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April 23, 2026ACS Sustainable Chemistry & Engineering2 citations

Betaine-Enhanced Mixed Culture Production of Polyhydroxyalkanoates from Saline Organic Waste: Overcoming Osmotic Stress for Sustainable Bioplastics

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ZWZifan WangQWQinxue WenBLBaozhen Liu

Key Points

  • The research aims to explore the role of betaine in enhancing PHA production from mixed cultures in saline environments.
  • Investigated the impact of betaine on PHA biosynthesis and microbial community structure in high-salinity conditions.
  • Conducted metagenomic and metabolic analyses to assess changes in cellular carbon flux and gene expression.
  • Performed life cycle assessment to evaluate environmental impacts of betaine-enhanced processes.
  • Betaine addition increased maximum PHA production by over 40% compared to the control group.
  • Reshaped the microbial community, enriching salt-tolerant PHA producers such as Paracoccus.
  • Life cycle assessment showed a 13-15% reduction in environmental impact with betaine enhancement.

Abstract

Microbial production of biodegradable polyhydroxyalkanoates (PHAs) by a mixed culture (MC) from waste streams offers a sustainable solution to plastic pollution. A high-salinity environment can not only selectively enrich PHA-producing MCs by inhibiting non-PHA producers but also hinder microbial activity and PHA biosynthesis. This study investigated the effectiveness and underlying mechanisms of betaine addition in mitigating inhibition caused by high salinity without compromising selectivity, thereby enhancing the high-salinity MC PHA production. Betaine addition improved volatile fatty acid-to-PHA conversion efficiency and increased maximum PHA production by over 40% compared with the control (without betaine). It reshaped the microbial community, selectively enriching betaine-dependent, salt-tolerant PHA producers, such as Paracoccus. Metagenomic and metabolic analyses revealed betaine redirected cellular carbon flux toward PHA synthesis, evidenced by upregulated key synthesis genes. Betaine also alleviated osmotic stress by preferential cellular uptake, enhanced antioxidant defense, refined extracellular polymeric substance structure, and increased NADH/NADPH levels, thereby sustaining ATP generation and PHA synthesis. Life cycle assessment demonstrated that betaine-enhanced processes reduced environmental impact by 13–15% compared with the process without betaine. These findings identify betaine as an economical and effective strategy to overcome the inhibitory effects of high salinity in MC PHA production, enabling the conversion of saline organic wastes into valuable biodegradable polymers.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69e9b80e85696592c86eb8e3https://doi.org/10.1021/acssuschemeng.5c13300
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