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bioRxiv · 10.1101/375584

Fungal polysaccharopeptides reduce obesity by richness of specific microbiota and modulation of lipid metabolism

Abstract

The prevalence of obesity and related disorders has vastly increased throughout the world and prevention of such circumstances thus represents a major challenge. Here, we show that protein-bound {beta}-glucan (PBG), one representative of Coriolus versicolor polysaccharopeptides which are broadly used as immune boosters and clinically implicated in treatment of cancers and chronic hepatitis, could be a potent anti-obesity agent. PBG could reduce obesity and metabolic inflammation in mice fed with a high-fat diet (HFD). Gut microbiota analysis revealed that PBG markedly increased the abundance of Akkermansia muciniphila although it didnt rescue HFD-induced change in the Firmicutes to Bacteroidetes ratio. It appeared that PBG altered host physiology and created an intestinal microenvironment favorable for A. muciniphila colonization. Fecal transplants from PBG-treated animals in part reduced obesity in recipient HFD-fed mice. Further, PBG was shown to promote lipid metabolism in microbiota-depleted mice. Thus, our data highlights that PBG might exert its anti-obesity effects through a mirobiota-dependent (richness of specific microbiota) and -independent (modulation of lipid metabolism) manner. The fact that Coriolus versicolor polysaccharopeptides are approved oral immune boosters in cancers and chronic hepatitis with well-established safety profiles may accelerate the development of PBG as a novel drug for obesity treatment.

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Li, X., Chen, P., Zhang, P., Chang, Y., Cui, M., Duan, J. y.. 2018-07-24. Fungal polysaccharopeptides reduce obesity by richness of specific microbiota and modulation of lipid metabolism. https://doi.org/10.1101/375584

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