In vitro digestion and fecal fermentation of basidiospore-derived exopolysaccharides from Naematelia aurantialba

发酵 多糖 消化(炼金术) 食品科学 肠道菌群 单糖 化学 生物 生物化学 半乳糖 短链脂肪酸 乳酸菌 色谱法 丁酸盐
作者
Tao Sun,Xiaoning Liang,Xiaoyi Xu,Linhao Wang,Wei Xiao,Yuhang Ma,Rui Wang,Yian Gu,Sha Li,Yibin Qiu,Dafeng Sun,Hong Xu,Peng Lei
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:261: 129756-129756 被引量:8
标识
DOI:10.1016/j.ijbiomac.2024.129756
摘要

Mushroom polysaccharides exhibit numerous health-enhancing attributes that are intricately linked to the breakdown, assimilation, and exploitation of polysaccharides within the organism. Naematelia aurantialba polysaccharides (NAPS-A), highly prized polysaccharides derived from mushrooms, remain shrouded in uncertainty regarding their characteristics pertaining to gastrointestinal digestion and gut microbial fermentation. The study aimed to understand the digestion and fecal fermentation patterns of NAPS-A. After simulated digestion, NAPS-A's physicochemical properties remained unchanged. However, during in vitro fecal fermentation, indigestible NAPS-A underwent significant changes in various properties, such as reducing sugar, chemical composition, constituent monosaccharides, Molecular weight, apparent viscosity, FT-IR spectra, and microscopic morphology. Notably, NAPS-A was effectively utilized by the gut microbiota, with unchanged properties after digestion but altered after fermentation. It influenced gut microbe composition by increasing beneficial bacteria (Lactobacillus, Faecalibacterium, and Roseburia), lowering pH, and producing short-chain fatty acids. NAPS-A fermentation enriches carbohydrate, fatty acid, and amino acid metabolic pathways through PICRUSt prediction analysis. Overall, these findings emphasize NAPS-A's role in regulating gut bacteria and their metabolic functions, despite its challenging digestibility.
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