| Literature DB >> 21981827 |
Juan A Tamayo Ramos1, Sharief Barends, Raymond M D Verhaert, Leo H de Graaff.
Abstract
BACKGROUND: Many filamentous fungal genomes contain complex groups of multicopper oxidase (MCO) coding genes that makes them a good source for new laccases with potential biotechnological interest. A bioinformatics analysis of the Aspergillus niger ATCC 1015 genome resulted in the identification of thirteen MCO genes. Ten of them were cloned and homologously overexpressed.Entities:
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Year: 2011 PMID: 21981827 PMCID: PMC3200161 DOI: 10.1186/1475-2859-10-78
Source DB: PubMed Journal: Microb Cell Fact ISSN: 1475-2859 Impact factor: 5.328
Figure 1Sequence alignment of the four copper-binding sites in the 13 . Numbers indicate the histidine (H) and cysteine (C) copper ligands, according to the type of Cu they bind [56].
Protein accession number, predicted nucleotide and amino acid sequence length of the A. niger ATCC 1015 and CBS 513.88 strains MCOs
| Gene | Accession n° ATCC 1015 | Accession n° CBS 513.88 | Nucleotide sequence length (bp) | Deduced primary polypeptide length (aa) |
|---|---|---|---|---|
| e_gw1_1.1387 | An01g14010 | 1907 | 602 | |
| e_gw1_1.1368 | An01g13660 | 1922 | 596 | |
| fge1_pg_C_14000044 | An03g03750 | 1979 | 614 | |
| e_gw1_4.1637 | An11g03580 | 1806 | 563 | |
| fge1_pg_C_1000314 | An01g11120 | 2143 | 586 | |
| fge1 e_gw1_12.409 | An05g02340 | 1876 | 559 | |
| fge1_pm_C_3000179 | An08g08450 | 1840 | 594 | |
| e_gw1_1.309 | An01g08960 | 1842 | 613 | |
| gw1_10.607 | An18g02690 | 2188 | 648 | |
| gw1_9.210 | An12g05810 | 2491 | 672 | |
| fge1_pg_C_6000422 | An15g05520 | 1845 | 614 | |
| e_gw1_8.661 | An14g05370 | 1722 | 547 | |
| gw1_7.235 | An16g02020 | 2413 | 658 | |
| - | An01g00860 | 1856 | 598 | |
| - | An04g10400 | 1946 | 605 | |
| - | An05g02540 | 1903 | 588 | |
Figure 2Neighbor joining tree of multicopper oxidase amino acid sequences. The A. niger MCOs (in dark blue) are distributed amongst the ascomycete laccases, fungal pigment MCOs, fungal ferroxidases and ferroxidases/laccases subfamilies. The phylogenetic tree was constructed with MEGA4, using the Poisson correction model, pairwise deletion and 500 replicates. Only values ≥ 50% are shown.
Figure 3Enzyme activity plate assays of . WT refers to A. niger N593 transformed with the empty vector pALIV.
Figure 4Laccase activity (units mg. The embedded table shows the average (Av.), the average of the five best producers (Av. TOP 5), the median and the higher levels (Max.) of McoA secreted by each group of transformants.
Figure 5McoB (mg L. The concentration of NaNO3 and (NH4)2 tartrate was 70 mM. CAA as a supplement was used in a final concentration of 0.1%.
Primers used in this work for the amplification of the MCO coding genes in A. niger N593 strain
| Gene | Primer | Sequence |
|---|---|---|
| mcoA-Fw | 5'-GACAACTTAATTAACCACCATGTCGCCCTTTCAATTCGGAC-3' | |
| mcoA-Rv | 5'-TGTACAGCGGCCGCTCAGGAATCAGAGAGCTGGTACT-3' | |
| mcoB-Fw | 5'-GACAACTTAATTAACCACCATGAGTATATCTCAGAGCAGGC-3' | |
| mcoB-Rv | 5'-TGTACAGCGGCCGC CTAGATTGGCATCACTGGCAAC-3' | |
| mcoC-Fw | 5'-GACAACTTAATTAACCACCATGAAGTGGTCCCATCCCAAC-3' | |
| mcoC-Rv | 5'-TGTACAGCGGCCGCCTAGTCAAAGCTAGGATGATCCA-3' | |
| mcoD-Fw | 5'-GACAACTTAATTAACCACCATGCACTTGCATACTATCCTGG-3' | |
| mcoD-Rv | 5'-TGTACAGCGGCCGCTTAGATACCAGAATCATCCTCCTC-3' | |
| mcoE-Fw | 5'-GACAACTTAATTAACCACCATGCAGCAGTCACCGTCGTTC-3' | |
| mcoE-Rv | 5'-TGTACAGCGGCCGCTTACATCTGCAATAGCATGGCCA-3' | |
| mcoF-Fw | 5'-GACAACTTAATTAACCACCATGTGGTTTTCTGTCTATTTCCTT-3' | |
| mcoF-Rv | 5'-TGTACAGCGGCCGC TCAAACACCCGAATCGTGCTGC-3' | |
| mcoG-Fw | 5'-GACAACTTAATTAACCACCATGACAATCTTTTTGCTACTCCTTGG-3' | |
| mcoG-Rv | 5'-TGTACAGCGGCCGCTTATATACCCGACTCGTATGGCC-3' | |
| mcoI-Fw | 5'-GACAACTTAATTAACCACCATGACTAGAACCCCACAAGTGA-3' | |
| mcoI-Rv | 5'-TGTACAGCGGCCGCTTACACTCCGGAATCAATCTG-3' | |
| mcoJ-Fw | 5'-GACAACTTAATTAACCACCATGCTTTTGGAAATTTGCTGGACAG-3' | |
| mcoJ-Rv | 5'-TGTACAGCGGCCGCTCAGACTCCAGAATCATCTTGGAA-3' | |
| mcoM-Fw | 5'-GACAACTTAATTAACCACCATGACTCTACAAACCTACCTT-3' | |
| mcoM-Rv | 5'-TGTACAGCGGCCGCTCAAATCCCCGAATCATCCTG-3' | |
Figure 6Cloning strategy for the construction of .
Figure 7Cloning strategy for the construction of .