Insights into Laccase Engineering from Molecular Simulations: Toward a Binding-Focused Strategy
Выводы для инженерии лакказ на основе молекулярного моделирования: к стратегии, ориентированной на связывание
2015-03-30
SCID: 54.1/v8mqjmm5
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T1 copper redox potentialdirected evolutionlaccase engineeringmolecular simulationssubstrate binding
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Abstract (AI)
Understanding the molecular determinants of enzyme performance is of primary importance for the rational design of ad hoc mutants. A novel approach, which combines efficient conformational sampling and quick reactivity scoring, is used here to shed light on how substrate oxidation was improved during the directed evolution experiment of a fungal laccase (from Pycnoporus cinnabarinus), an industrially relevant class of oxidoreductases. It is found that the enhanced activity of the evolved enzyme is mainly the result of substrate arrangement in the active site, with no important change in the redox potential of the T1 copper. Mutations at the active site shift the binding mode into a more buried substrate position and provide a more favorable electrostatic environment for substrate oxidation. As a consequence, engineering the binding event seems to be a viable way to in silico evolution of oxidoreductases.
Key Findings
1
A combined approach using efficient conformational sampling and rapid reactivity scoring clarifies molecular determinants of improved laccase activity.
2
Active-site mutations shift the substrate toward a more buried binding position and create a more favorable electrostatic environment for oxidation.
3
Engineering substrate binding is indicated as a viable strategy for the in silico evolution of oxidoreductases.
4
Enhanced activity in the evolved Pycnoporus cinnabarinus laccase primarily results from improved substrate arrangement rather than significant changes in T1 copper redox potential.
Research Object
an evolved fungal laccase from Pycnoporus cinnabarinus and its substrate-binding active site
Research Subject
the molecular determinants of enhanced substrate-oxidation activity, particularly active-site substrate arrangement, binding depth, and electrostatic environment versus T1 copper redox potential
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2015-03-30
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