Díaz Rubén, Díaz-Godínez Gerardo, Anducho-Reyes Miguel Angel, Mercado-Flores Yuridia, Herrera-Zúñiga Leonardo David
Laboratory of Biotechnology, Research Center for Biological Sciences, Autonomous University of Tlaxcala, Tlaxcala, Mexico.
Agrobiotechnology Laboratory, Polytechnic University of Pachuca, Hidalgo, Mexico.
Front Microbiol. 2018 Nov 14;9:2743. doi: 10.3389/fmicb.2018.02743. eCollection 2018.
Fungal laccase enzymes have a great biotechnological potential for bioremediation processes due to their ability to degrade compounds such as ρ-diphenol, aminophenols, polyphenols, polyamines, and aryldiamines. These enzymes have activity at different pH and temperature values, however, high temperatures can cause partial or total loss of enzymatic activity, so it is appropriate to do research to modify their secondary and/or tertiary structure to make them more resistant to extreme temperature conditions. , a structure of the Lacc 6 enzyme of was constructed using a laccase of as a template. From this structure, 16 mutants with possible resistance at high temperature due to ionic interactions, salt bridges and disulfide bonds were also obtained . It was determined that 12 mutants called 4-DB, 3-DB, D233C-T310C, F468P, 3-SB, L132T, N79D, N372D, P203C, P203V, T147E, and W85F, presented the lowest thermodynamic energy. Based on the previous criterion and determining the least flexibility in the protein structures, three mutants (4-DB, 3-DB, and P203C) were selected, which may present high stability at high temperatures without affecting their active site. The obtained results allow the understanding of the molecular base that increase the structural stability of the enzyme Lacc 6 of , achieving the generation of mutants, which could have activity at high temperatures.
真菌漆酶由于能够降解对二酚、氨基酚、多酚、多胺和芳基二胺等化合物,在生物修复过程中具有巨大的生物技术潜力。这些酶在不同的pH和温度值下都有活性,然而,高温会导致酶活性部分或完全丧失,因此有必要进行研究来修饰它们的二级和/或三级结构,使其对极端温度条件更具抗性。以一种漆酶为模板构建了漆酶6的结构。从该结构中,还获得了16个由于离子相互作用、盐桥和二硫键而可能具有高温抗性的突变体。已确定12个名为4-DB、3-DB、D233C-T310C、F468P、3-SB、L132T、N79D、N372D、P203C、P203V、T147E和W85F的突变体具有最低的热力学能量。基于先前的标准并确定蛋白质结构中最小的柔韧性,选择了三个突变体(4-DB、3-DB和P203C),它们可能在高温下具有高稳定性而不影响其活性位点。所得结果有助于理解提高漆酶6结构稳定性的分子基础,实现能够在高温下具有活性的突变体的产生。