Protein effects in the activation of dioxygen by methane monooxygenase (MMO) were investigated by using combined QM/MM and broken-symmetry Density Functional Theory (DFT) methods. The effects of a novel empirical scheme recently developed by our group on the relative DFT energies of the various intermediates in the catalytic cycle are investigated. Inclusion of the protein leads to much better agreement between the experimental and computed geometric structures for the reduced form (MMOH(red)). Analysis of the electronic structure of MMOH(red) reveals that the two iron atoms have distinct environments. Different coordination geometries tested for the MMOH(peroxo) intermediate reveal that, in the protein environment, the mu-eta2,eta2 structure is more stable than the others. Our analysis also shows that the protein helps to drive reactants toward products along the reaction path. Furthermore, these results demonstrate the importance of including the protein environment in our models and the usefulness of the QM/MM approach for accurate modeling of enzymatic reactions. A discrepancy remains in our calculation of the Fe-Fe distance in our model of HQ as compared to EXAFS data obtained several years ago, for which we currently do not have an explanation.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC2517126PMC
http://dx.doi.org/10.1021/ja0654074DOI Listing

Publication Analysis

Top Keywords

methane monooxygenase
8
protein environment
8
protein
5
intermediates dioxygen
4
dioxygen activation
4
activation methane
4
monooxygenase qm/mm
4
qm/mm study
4
study protein
4
protein effects
4

Similar Publications

The Cu site in particulate methane monooxygenase may be used to produce hydrogen peroxide.

Dalton Trans

January 2025

Department of Computational Chemistry, Lund University, Chemical Centre, P. O. Box 124, SE-221 00 Lund, Sweden.

Particulate methane monooxygenase (pMMO) is the most efficient of the two groups of enzymes that can hydroxylate methane. The enzyme is membrane bound and therefore hard to study experimentally. For that reason, there is still no consensus regarding the location and nature of the active site.

View Article and Find Full Text PDF

Direct Methane to Methanol Conversion: An Overview of Non-Syn Gas Catalytic Strategies.

Chem Rec

January 2025

Bioinspired & Biomimetic Inorganic Chemistry Laboratory, Department of Chemistry, National Institute of Technology Calicut, Kozhikode, Kerala, 673601, India.

Direct methane to methanol conversion is a dream reaction in industrial chemistry, which takes inspiration from the biological methanol production catalysed by methane monooxygenase enzymes (MMOs). Over the years, extensive studies have been conducted on this topic by bioengineering the MMOs, and tailoring methods to isolate the MMOs in the active form. Similarly, remarkable achievements have been noted in other methane activation strategies such as the use of heterogeneous catalysts or molecular catalysts.

View Article and Find Full Text PDF

The Ru(IV,IV), Ru(III,IV), and Ru(III,III) complexes with the doubly oxido- and/or hydroxido-bridged diamond core {Ru(μ-O(H))}, bridged by an η:η:μ-type bidentate sulfato ligand, [{Ru(L)}(μ-O)(μ-OSO)] ( = 1: [III,IV]; = 2: [IV,IV]), [{Ru(L)}(μ-O)(μ-OH)(μ-OSO)] ([III,IV_1H]), and [{Ru(L)}(μ-OH)(μ-OSO)] ([III,III_2H]) (L = ethylbis(2-pyridylmethyl)amine), were synthesised as ClO-salts, and their crystal and electronic structures investigated. The corresponding hydrogencarbonato-bridged Ru(III,III) complex, [{Ru(L)}(μ-OH)(μ-OCOH)] ([III,III(HCO3)_2H]), was also prepared and its crystallographic and electronic structures compared to those of the sulfato-bridged system, [III,III_2H]. All the sulfato-bridged complexes isolated were confirmed in the Pourbaix diagram, wherein the redox potential was plotted as a function of pH.

View Article and Find Full Text PDF

Structures of methane and ammonia monooxygenases in native membranes.

Proc Natl Acad Sci U S A

January 2025

Departments of Molecular Biosciences and of Chemistry, Northwestern University, Evanston, IL 60208.

Methane- and ammonia-oxidizing bacteria play key roles in the global carbon and nitrogen cycles, respectively. These bacteria use homologous copper membrane monooxygenases to accomplish the defining chemical transformations of their metabolisms: the oxidations of methane to methanol by particulate methane monooxygenase (pMMO) and ammonia to hydroxylamine by ammonia monooxygenase (AMO), enzymes of prime interest for applications in mitigating climate change. However, investigations of these enzymes have been hindered by the need for disruptive detergent solubilization prior to structure determination, confounding studies of pMMO and precluding studies of AMO.

View Article and Find Full Text PDF

Membrane photobioreactor for biogas capture and conversion - Enhanced microbial interaction in biofilm.

Bioresour Technol

December 2024

Nanyang Environment & Water Research Institute, Nanyang Technological University, 1 Cleantech Loop, Singapore 637141, Singapore; School of Civil and Environmental Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore. Electronic address:

The urgency to mitigate greenhouse gas emissions has driven interest in sustainable biogas utilization. This study investigates a 1 L enclosed membrane photobioreactor (MPBR) using a microalgae-methanotroph coculture for biogas capture. Operating with a hydraulic and solid retention time of 7 days and a biogas loading rate of 2.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!