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May 11, 2026ACS Sustainable Resource Management0 citations

From Watermelon Liquid Fraction Waste to Value: Modulation of Microalgal Lipid and EPS Profiles by Light and Carbon Sources

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PSPaolina ScarponiVDVeronica D’EusanioMCMaria R. Cramarossa

Key Points

  • This study examines how watermelon liquid fraction waste can be utilized as a carbon source to enhance microalgal cultures and their product profiles.
  • Cultivation of Chlorella vulgaris and Scenedesmus sp. using watermelon liquid fraction waste as a substrate.
  • Evaluation of biomass production, lipid accumulation, and EPS synthesis under white light and red-blue light conditions.
  • Analysis of EPS composition using GC-MS and FTIR techniques.
  • EPS yields under RLBL reached 2.76 g L−1 for Chlorella and 5.03 g L−1 for Scenedesmus, doubling the yields compared to white light.
  • Lipid profiling showed RLBL enhanced monounsaturated fatty acids in Scenedesmus and increased oleic acid in Chlorella.
  • Distinct variations in EPS composition were found, with enhanced glucose content under RLBL.

Abstract

Watermelon cultivation generates substantial seasonal residues that are often discarded in fields, where their high sugar content may cause adverse environmental impacts. This study aimed to investigate the biotechnological valorization of watermelon liquid fraction waste (WLFW) within a circular economy framework by using it as a carbon-rich substrate for the cultivation of Chlorella vulgaris and Scenedesmus sp. under two light regimes: white light (WL) and red-blue light (RLBL). The effects of light quality on biomass production, lipid accumulation, and extracellular polysaccharide (EPS) synthesis were evaluated. Under RLBL irradiation, EPS yields reached 2.76 ± 0.36 g L−1 for Chlorella and 5.03 ± 0.37 g L−1 for Scenedesmus, representing up to a two-fold increase compared to WL conditions. GC-MS and FTIR analyses revealed distinct light-dependent variations in EPS composition, with RLBL promoting glucose enrichment in both strains. Lipid profiling indicated strain-specific responses: RLBL enhanced monounsaturated fatty acid synthesis in Scenedesmus and increased oleic acid accumulation in Chlorella. Overall, these findings demonstrate that light quality modulates EPS structure and composition, highlighting the potential of WLFW-fed microalgal cultures for applications in industrial and biotechnological sectors.

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Cite This Study

Scarponi et al. (2026) studied this question.

synapsesocial.com/papers/6a0171473a9f334c28271a2ahttps://doi.org/10.1021/acssusresmgt.5c00649
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