TY - JOUR
T1 - An insoluble cellulose nanofiber with robust expansion capacity protects against obesity
AU - Yu, Jian
AU - Gao, Mingyuan
AU - Wang, Li
AU - Guo, Xiaozhen
AU - Liu, Xiaodi
AU - Sheng, Maozheng
AU - Cheng, Shimiao
AU - Guo, Yingying
AU - Wang, Jiawen
AU - Zhao, Cheng
AU - Guo, Wenxiu
AU - Zhang, Zhe
AU - Liu, Yameng
AU - Hu, Cheng
AU - Ma, Xinran
AU - Xie, Cen
AU - Zhang, Qiang
AU - Xu, Lingyan
N1 - Publisher Copyright:
© 2024
PY - 2024/10
Y1 - 2024/10
N2 - An imbalance between energy intake and energy expenditure predisposes obesity and its related metabolic diseases. Soluble dietary fiber has been shown to improve metabolic homeostasis mainly via microbiota reshaping. However, the application and metabolic effects of insoluble fiber are less understood. Herein, we employed nanotechnology to design citric acid-crosslinked carboxymethyl cellulose nanofibers (CL-CNF) with a robust capacity of expansion upon swelling. Supplementation with CL-CNF reduced food intake and delayed digestion rate in mice by occupying stomach. Besides, CL-CNF treatment mitigated diet-induced obesity and insulin resistance in mice with enhanced energy expenditure, as well as ameliorated inflammation in adipose tissue, intestine and liver and reduced hepatic steatosis, without any discernible signs of toxicity. Additionally, CL-CNF supplementation resulted in enrichment of probiotics such as Bifidobacterium and decreased in the relative abundances of deleterious microbiota expressing bile salt hydrolase, which led to increased levels of conjugated bile acids and inhibited intestinal FXR signaling to stimulate the release of GLP-1. Taken together, our findings demonstrate that CL-CNF administration protects mice from diet-induced obesity and metabolic dysfunction by reducing food intake, enhancing energy expenditure and remodeling gut microbiota, making it a potential therapeutic strategy against metabolic diseases.
AB - An imbalance between energy intake and energy expenditure predisposes obesity and its related metabolic diseases. Soluble dietary fiber has been shown to improve metabolic homeostasis mainly via microbiota reshaping. However, the application and metabolic effects of insoluble fiber are less understood. Herein, we employed nanotechnology to design citric acid-crosslinked carboxymethyl cellulose nanofibers (CL-CNF) with a robust capacity of expansion upon swelling. Supplementation with CL-CNF reduced food intake and delayed digestion rate in mice by occupying stomach. Besides, CL-CNF treatment mitigated diet-induced obesity and insulin resistance in mice with enhanced energy expenditure, as well as ameliorated inflammation in adipose tissue, intestine and liver and reduced hepatic steatosis, without any discernible signs of toxicity. Additionally, CL-CNF supplementation resulted in enrichment of probiotics such as Bifidobacterium and decreased in the relative abundances of deleterious microbiota expressing bile salt hydrolase, which led to increased levels of conjugated bile acids and inhibited intestinal FXR signaling to stimulate the release of GLP-1. Taken together, our findings demonstrate that CL-CNF administration protects mice from diet-induced obesity and metabolic dysfunction by reducing food intake, enhancing energy expenditure and remodeling gut microbiota, making it a potential therapeutic strategy against metabolic diseases.
KW - Citric acid-crosslinked carboxymethyl cellulose nanofiber
KW - Conjugated bile acids
KW - Energy expenditure
KW - Food intake
KW - Obesity
KW - Probiotics
UR - https://www.scopus.com/pages/publications/85200444197
U2 - 10.1016/j.ijbiomac.2024.134401
DO - 10.1016/j.ijbiomac.2024.134401
M3 - 文章
C2 - 39097049
AN - SCOPUS:85200444197
SN - 0141-8130
VL - 277
JO - International Journal of Biological Macromolecules
JF - International Journal of Biological Macromolecules
M1 - 134401
ER -