Quinone-heme π-π interactions bridge the biotic-abiotic interface for enhanced methanogenesis

Abstract Quinone-based conductive materials promote extracellular electron transfer and methanogenesis during anaerobic digestion, in which the materials mediates the transfer of electrons produced by exoelectrogens to electrotrophic methanogens. However, the electron transfer mechanism between quinone and electrotrophic methanogens at the biotic-abiotic interface remains elusive. In this study, an interface between reduced anthraquinone and Methanosarcina barkeri is established in a microbial electrolysis cell. Biomimetic experiments and characterization of isolated extracellular polymeric substances reveal electronic complementarity between the electron-donating π-system of reduced anthraquinone and the electron-accepting iron-porphyrin ring of heme, which may be released by cell lysis and retained within extracellular polymeric substances. This complementarity may promote π-π interactions that retain redox-active heme and facilitate electron transfer, consistent with lower interfacial resistance (34.3 versus 225 Ω) and 10.6-fold enhancement in cathodic methanogenesis. This study provides insight into quinone-mediated electron transfer at the biotic-abiotic interface and supports the design of electrode materials for bioelectrochemical systems.

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Publication Details

Journal
Nature Communications
Published
2026-09-01
DOI
https://doi.org/10.1038/s41467-026-77276-8
Primary Topic
Microbial Fuel Cells and Bioremediation
Type
article
Field-Weighted Citation Impact
0.00

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article

Quinone-heme π-π interactions bridge the biotic-abiotic interface for enhanced methanogenesis

Wenlong Lin, Yaobin Zhang, Zhiqiang Zhao, Zhihao Jiang et al.
Nature Communications
Microbial Fuel Cells and Bioremediation
article

Quinone-heme π-π interactions bridge the biotic-abiotic interface for enhanced methanogenesis

Wenlong Lin, Yaobin Zhang, Zhiqiang Zhao, Zhihao Jiang, Qilin Yu
article en

Abstract

Abstract Quinone-based conductive materials promote extracellular electron transfer and methanogenesis during anaerobic digestion, in which the materials mediates the transfer of electrons produced by exoelectrogens to electrotrophic methanogens. However, the electron transfer mechanism between quinone and electrotrophic methanogens at the biotic-abiotic interface remains elusive. In this study, an interface between reduced anthraquinone and Methanosarcina barkeri is established in a microbial electrolysis cell. Biomimetic experiments and characterization of isolated extracellular polymeric substances reveal electronic complementarity between the electron-donating π-system of reduced anthraquinone and the electron-accepting iron-porphyrin ring of heme, which may be released by cell lysis and retained within extracellular polymeric substances. This complementarity may promote π-π interactions that retain redox-active heme and facilitate electron transfer, consistent with lower interfacial resistance (34.3 versus 225 Ω) and 10.6-fold enhancement in cathodic methanogenesis. This study provides insight into quinone-mediated electron transfer at the biotic-abiotic interface and supports the design of electrode materials for bioelectrochemical systems.

Nature Communications
Dalian University of Technology (CN), Beijing Drainage Group (China) (CN), Taiyuan University of Science and Technology (CN), Taiyuan University of Technology (CN)
National Natural Science Foundation of China, National Key Research and Development Program of China
Openalex Percentile: Top 18%
Microbial Fuel Cells and Bioremediation
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Quinone-heme π-π interactions bridge the biotic-abiotic interface for enhanced methanogenesis — Wenlong Lin, Yaobin Zhang, et al. · Nature Communications (2026) | TGRS Research Map | TGRS