| [1] |
Zhao L, Liao L, Tang X, Liang J, Liu Q, et al. 2022. High-carbohydrate diet altered conversion of metabolites, and deteriorated health in juvenile largemouth bass. |
| [2] |
Ji S, Song L, Tian Z, Wei M, Ji H, et al. 2025. Caffeic acid phenethyl ester improves high-carbohydrate diet utilization by promoting adipocyte hyperplasia in grass carp (Ctenopharyngodon idellus). |
| [3] |
Polakof S, Panserat S, Soengas JL, Moon TW. 2012. Glucose metabolism in fish: a review. |
| [4] |
Liu Y, Lu Q, Han G, Zheng Y, Cao J, et al. 2024. Dietary betulinic acid alleviates high carbohydrate diet-induced hepatic de novo lipogenesis through AMPK signaling and improves liver health in channel catfish (Ictalurus punctatus). |
| [5] |
Zhang Y, Liu Y, Ma H, Sun M, Wang X, et al. 2023. Insufficient or excessive dietary carbohydrates affect gut health through change in gut microbiota and regulation of gene expression of gut epithelial cells in grass carp (Ctenopharyngodon idella). |
| [6] |
Zhang S, Wang Q, Dong J, Li G, Niu K, et al. 2025. Dietary Carnosic Acid supplementation improves the growth performance, the antioxidant status, and diversity of intestinal microbiota in broilers. |
| [7] |
Xu Z, Chen Y, Geng H, Ni H, Han D, et al. 2024. Carnosic acid-riched rosemary (Rosmarinus officinalis L.) extract improves largemouth bass (Micropterus salmoides)'s disease-resistance and regulates lipid metabolism. |
| [8] |
Liao CH, Hung HC, Lai CN, Liao YH, Liu PT, et al. 2023. Carnosic acid and rosemary extract reversed the lipid accumulation induced by bisphenol A in the 3T3-L1 preadipocytes and C57BL/6J mice via SIRT1/FoxO1 pathway. |
| [9] |
Tsakiridis N, Niazur Rahman SM, Tsiani E, Giacca A. 2024. 1521-P: carnosic acid protects against diet-induced insulin resistance. |
| [10] |
Ou J, Huang J, Zhao D, Du B, Wang M. 2018. Protective effect of rosmarinic acid and carnosic acid against streptozotocin-induced oxidation, glycation, inflammation and microbiota imbalance in diabetic rats. |
| [11] |
Shi Y, Zhong L, Fan Y, Zhang J, Zhong H, et al. 2022. The protective effect of mulberry leaf flavonoids on high-carbohydrate-induced liver oxidative stress, inflammatory response and intestinal microbiota disturbance in Monopterus albus. |
| [12] |
Ma X, Hu Y, Wang XQ, Ai QH, He ZG, et al. 2014. Effects of practical dietary protein to lipid levels on growth, digestive enzyme activities and body composition of juvenile rice field eel (Monopterus albus). |
| [13] |
Kamalam BS, Medale F, Panserat S. 2017. Utilisation of dietary carbohydrates in farmed fishes: New insights on influencing factors, biological limitations and future strategies. |
| [14] |
Zhou YL, He GL, Jin T, Chen YJ, Dai FY, et al. 2021. High dietary starch impairs intestinal health and microbiota of largemouth bass, Micropterus salmoides. |
| [15] |
Guo Q, Wang Y, Li N, Li T, Guan Y, et al. 2024. Effects of dietary carbohydrate levels on growth performance, feed utilization, liver histology and intestinal microflora of juvenile tiger puffer, Takifugu rubripes. |
| [16] |
Gong Y, Lu Q, Liu Y, Xi L, Zhang Z, et al. 2022. Dietary berberine alleviates high carbohydrate diet-induced intestinal damages and improves lipid metabolism in largemouth bass (Micropterus salmoides). |
| [17] |
Samuel VT, Shulman GI. 2018. Nonalcoholic fatty liver disease as a nexus of metabolic and hepatic diseases. |
| [18] |
Petersen MC, Vatner DF, Shulman GI. 2017. Regulation of hepatic glucose metabolism in health and disease. |
| [19] |
Lundsgaard AM, Bojsen-Møller KN, Kiens B. 2023. Dietary regulation of hepatic triacylglycerol content—the role of eucaloric carbohydrate restriction with fat or protein replacement. |
| [20] |
Liu X, Wang H, Liang X, Roberts MS. 2017. Hepatic Metabolism in Liver Health and Disease. In Liver Pathophysiology, ed. Murie P. Boston, USA: Academic Press. pp. 391−400 doi: 10.1016/B978-0-12-804274-8.00030-8 |
| [21] |
Geng Y, Faber KN, de Meijer VE, Blokzijl H, Moshage H. 2021. How does hepatic lipid accumulation lead to lipotoxicity in non-alcoholic fatty liver disease? |
| [22] |
Ipsen DH, Lykkesfeldt J, Tveden-Nyborg P. 2018. Molecular mechanisms of hepatic lipid accumulation in non-alcoholic fatty liver disease. |
| [23] |
Smirne C, Croce E, Di Benedetto D, Cantaluppi V, Comi C, et al. 2022. Oxidative stress in non-alcoholic fatty liver disease. |
| [24] |
Ezhilarasan D, Lakshmi T. 2022. A molecular insight into the role of antioxidants in nonalcoholic fatty liver diseases. |
| [25] |
Sukhorukov VN, Orekhov AN. 2024. Molecular aspects of inflammation and lipid metabolism in health and disease: the role of the mitochondria. |
| [26] |
Ma WW, Huang ZQ, Liu K, Li DZ, Mo TL, et al. 2024. The role of intestinal microbiota and metabolites in intestinal inflammation. |
| [27] |
Klimenko ES, Belkova NL, Rychkova LV, Darenskaya MA, Tugarinova OA, et al. 2024. Alpha diversity indices as indicators of the variability of gut microbiota in obese adolescents of different ethnicities. |
| [28] |
Zhang Y, Liang XF, He S, Chen X, Wang J, et al. 2020. Effects of high carbohydrate diet-modulated microbiota on gut health in Chinese perch. |
| [29] |
Zhang C, Teng X, Cao Q, Deng Y, Yang M, et al. 2025. Gut microbiota dysbiosis exacerbates heart failure by the LPS-TLR4/NF-κB signalling axis: mechanistic insights and therapeutic potential of TLR4 inhibition. |
| [30] |
Baldelli V, Scaldaferri F, Putignani L, Del Chierico F. 2021. The role of Enterobacteriaceae in gut microbiota dysbiosis in inflammatory bowel diseases. |
| [31] |
Zhang W, Zhou H, Jiang Y, He J, Yao Y, et al. 2022. Acinetobacter baumannii outer membrane protein a induces pulmonary epithelial barrier dysfunction and bacterial translocation through the TLR2/IQGAP1 axis. |