241591: lipase 2 from Streptomyces sp.; YP_003115520: lipase 2 from Catenulispora acidiphila; WP_023956064: lipase from Williamsia sp. D3. The asterisk indicates three catalytic residues of serine, aspartate, and histidine residue.
Figure 2Expression and purification of MAJ1. (A) Growth curve of P. pastoris X-33 with MAJ1; and (B) Purification of MAJ1. The enzyme activity refers to the activity of the supernatant of fermentation broth.
Figure 3Effects of temperature and pH on the enzyme activity of MAJ1. (A) The enzyme activity was measured at various temperatures at pH 7.0. The value obtained at 30 °C was taken as 100%; (B) The enzyme activity was determined at 30 °C by using p-nitrophenyl caprate (C10) after treated with 2 h at different temperatures. The value obtained at 30 °C was taken as 100%; (C) The enzyme activity was measured at various pH. The value obtained at pH 7.0 was taken as 100%; and (D) The enzyme activity was determined at 30 °C by using p-nitrophenyl caprate (C10) after treated with 12 h at various pH. The value obtained at pH 7.0 was taken as 100%. # compared to the value at pH 7.0, p < 0.05; * compared to the value at pH 7.0, p < 0.01.
Effect of various metal ions on the enzyme activity of MAJ1.
| Metal Ions (1 mM) or EDTA (1 mM) | Relative Activity (%) |
|---|---|
| None | 100.00 ± 0.00 |
| ZnSO4 | 91.34 ± 3.20 |
| CuSO4 | 92.13 ± 5.21 |
| MgSO4 | 93.13 ± 2.67 |
| CaCl2 | 95.72 ± 1.97 |
| NiCl2 | 91.21 ± 3.00 |
| MnSO4 | 95.96 ± 3.01 |
| MnCl2 | 94.01 ± 6.45 |
| K2SO4 | 93.89 ± 6.40 |
| MgCl2 | 93.79 ± 2.01 |
| EDTA | 32.29 ± 2.90 |
| NaCl (1 mM) | 90.41 ± 2.60 |
| NaCl (2 mM) | 95.54 ± 3.71 |
| NaCl (3 mM) | 97.12 ± 2.04 |
| NaCl (4 mM) | 97.76 ± 3.67 |
| NaCl (5 mM) | 95.27 ± 4.86 |
Effect of various detergents and organic solvents on the enzyme activity of MAJ1.
| Detergent (1%) | Relative Activity (%) | |
|---|---|---|
| None | 100.00 ± 0.00 | |
| Anionic surfactant | di-Octyl sulfosuccinate (Aerosol-OT, AOT) | 15.76 ± 2.02 |
| 79.12 ± 1.04 | ||
| Sodium dodecyl sulfate (SDS) | 13.88 ± 1.41 | |
| Cationic surfactant | Tetradecyl trimethyl ammonium bromide (TTAB) | 21.20 ± 2.05 |
| Cetyl trimethyl ammonium bromide (CTAB) | 43.76 ± 3.17 | |
| Octadecyl trimethyl ammonium bromide (OCAB) | 28.92 ± 1.45 | |
| Zwitterionic surfactant | 3-Tetradecyl dimethyl sulfopropyl betaine | 21.24 ± 3.39 |
| Soy lecithin | 82.84 ± 2.74 | |
| Nonionic surfactant | Tween-20 | 4.98 ± 0.73 |
| Tween-60 | 13.27 ± 0.30 | |
| Tween-80 | 13.25 ± 0.62 | |
| Triton X-100 | 30.72 ± 1.47 | |
| Nonylphenol ethoxylates | 45.74 ± 3.98 | |
| Polyethylene oxide lauryl ether (Brij-35) | 84.57 ± 2.82 | |
| Organic solvents | Methanol | 18.54 ± 4.43 |
| Alcohol | 32.64 ± 4.38 | |
| Isopropanol | 62.51 ± 4.58 | |
| Acetone | 64.18 ± 3.59 |
Figure 4Substrate specificity of MAJ1. (A) Substrate specificity of MAJ1 toward various p-nitrophenyl esters; * compared to the relative activity of C10, p < 0.01; (B) Chemical composition (%) of fractions during hydrolysis of triacylglycerol (TAG)-enriched camellia oil; (C) Chemical composition (%) of fractions during hydrolysis of diacylglycerol (DAG)-enriched oil; and (D) Chemical composition (%) of fractions during hydrolysis of DAG: monoacylglycerol (MAG) (1:1)-enriched oil.