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Oyster Mushroom · 2025 · Journal Article

High relevance

Optimization and Hepatoprotective Potential of Sulfated Polysaccharide From Pleurotus ostreatus.

Pleurotus ostreatus

Immune supportMetabolic healthLiver support
SpeciesOyster Mushroom
JournalChemistry & biodiversity
Year2025

Key points

  • In this study, we explored an efficient method for synthesizing sulfated Pleurotus ostreatus polysaccharides (SPOP) with a higher degree of substitution
  • The structure conformation was characterized and confirmed by the Fourier transform infrared (FT-IR) spectroscopy analysis
  • A three-factor-three-level Box-Behnken design (BBD) was successfully applied to optimize the SPOP synthesis process
  • Under the optimal conditions, including a ratio of pyridine to chlorosulfonic acid of 5.10:1, a reaction temperature of 59.92°C, and a reaction time of 3.05 h, the predicted maximum degree of sulfate substitution (DS) reached 0.423 ± 0.006
  • Furthermore, we evaluated the in vitro radical scavenging abilities and in vivo anti-acute liver injury (anti-ALI) effects of SPOP. The results showed that SPOP demonstrated significantly superior hepatoprotective effects against CCl 4 -induced liver damage, specifically by enhancing antioxidant activities both in vitro and in vivo, as well as improving hepatic functions
  • Our findings suggested that SPOP exhibited significant potential as a natural therapeutic agent for ALI and its associated complications, and contributed to the potential antioxidant capacities

Metadata-grounded summary

Citation abstract

In this study, we explored an efficient method for synthesizing sulfated Pleurotus ostreatus polysaccharides (SPOP) with a higher degree of substitution. The structure conformation was characterized and confirmed by the Fourier transform infrared (FT-IR) spectroscopy analysis. A three-factor-three-level Box-Behnken design (BBD) was successfully applied to optimize the SPOP synthesis process. Under the optimal conditions, including a ratio of pyridine to chlorosulfonic acid of 5.10:1, a reaction temperature of 59.92°C, and a reaction time of 3.05 h, the predicted maximum degree of sulfate substitution (DS) reached 0.423 ± 0.006. Furthermore, we evaluated the in vitro radical scavenging abilities and in vivo anti-acute liver injury (anti-ALI) effects of SPOP. The results showed that SPOP demonstrated significantly superior hepatoprotective effects against CCl 4 -induced liver damage, specifically by enhancing antioxidant activities both in vitro and in vivo, as well as improving hepatic functions. Our findings suggested that SPOP exhibited significant potential as a natural therapeutic agent for ALI and its associated complications, and contributed to the potential antioxidant capacities.

Citation

Xu WX, Guo XH, Li XY, Bao ST, Zhang JJ (2025). Optimization and Hepatoprotective Potential of Sulfated Polysaccharide From Pleurotus ostreatus. Chemistry & biodiversity https://doi.org/10.1002/cbdv.202500031 PMID: 40581949

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