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Journal of Natural Products· 2026Q1

Hydroxypheophytin a Stereoisomers as Principal Bioactive Compounds from Spirulina for the Reduction of Lipids and Appetite

C. Filipe Henriques, Ana C. Fonseca, Tiago Ribeiro, Diogo Ferreira-Martins et al.

Short summary

Stereoisomers of 132-hydroxypheophytin a (132-hpa) from Spirulina exhibit distinct lipid-reducing and appetite-suppressing activities, with 132-(R)-hpa being seven times more potent in lipid reduction (EC50 = 1.7 μM) than 132-(S)-hpa (EC50 = 11.7 μM).

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Key points

  • 132-(R)-hydroxypheophytin a (132-hpa) showed seven times higher lipid-reducing potential (EC50 = 1.7 μM) than 132-(S)-hpa (EC50 = 11.7 μM) in zebrafish larvae.
  • Both 132-hpa isomers prevented and remediated lipid accumulation in an in vitro steatosis model using HepG2 cells.
  • Both isomers reduced Paramecia intake, but only 132-(S)-hpa suppressed liposome intake (EC50 = 22.5 μM), indicating distinct appetite regulation mechanisms.
  • No effects were observed on tissue glucose uptake or β-cell regeneration.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract The rising prevalence of obesity calls for the development of novel treatments. Spirulina is known for its beneficial effects on metabolic health; however, the specific bioactive compounds have not yet been identified. This work aims to address this gap through the bioassay-guided isolation of lipid-reducing compounds from Limnospira platensis using zebrafish larvae. The primary bioactive compounds identified were the stereoisomers of 132-hydroxypheophytin a (132-hpa), with 132-(R)-hpa (2) (EC50 = 1.7 μM) that showed seven times higher lipid-reducing potential than 132-(S)-hpa (1) (EC50 = 11.7 μM). Both isomers prevented lipid accumulation in an in vitro steatosis model using oleic acid-overloaded HepG2 cells, and both remediated steatosis following prior lipid accumulation. Both compounds reduced Paramecia intake with similar EC50 values, but only 132-(S)-hpa (1) suppressed liposome intake (EC50 = 22.5 μM), which indicates different mechanisms of appetite regulation. No effects were observed on tissue glucose uptake or β-cell regeneration after ablation. Together, these findings identify the isomers of 132-hpa (1 and 2) as the principal bioactive compounds of spirulina, with differing lipid reduction potencies and appetite suppression, underscoring the importance of C-132 configuration for biological activity.

The authors' abstract, as published at the source. Journal of Natural Products, 2026 · DOI ↗

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Field: Aquatic Science

Aquatic ScienceAgricultural and Biological Sciences