Structural and functional roles of glycosylation in fungal laccase from lentinus sp.

90Citations
Citations of this article
159Readers
Mendeley users who have this article in their library.

Abstract

Laccases are multi-copper oxidases that catalyze the oxidation of various organic and inorganic compounds by reducing O 2 to water. Here we report the crystal structure at 1.8 Å resolution of a native laccase (designated nLcc4) isolated from a white-rot fungus Lentinus sp. nLcc4 is composed of three cupredoxin-like domains D1-D3 each folded into a Greek key β-barrel topology. T1 and T2/T3 copper binding sites and three N-glycosylated sites at Asn 75, Asn 238, and Asn 458 were elucidated. Initial rate kinetic analysis revealed that the k cat, K m, and k cat /K m of nLcc4 with substrate ABTS were 3,382 s -1, 65.0 ± 6.5 μM, and 52 s -1 μM -1, respectively; and the values with lignosulfonic acid determined using isothermal titration calorimetry were 0.234 s -1, 56.7 ± 3.2 μM, and 0.004 s -1 μM -1, respectively. Endo H-deglycosylated nLcc4 (dLcc4), with only one GlcNAc residue remaining at each of the three N-glycosylation sites in the enzyme, exhibited similar kinetic efficiency and thermal stability to that of nLcc4. The isolated Lcc4 gene contains an open reading frame of 1563 bp with a deduced polypeptide of 521 amino acid residues including a predicted signaling peptide of 21 residues at the N-terminus. Recombinant wild-type Lcc4 and mutant enzymes N75D, N238D and N458D were expressed in Pichia pastoris cells to evaluate the effect on enzyme activity by single glycosylation site deficiency. The mutant enzymes secreted in the cultural media of P. pastoris cells were observed to maintain only 4-50% of the activity of the wildtype laccase. Molecular dynamics simulations analyses of various states of (de-)glycosylation in nLcc support the kinetic results and suggest that the local H-bond networks between the domain connecting loop D2-D3 and the glycan moieties play a crucial role in the laccase activity. This study provides new insights into the role of glycosylation in the structure and function of a Basidiomycete fungal laccase.

Cite

CITATION STYLE

APA

Maestre-Reyna, M., Liu, W. C., Jeng, W. Y., Lee, C. C., Hsu, C. A., Wen, T. N., … Shyur, L. F. (2015). Structural and functional roles of glycosylation in fungal laccase from lentinus sp. PLoS ONE, 10(4). https://doi.org/10.1371/journal.pone.0120601

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free