A novel bacterial protein family that catalyses nitrous oxide reduction.

He, Guang; Wang, Weijiao; Chen, Gao; Xie, Yongchao; Parks, Jerry M; Davin, Megan E; Hettich, Robert L; Konstantinidis, Konstantinos T et al. · Nature · 2025

basic_science · Level V

Where this comes from

Abstract

Nitrous oxide (N<sub>2</sub>O), a driver of global warming and climate change, has reached unprecedented concentrations in Earth's atmosphere<sup>1</sup>. Current N<sub>2</sub>O sources outpace N<sub>2</sub>O sinks, emphasizing the need for comprehensive understanding of processes that consume N<sub>2</sub>O. Microbes that express the enzyme N<sub>2</sub>O reductase (N<sub>2</sub>OR) convert N<sub>2</sub>O to climate change-neutral dinitrogen (N<sub>2</sub>). Known N<sub>2</sub>ORs belong to the canonical clade I and clade II NosZ reductases and are considered key enzymes for N<sub>2</sub>O reduction<sup>2-4</sup>. Here we report a previously unrecognized protein family with a role in N<sub>2</sub>O reduction, clade III lactonase-type N<sub>2</sub>OR (L-N<sub>2</sub>OR), which diverges in sequence from canonical NosZ but conserves three-dimensional protein structural features. Integrated physiological, metagenomic, proteomic and structural modelling studies demonstrate that L-N<sub>2</sub>ORs catalyse N<sub>2</sub>O reduction. L-N<sub>2</sub>OR genes occur in several phyla, predominantly in uncultured taxa with broad geographic distribution. Our findings expand the known diversity of N<sub>2</sub>ORs and implicate previously unrecognized taxa (for example, Nitrospinota) in N<sub>2</sub>O consumption. The expansion of N<sub>2</sub>OR diversity and the identification of a novel type of catalyst for N<sub>2</sub>O reduction advances the understanding of N<sub>2</sub>O sinks, has implications for greenhouse gas emission and climate change modelling, and expands opportunities for innovative biotechnologies aimed at curbing N<sub>2</sub>O emissions<sup>5,6</sup>.

Medical subject headings