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April 22, 2026Biology0 citationsOpen Access

Physiological and Transcriptomic Responses of Arthrospira platensis to Low-Density Polyethylene Microplastic Exposure

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STSekbunkorn TreenaratAPAuthen PromariyaWRWuttinun Raksajit

Key Points

  • This research aims to understand how low-density polyethylene microplastics affect the physiology and gene expression of Arthrospira platensis.
  • Cultures of A. platensis were exposed to various concentrations of LDPE microplastics (10–5000 mg/L) for 16 days.
  • Growth, biomass, and pigment content were measured alongside transcriptomic analysis.
  • Field-emission scanning electron microscopy was conducted to observe LDPE particle interactions.
  • Lower concentrations (10–1000 mg/L) had minimal effects on A. platensis growth and biomass, while higher concentrations (3000–5000 mg/L) significantly reduced growth and chlorophyll a levels.
  • At 5000 mg/L, biomass decreased to 1.47 g/L and chlorophyll a to 8.39 µg/mL, showing statistically significant drops compared to control.
  • Transcriptomic analysis revealed alterations in pathways related to nitrogen assimilation, photosynthesis, and stress responses.

Abstract

Microplastics (MPs), particularly low-density polyethylene (LDPE), are widespread pollutants in aquatic environments and may affect cyanobacterial physiology. This study investigated the concentration-dependent effects of LDPE-MPs on the physiology and transcriptomic responses of Arthrospira platensis. Cultures were exposed to 10–5000 mg/L LDPE-MPs (nominal size ≤ 500 µm) for 16 days. Low to moderate concentrations (10–1000 mg/L) produced minimal effects on growth, biomass accumulation, or pigment contents. In contrast, higher concentrations (3000–5000 mg/L) were associated with reduced growth and biomass, accompanied by declines in chlorophyll a (Chl a) and phycobiliproteins over time. By day 16 at 5000 mg/L, biomass and Chl a decreased to 1.47 ± 0.03 g/L and 8.39 ± 0.24 µg/mL, respectively, compared with 1.64 ± 0.04 g/L and 10.81 ± 0.52 µg/mL in the control (p < 0.05). Accordingly, Chl a yield decreased by 13%. Field-emission scanning electron microscopy revealed adhesion of LDPE particles to filament surfaces and the formation of extracellular polymeric substance (EPS)-rich aggregates, which may influence light availability and nutrient exchange. Transcriptomic analysis indicated changes in several metabolic pathways, including nitrogen assimilation, photosynthetic electron transport, carbon metabolism, and metal homeostasis, together with differential expression of genes related to stress responses and EPS biosynthesis. Overall, these findings suggest that relatively high concentrations of LDPE microplastics may influence physiological and metabolic processes in A. platensis.

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Cite This Study

Treenarat et al. (2026) studied this question.

synapsesocial.com/papers/69e866f16e0dea528ddeb480https://doi.org/10.3390/biology15080653
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