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边延欣,等 水产学报, 2025, 49(5): 059613
to dry stress of rice field eel (Monopterus albus) fed low fish bohydrate on glycometabolism in juvenile largemouth bass,
meal diets[J]. Aquaculture Research, 2018, 49(6): 2108-2118. Micropterus salmoides[J]. Aquaculture, 2019, 504: 39-51.
[20] Wu Y B, Ma H J, Wang X J, et al. Taurine supplementation [29] Xu R, Li M, Wang T, et al. Bacillus amyloliquefaciens amelior-
increases the potential of fishmeal replacement by soybean meal ates high-carbohydrate diet-induced metabolic phenotypes by
in diets for largemouth bass Micropterus salmoides[J]. restoration of intestinal acetate-producing bacteria in Nile
Aquaculture Nutrition, 2021, 27(3): 691-699. tilapia[J]. British Journal of Nutrition, 2022, 127(5): 653-665.
[21] 高彬. 饲料中 α-淀粉水平对大口黑鲈生长、抗氧化能力、糖 [30] Kuzmina V V, Gavrovskaya L K, Ryzhova O V. Taurine. Effect
代谢及代谢组的影响 [D]. 上海: 上海海洋大学, 2022. on exotrophia and metabolism in mammals and fish[J]. Journal
Gao B. Effects of dietary α-starch level on growth, antioxidant of Evolutionary Biochemistry and Physiology, 2010, 46(1): 19-
capacity, glycometabolism and metabolome of largemouth bass 27.
(Micropterus salmoides)[D]. Shanghai: Shanghai Ocean Uni- [31] Polakof S, Panserat S, Soengas J L, et al. Glucose metabolism
versity, 2022 (in Chinese). in fish: a review[J]. Journal of Comparative Physiology B,
[22] Livak K J, Schmittgen T D. Analysis of relative gene expres- 2012, 182(8): 1015-1045.
sion data using real-time quantitative PCR and the 2 −∆∆C t [32] Röder P V, Geillinger K E, Zietek T S, et al. The role of SGLT1
method[J]. Methods, 2001, 25(4): 402-408. and GLUT2 in intestinal glucose transport and sensing[J]. PLoS
[23] Wei Y L, Zhang Q G, Xu H G, et al. Taurine requirement and One, 2014, 9(2): e89977.
metabolism response of tiger puffer Takifugu rubripes to graded [33] Legate N J, Bonen A, Moon T W. Glucose tolerance and peri-
taurine supplementation[J]. Aquaculture, 2020, 524: 735237. pheral glucose utilization in rainbow trout (Oncorhynchus
[24] Shi Y, Zhong L, Zhong H, et al. Taurine supplements in high- mykiss), American eel (Anguilla rostrata), and black bullhead
carbohydrate diets increase growth performance of Monopterus catfish (Ameiurus melas)[J]. General and Comparative Endo-
albus by improving carbohydrate and lipid metabolism, redu- crinology, 2001, 122(1): 48-59.
cing liver damage, and regulating intestinal microbiota[J]. [34] 李培佳, 吕旦, 李敏, 等. 高碳水化合物饲料添加牛磺酸对杂
Aquaculture, 2022, 554: 738150. 交鳢生长性能、肝脏糖代谢相关基因表达、抗氧化活性及
[25] Qian J B, Yin B, Liu H Y, et al. Effects of taurine supplementa- 免疫应答的影响 [J]. 动物营养学报, 2023, 35(11): 7320-7334.
tion in a high-carbohydrate diet on growth performance, plasma Li P J, Lyu D, Li M, et al. Effects of taurine supplementation in
biochemical, digestive and glucose metabolism enzymes in high carbohydrate diet on growth performance, gene expres-
hybrid grouper (♀ Epinephelus fuscoguttatus × ♂ E. lanceol- sion related to liver glucose metabolism, and antioxidant activ-
atus)[J]. Aquaculture Reports, 2021, 21: 100820. ity and immune response of hybrid snakehead [Channa macu-
[26] Pan L, Qian J H, Liu H Y, et al. Implications on growth per- lata (♀) × C. argus (♂)][J]. Chinese Journal of Animal Nutri-
formance, glucose metabolism, PI 3 K/AKT pathway, intestinal tion, 2023, 35(11): 7320-7334 (in Chinese).
flora induced by dietary taurine in a high-carbohydrate diet for [35] Prisingkorn W, Prathomya P, Jakovlić I, et al. Transcriptomics,
grass carp (Ctenopharyngodon idella)[J]. British Journal of metabolomics and histology indicate that high-carbohydrate diet
Nutrition, 2024, 131(1): 27-40. negatively affects the liver health of blunt snout bream (Mega-
[27] 杨琳霖, 胡毅, 朱波, 等. 金针菇菇头对草鱼生长、消化酶活 lobrama amblycephala)[J]. BMC Genomics, 2017, 18(1): 856.
性、肠道组织结构、肌肉品质及血清生化指标的影响 [J]. [36] Seiliez I, Panserat S, Lansard M, et al. Dietary carbohydrate-to-
动物营养学报, 2021, 33(8): 4569-4579. protein ratio affects TOR signaling and metabolism-related
Yang L L, Hu Y, Zhu B, et al. Effects of Flammulina velutipes gene expression in the liver and muscle of rainbow trout after a
stembase on growth, digestive enzyme activities, intestinal tis- single meal[J]. American Journal of Physiology Regulatory,
sue structure, muscle quality and serum biochemical paramet- Integrative and Comparative Physiology, 2011, 300(3): R733-
ers of grass carp (Ctenopharyngodon idella)[J]. Chinese Journal R743.
of Animal Nutrition, 2021, 33(8): 4569-4579 (in Chinese). [37] Rodgers J T, Lerin C, Haas W, et al. Nutrient control of gluc-
[28] Zhang W, Liu K, Tan B P, et al. Transcriptome, enzyme activ- ose homeostasis through a complex of PGC-1α and SIRT1[J].
ity and histopathology analysis reveal the effects of dietary car- Nature, 2005, 434(7029): 113-118.
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