摘要
Nitrogenase catalyzes the reduction of dinitrogen (N2) to ammonia via proton-coupled electron transfer at the FeMo-cofactor (FeMo-co). However, the sequence of H2 evolution and N2 activation at the key E4 intermediate remains highly debated. To address this, we employ a multiscale computational approach combining broken-symmetry DFT (BS-DFT, TPSSh), QM/MM, and molecular dynamics (MD) simulations to investigate the electronic structure and reactivity of the E4 state. Our analysis reveals the lowest-energy electronic configuration, showing that protonation localizes two hydrides on the FeMo-co. MD simulations indicate that N2 preferentially prebinds near the Fe2–Fe6 edge, stabilized by residues α-Val70 and α-His195. A quantitative comparison of mechanistic pathways demonstrates that reductive H2 elimination (barrier = 7.4 kcal mol–1) preceding N2 binding (8.0 kcal mol–1) is strongly favored over direct N2 binding first (barrier = 17.0 kcal mol–1), supporting an “H2-first” (Janus) model. Subsequent N2 hydrogenation proceeds through distinct η1- and μ2-bound intermediates that channel reactivity toward distal (kinetically favored) or alternating (thermodynamically favored) pathways. These results provide a unified framework for E4-state reactivity, establishing that H2 evolution is crucial for efficient N2 binding and activation at the Fe2 site.
| 源语言 | 英语 |
|---|---|
| 页(从-至) | 1224-1238 |
| 页数 | 15 |
| 期刊 | ACS Catalysis |
| 卷 | 16 |
| 期 | 2 |
| DOI | |
| 出版状态 | 已出版 - 16 1月 2026 |
指纹
探究 'Mechanistic Insights into Nitrogenase-Catalyzed Nitrogen Fixation: A QM/MM Study' 的科研主题。它们共同构成独一无二的指纹。引用此
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