Dimeric structures of quinol-dependent nitric oxide reductases (qNORs) revealed by cryo-electron microscopy.

Gopalasingam, Chai C; Johnson, Rachel M; Chiduza, George N; Tosha, Takehiko; Yamamoto, Masaki; Shiro, Yoshitsugu; Antonyuk, Svetlana V; Muench, Stephen P et al. · Sci Adv · 2019

basic_science · Level V

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Abstract

Quinol-dependent nitric oxide reductases (qNORs) are membrane-integrated, iron-containing enzymes of the denitrification pathway, which catalyze the reduction of nitric oxide (NO) to the major ozone destroying gas nitrous oxide (N<sub>2</sub>O). Cryo-electron microscopy structures of active qNOR from <i>Alcaligenes xylosoxidans</i> and an activity-enhancing mutant have been determined to be at local resolutions of 3.7 and 3.2 Å, respectively. They unexpectedly reveal a dimeric conformation (also confirmed for qNOR from <i>Neisseria meningitidis</i>) and define the active-site configuration, with a clear water channel from the cytoplasm. Structure-based mutagenesis has identified key residues involved in proton transport and substrate delivery to the active site of qNORs. The proton supply direction differs from cytochrome c-dependent NOR (cNOR), where water molecules from the cytoplasm serve as a proton source similar to those from cytochrome c oxidase.

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