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April 26, 2026Environmental Science and Ecotechnology0 citationsOpen Access

Quorum sensing for carbon-neutral wastewater treatment: Mechanisms, challenges, technological pathways, and future prospects

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WWWenqian WangYWYongmei WangFXFeng Xiao-Chi

Key Points

  • This research discusses how quorum sensing affects greenhouse gas emissions and energy consumption in wastewater treatment.
  • Synthesize recent advancements in quorum sensing and its effects on wastewater treatment processes.
  • Analyze the dual control mechanisms of signaling molecules on nitrous oxide and methane emissions.
  • Evaluate the role of microbial networks in energy efficiency and sludge management.
  • Quorum sensing significantly regulates N 2 O production and suppresses CH 4 escape, both of which are critical greenhouse gases.
  • Enhanced microbial granulation via quorum sensing reduces aeration energy demands in treatment processes.
  • Targeted quorum sensing in anaerobic digestion increases methane recovery, aiding in energy offset.

Abstract

Global climate targets demand a rapid transition to carbon neutrality across all industrial sectors, including wastewater management. Wastewater treatment plants are historically energy-intensive and remain significant sources of potent greenhouse gases, primarily nitrous oxide (N 2 O) and methane (CH 4 ). Recent biological interventions have targeted quorum sensing (QS)—a microbial communication mechanism regulating gene expression and community behavior—to optimize biological treatment efficiency. However, the highly context-dependent and sometimes paradoxical effects of QS on simultaneous greenhouse gas mitigation and energy recovery remain poorly resolved. Here we synthesize recent advancements to show that QS operates as a master biological regulator of both direct emissions and energy consumption in wastewater ecosystems. Evidence indicates that QS distinctly modulates N 2 O production through concentration- and signal-dependent pathways, while actively suppressing CH 4 escape and enhancing aerobic granulation to cut aeration energy demands. Furthermore, targeted QS deployment in anaerobic digestion accelerates direct interspecies electron transfer, substantially boosting methane recovery to offset operational energy use. These insights reveal that manipulating microbial social networks presents a viable, albeit complex, biological lever for balancing emission reductions with energy optimization. Ultimately, precision control of QS systems offers a transformative technological pathway for achieving carbon-positive wastewater infrastructure. • Quorum sensing dictates greenhouse gas emissions and energy demands in wastewater facilities. • Signaling molecules exert highly context-dependent dual control over N 2 O and CH 4 emissions. • Modulating microbial networks reduces energy consumption via enhanced sludge granulation. • Directed quorum sensing boosts methane recovery by facilitating interspecies electron transfer.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69edac074a46254e215b3dd4https://doi.org/10.1016/j.ese.2026.100701
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