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Nitrogenase Complex
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AbstractNitrogenases are a family of metalloenzymes that catalyse a key step in the global nitrogen cycle: theadenosine triphosphate (ATP)‐dependent reduction of dinitrogen (N2) to ammonia (NH3). The molybdenum (Mo)‐nitrogenase is the best characterised member of this enzyme family. It is a two‐component system comprising an iron (Fe) protein and a molybdenum‐iron (MoFe) protein, each containing FeS cluster(s) which are responsible for the electron flow during the process of substrate reduction. This article provides an overview of the current knowledge on the structure, assembly and catalysis of Mo‐nitrogenase, as well as a brief discussion of alternative substrates of nitrogenase and other members in this enzyme family.Key Concepts:The nitrogenase complex consists of two Fe protein dimers and one MoFe protein tetramer; each component harbours metallocluster(s) that mediate electron flow to the active centre within the complex.The active centre of Mo‐nitrogenase, designated the FeMoco or the M‐cluster, is a [MoFe7S9C‐homocitrate] cluster.Electrons are transferred from the [Fe4S4] cluster in the Fe protein to the P‐cluster and then the M‐cluster in the MoFe protein, where substrate reduction occurs.Nitrogenase catalyses the ATP‐dependent reduction of dinitrogen (N2) to ammonia (NH3) under ambient temperature and pressure.Nitrogenase has been found to catalyse the reduction of alternative substrates, such as H+, N3−, CN−, C2H2and CO.
Title: Nitrogenase Complex
Description:
AbstractNitrogenases are a family of metalloenzymes that catalyse a key step in the global nitrogen cycle: theadenosine triphosphate (ATP)‐dependent reduction of dinitrogen (N2) to ammonia (NH3).
The molybdenum (Mo)‐nitrogenase is the best characterised member of this enzyme family.
It is a two‐component system comprising an iron (Fe) protein and a molybdenum‐iron (MoFe) protein, each containing FeS cluster(s) which are responsible for the electron flow during the process of substrate reduction.
This article provides an overview of the current knowledge on the structure, assembly and catalysis of Mo‐nitrogenase, as well as a brief discussion of alternative substrates of nitrogenase and other members in this enzyme family.
Key Concepts:The nitrogenase complex consists of two Fe protein dimers and one MoFe protein tetramer; each component harbours metallocluster(s) that mediate electron flow to the active centre within the complex.
The active centre of Mo‐nitrogenase, designated the FeMoco or the M‐cluster, is a [MoFe7S9C‐homocitrate] cluster.
Electrons are transferred from the [Fe4S4] cluster in the Fe protein to the P‐cluster and then the M‐cluster in the MoFe protein, where substrate reduction occurs.
Nitrogenase catalyses the ATP‐dependent reduction of dinitrogen (N2) to ammonia (NH3) under ambient temperature and pressure.
Nitrogenase has been found to catalyse the reduction of alternative substrates, such as H+, N3−, CN−, C2H2and CO.
Related Results
Nitrogenase Assembly and CatalysisUpdate based on the original article by Yilin Hu, Benedikt Schmid & Markus W. Ribbe,Encyclopedia of Inorganic ChemistrySecond Edition, © 2005, John Wiley & Sons, Ltd
Nitrogenase Assembly and CatalysisUpdate based on the original article by Yilin Hu, Benedikt Schmid & Markus W. Ribbe,Encyclopedia of Inorganic ChemistrySecond Edition, © 2005, John Wiley & Sons, Ltd
AbstractNitrogenases catalyze the reduction of N2to NH3as well as the reduction of alternative substrates such as H+, C2H2, and CO. The best characterized molybdenum nitrogenase (M...
Ecosystem scale evidence for the contribution of vanadium-based nitrogenase to biological nitrogen fixation
Ecosystem scale evidence for the contribution of vanadium-based nitrogenase to biological nitrogen fixation
<p>Nitrogen is the primary limiting nutrient in high latitude ecosystems. Biological nitrogen fixation (BNF) by microorganisms associated with cryptogamic covers, suc...
Regulation of Three Nitrogenase Gene Clusters in the Cyanobacterium Anabaena variabilis ATCC 29413
Regulation of Three Nitrogenase Gene Clusters in the Cyanobacterium Anabaena variabilis ATCC 29413
The filamentous cyanobacterium Anabaena variabilis ATCC 29413 fixes nitrogen under aerobic conditions in specialized cells called heterocysts that form in response to an environmen...
Structural basis for the conformational protection of nitrogenase from O2
Structural basis for the conformational protection of nitrogenase from O2
The low reduction potentials required for the reduction of dinitrogen (N2) render metal-based nitrogen-fixation catalysts vulnerable to irreversible damage by dioxygen (O2). Such O...
CryoEM Structures of the Nitrogenase Complex During Catalytic Turnover
CryoEM Structures of the Nitrogenase Complex During Catalytic Turnover
Abstract
The enzyme nitrogenase couples adenosine triphosphate (ATP) hydrolysis to the multi-electron reduction of atmospheric dinitrogen into ammonia. Despite exte...
Regulation of V‐nitrogenase genes in Anabaena variabilis by RNA processing and by dual repressors
Regulation of V‐nitrogenase genes in Anabaena variabilis by RNA processing and by dual repressors
SummaryAnabaena variabilis ATCC 29413 fixes nitrogen in specialized cells called heterocysts using either a Mo‐nitrogenase or a V‐nitrogenase. V‐nitrogenase structural genes, vnfDG...
Studies on nitrogenase activity of diazotrophic isolates from different rice production systems
Studies on nitrogenase activity of diazotrophic isolates from different rice production systems
The present study was carried out to evaluate the nitrogen fixing ability of diazotrophs isolated from the rhizosphere soils of rice which were grown in three different rice growin...
Biosynthesis of Nitrogenase Cofactors
Biosynthesis of Nitrogenase Cofactors
Abstract
Nitrogenase harbors three distinct metal prosthetic groups that are required for its activity. The simplest one is a [4Fe-4S] cluster located at the Fe p...

