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◇ bioRxiv2026-09-05· biophysics

Catalytic and inhibitory architecture of comammox ammonia monooxygenase

T.-Q. Mao, X. Yang, Z.-C. He, J. Yang, R. Wu, K. M. Y. Leung, S. Li, P. Han, W. Peng, Z. Li

原始摘要(英文原文)· Original abstract
Complete ammonia oxidizers (comammox) are widespread nitrifiers that can dominate ammonia oxidation in diverse environments by efficiently converting ammonia to nitrate within a single cell, yet the molecular basis distinguishing their ammonia monooxygenase (AMO) from those of canonical bacterial AMO remains unresolved. Here we report cryo-electron microscopy (cryo-EM) structures of AMO from the comammox Nitrospira inopinata (NiAMO) in inhibitor-free and allylthiourea (ATU)-bound states at 2.47 and 2.68 angstrom, respectively. NiAMO displays distinctive auxiliary-subunit organization, copper-site configuration and hydrophobic-channel architecture. Integrative molecular dynamics (MD) and quantum mechanics/molecular mechanics (QM/MM) calculations support a methyl-plastoquinol (methyl-PQH2)-coupled, CuD-centric catalytic model, with CuC potentially facilitating quinone redox cycling. N. inopinata exhibited broad susceptibility to several known nitrification inhibitors, and ATU-bound NiAMO structure localized the inhibitor to the CuC-CuD region, accompanied by constriction of the hydrophobic channel, which is consistent with the competitive role of ATU demonstrated in recovery assays. Multi-omics analyses further revealed an energy-limited stress response to ATU, including induction of urea transport and utilization systems. Collectively, these findings define a methyl-PQ-linked catalytic and inhibitor-responsive architecture of comammox AMO and establish a mechanistic framework for lineage-aware management of nitrification in natural and engineered ecosystems.
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