Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

CryoEM Structures of the Nitrogenase Complex During Catalytic Turnover

View through CrossRef
Abstract The enzyme nitrogenase couples adenosine triphosphate (ATP) hydrolysis to the multi-electron reduction of atmospheric dinitrogen into ammonia. Despite extensive research, the mechanistic details of ATP-dependent energy transduction and dinitrogen reduction by nitrogenase are not well understood, requiring new strategies to monitor its structural dynamics during catalytic action. Here we report the cryogenic electron microscopic interrogation of the nitrogenase complex under enzymatic turnover conditions, which has enabled the structural characterization of the nitrogenase reaction intermediates at high resolution for the first time. Our structures show that asymmetry governs all aspects of nitrogenase mechanism including ATP hydrolysis, protein-protein interactions, and catalysis. Furthermore, they reveal several previously unobserved, mechanistically relevant conformational changes near the catalytic iron-molybdenum cofactor that are correlated with the nucleotide-hydrolysis state of the enzyme. One-sentence summary High-resolution cryoEM structures of the nitrogenase complex obtained under turnover provide new mechanistic insights.
Title: CryoEM Structures of the Nitrogenase Complex During Catalytic Turnover
Description:
Abstract The enzyme nitrogenase couples adenosine triphosphate (ATP) hydrolysis to the multi-electron reduction of atmospheric dinitrogen into ammonia.
Despite extensive research, the mechanistic details of ATP-dependent energy transduction and dinitrogen reduction by nitrogenase are not well understood, requiring new strategies to monitor its structural dynamics during catalytic action.
Here we report the cryogenic electron microscopic interrogation of the nitrogenase complex under enzymatic turnover conditions, which has enabled the structural characterization of the nitrogenase reaction intermediates at high resolution for the first time.
Our structures show that asymmetry governs all aspects of nitrogenase mechanism including ATP hydrolysis, protein-protein interactions, and catalysis.
Furthermore, they reveal several previously unobserved, mechanistically relevant conformational changes near the catalytic iron-molybdenum cofactor that are correlated with the nucleotide-hydrolysis state of the enzyme.
One-sentence summary High-resolution cryoEM structures of the nitrogenase complex obtained under turnover provide new mechanistic insights.

Related Results

Comparing Multislice Projections of MD Simulations with CryoEM Exposes Structural Prediction Errors
Comparing Multislice Projections of MD Simulations with CryoEM Exposes Structural Prediction Errors
Abstract Cryo-electron microscopy (cryoEM) is a powerful tool for atomic- and molecular-resolution structure determination, while molecular dynamics (MD) simulation...
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...
PERPUTARAN KAS PERPUTARAN PERSEDIAAN DAN PERPUTARAN MODAL KERJA PADA GOFFE SAMARINDA
PERPUTARAN KAS PERPUTARAN PERSEDIAAN DAN PERPUTARAN MODAL KERJA PADA GOFFE SAMARINDA
Working capital turnover is very important for coffee shop because it affects a business's ability to survive and develop. Working capital is funds used to meet daily operational n...
Nitrogenase Complex
Nitrogenase Complex
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...
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...
Topaz-Denoise: general deep denoising models for cryoEM and cryoET
Topaz-Denoise: general deep denoising models for cryoEM and cryoET
AbstractCryo-electron microscopy (cryoEM) is becoming the preferred method for resolving protein structures. Low signal-to-noise (SNR) in cryoEM images reduces the confidence and t...
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...

Back to Top