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Updated: Jun 14, 2026

Coupling Carbon Capture from a Power Plant with Semi-automated Open Raceway Ponds for Microalgae Cultivation
Published on: August 14, 2020
Algal community composition drives lake greenhouse gas emissions via dissolved organic matter transformation and
Weiqiao Wang1, Xin Sun1, Ran Hao1
1School of Environmental and Municipal Engineering, Xi'an University of Architecture and Technology, 13 Yanta Road, Xi'an, 710055, China.
Abstract:
Lakes are important sources of greenhouse gases, yet bloom-driven emissions are often assessed from total algal biomass, ignoring algal functional composition. This study examined how cyanobacteria (Microcystis aeruginosa), green algae (Chlorella vulgaris), diatoms (Cyclotella meneghiniana), and dominance-based mixtures regulate DOM transformation and CO2/N2O production under eutrophic conditions. It integrated to pure-culture experiments, water-sediment microcosms, sterilization controls, DOM fluorescence spectroscopy, gas monitoring, and metagenomics to resolve an algae-DOM-microbe-gas cascade. Cyanobacteria produced protein-like DOM and stimulated carbon mineralization, with CO2 exceeding 20 mmol L-1 by day 36; cyanobacteria-dominant mixtures followed a similar high-CO2 trajectory. Green algae generated tyrosine-like DOM and caused the strongest NO2- accumulation, reaching 5.21 mg L-1 by day 21, corresponding to the highest N2O production; this pattern also occurred in green-algae-dominant mixtures. Diatom-only and diatom-dominant treatments favored humic-like DOM, organic carbon retention, and the weakest short-term CO2/N2O accumulation. Sterilization reduced inorganic carbon and greenhouse gas production, supporting microbial control. Background summer metagenomics provided functional context, showing algal-DOM turnover potential through carbon metabolism, glycolysis/gluconeogenesis, pyruvate metabolism, and the TCA cycle, while nirK and other nitrogen genes indicated capacity for substrate-driven incomplete nitrogen reduction. Functional differentiation among Candidatus_Planktophila, Limnohabitans, Rhodoferax, and Cyanobium linked DOM processing with potential gas-production pathways. These results show algal community composition, rather than biomass alone, regulates greenhouse gas production by shaping DOM quality, nutrient intermediates, and microbial C-N pathways. Incorporating algae composition into greenhouse gas assessment, this novel algae-DOM-microbe-gas framework provides mechanistic support for improving eutrophication management and lake-emission mitigation.
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