脂质代谢
脂肪组织
Wnt信号通路
脂肪细胞
肠道菌群
白色脂肪组织
转录组
化学
细胞生物学
脂滴
下调和上调
多糖
代谢组学
生物
脂质A
生物化学
肥胖
代谢途径
新陈代谢
失调
信号转导
代谢组
生物途径
脂肪生成
生物膜
脂肪变性
碳水化合物代谢
脂代谢紊乱
内分泌学
作者
Xiajialong Li,Shenji Yang,Xiaojun Huang,Jing Feng,Zhikang Cao,Peng Chen,Shuigen Bian,Zhipeng Li,Mingyong Xie
标识
DOI:10.26599/fshw.2026.9250999
摘要
The rising prevalence of overweight and obesity poses a significant threat to life quality. Although Dendrobium officinale polysaccharide (DOP) has demonstrated various health benefits, its effects on obesity and the underlying mechanisms remain to be fully elucidated. This study, using a high-fat diet-induced obesity (DIO) mouse model, shows that DOP significantly alleviates DIO by suppressing lipid droplet (LD) expansion and downregulating LD-associated genes, including PLIN2 and PLIN3, in white adipose tissue (WAT). These genes positively correlate with metabolic parameters including body weight gain, adiposity, and glucose intolerance. A meta-analysis further reveals that PLIN2 and PLIN3 are consistently upregulated in the adipose tissues of both obese mice and humans, underscoring their clinical relevance. Transcriptomic analysis indicates that DOP potentially activates the Wnt signaling pathway in WAT, thereby suppressing lipid synthesis and storage and inhibiting adipocyte differentiation. Metagenomic analysis demonstrates that DOP reverses obesity-associated gut microbiota dysbiosis by downregulating bacteria positively associated with LD formation and obesity phenotypes, while upregulating bacteria negatively associated with these traits. Notably, a data-driven analysis identified Bifidobacterium pseudolongum and B. choerinum as potential key mediators of DOP's effects. Untargeted metabolomics reveals that DOP reshapes serum metabolite profiles, particularly upregulating acylcarnitines, which negatively correlate with LD formation and metabolic parameters. A multi-omics covariance network integrating gut microbiota, serum metabolites, WAT gene expression, and metabolic phenotypes suggests that DOP modulates lipid metabolism possibly through gut microbiota and metabolites, thereby improving obesity-related traits. In conclusion, this multi-omics study is the first to suggest that DOP may promote the Wnt signaling pathway and inhibit LD expansion through the gut-adipose axis, thereby mitigating the onset of DIO.
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