| Literature DB >> 28875401 |
Jie Li1,2,3, Yanan Xie1,2,3, Rui Wang1,2,3, Zemin Fang1,2,3, Wei Fang1,2,3, Xuecheng Zhang4,5,6, Yazhong Xiao7,8,9.
Abstract
Laccase (benzenediol: oxygen oxidoreductases, EC1.10.3.2) is a multi-copper oxidase capable of oxidizing a variety of phenolic and other aromatic organic compounds. The catalytic power of laccase makes it an attractive candidate for potential applications in many areas of industry including biodegradation of organic pollutants and synthesis of novel drugs. Most laccases are vulnerable to high salt and have limited applications. However, some laccases are not only tolerant to but also activated by certain concentrations of salt and thus have great application potential. The mechanisms of salt-induced activity enhancement of laccases are unclear as yet. In this study, we used dynamic light scattering, size exclusion chromatography, analytical ultracentrifugation, intrinsic fluorescence emission, circular dichroism, ultraviolet-visible light absorption, and an enzymatic assay to investigate the potential correlation between the structure and activity of the marine-derived laccase, Lac15, whose activity is promoted by low concentrations of NaCl. The results showed that low concentrations of NaCl exert little influence on the protein structure, which was partially folded in the absence of the salt; moreover, the partially folded rather than the fully folded state seemed to be favorable for enzyme activity, and this partially folded state was distinctive from the so-called 'molten globule' occasionally observed in active enzymes. More data indicated that salt might promote laccase activity through mechanisms involving perturbation of specific local sites rather than a change in global structure. Potential binding sites for chloride ions and their roles in enzyme activity promotion are proposed.Entities:
Keywords: Intrinsically disordered protein; Laccase; Marine; Molten globule; Salt; Structure
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Year: 2017 PMID: 28875401 DOI: 10.1007/s00249-017-1251-5
Source DB: PubMed Journal: Eur Biophys J ISSN: 0175-7571 Impact factor: 1.733