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Structural insights into the iron nitrogenase complex.


ABSTRACT: Nitrogenases are best known for catalyzing the reduction of dinitrogen to ammonia at a complex metallic cofactor. Recently, nitrogenases were shown to reduce carbon dioxide (CO2) and carbon monoxide to hydrocarbons, offering a pathway to recycle carbon waste into hydrocarbon products. Among the three nitrogenase isozymes, the iron nitrogenase has the highest wild-type activity for the reduction of CO2, but the molecular architecture facilitating these activities has remained unknown. Here, we report a 2.35-Å cryogenic electron microscopy structure of the ADP·AlF3-stabilized iron nitrogenase complex from Rhodobacter capsulatus, revealing an [Fe8S9C-(R)-homocitrate] cluster in the active site. The enzyme complex suggests that the iron nitrogenase G subunit is involved in cluster stabilization and substrate channeling and confers specificity between nitrogenase reductase and catalytic component proteins. Moreover, the structure highlights a different interface between the two catalytic halves of the iron and the molybdenum nitrogenase, potentially influencing the intrasubunit 'communication' and thus the nitrogenase mechanism.

SUBMITTER: Schmidt FV 

PROVIDER: S-EPMC10803253 | biostudies-literature | 2024 Jan

REPOSITORIES: biostudies-literature

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Structural insights into the iron nitrogenase complex.

Schmidt Frederik V FV   Schulz Luca L   Zarzycki Jan J   Prinz Simone S   Oehlmann Niels N NN   Erb Tobias J TJ   Rebelein Johannes G JG  

Nature structural & molecular biology 20231207 1


Nitrogenases are best known for catalyzing the reduction of dinitrogen to ammonia at a complex metallic cofactor. Recently, nitrogenases were shown to reduce carbon dioxide (CO<sub>2</sub>) and carbon monoxide to hydrocarbons, offering a pathway to recycle carbon waste into hydrocarbon products. Among the three nitrogenase isozymes, the iron nitrogenase has the highest wild-type activity for the reduction of CO<sub>2</sub>, but the molecular architecture facilitating these activities has remaine  ...[more]

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