代表性论文 |
HX Yan, LL Zhao, Yang Song, et al. Exposure to Intermittent Environmental Hypoxia Promotes Vascular Remodeling through Angiogenesis in the Liver of Largemouth Bass (Micropterus salmoides). Environmental Science & Technology, 2023, accepted. IF=11.3
Liu Q, Wang H, Yang Song, et al. Chronic hypoxia and Cu2+ exposure induce gill remodeling of largemouth bass through endoplasmic reticulum stress, mitochondrial damage and apoptosis . Aquatic Toxicology, 2023, 255: 106373, 1:13. IF= 5.3
Zhao LL, Liao L, Yang Song, et al. Physiological responses to acute hypoxia in the liver of largemouth bass by alteration of mitochondrial function and Ca2+ exchange. Aquatic Toxicology,2023, 256, 106436, 1:13. IF= 5.3
Zhao LL, Xu L, Yang Song, et al. Exercise training promotes growth through hypertrophy and enhances capillarization and antioxidant capacity in juvenile largemouth bass (Micropterus salmoides). Aquaculture,2023, 562, 738850 :1-13. IF= 5.03
Zhao LL, Yan HX, Yang Song et al. Metabolic response provides insights into the mechanism of adaption to hypoxia in largemouth bass (Micropterus salmoides) under intermittent hypoxic conditions. Ecotoxicology and Environmental Safety, 2022, 242, 113957: 1-13.IF= 7.2
赵柳兰,唐小鸿,杨淞,等. 不同碳水化物水平对大口黑鲈鳃组织结构、抗氧化能力和免疫能力的影响.水产学报,2022, 46(11): 1−10.
Zhao LL, Liang J, Yang Song, et al. Yinchenhao Decoction ameliorates the high-carbohydrate diet induced suppression of immune response in largemouth bass (Micropterus salmoides) . Fish and Shellfish Immunology, 2022, 125: 141–151. If= 4.6
He K, Zhao LL, Yang Song, et al. Chromosome-level genome assembly of largemouth bass (Micropterus salmoides) using PacBio and Hi-C technologies. Scientific Data, 2022, 9,482:1-9. IF= 8.05
Zhao LL, Tang XH, Yang Song, et al. Acute hypoxia promotes the liver angiogenesis of largemouth bass (Micropterus salmoides) by HIF - Dependent pathway. Fish and Shellfish Immunology, 2022, 131: 264–273. IF= 4.6
Zhao LL, Tang G.,Yang S#, et al.Chronic chlorpyrifos exposure induces oxidative stress, apoptosis and immune dysfunction in largemouth bass (Micropterus salmoides).Environmental Pollution, 2021, IF=6.8
Zhao LL, He K,Yang S#,et al.Comparative transcriptome profiles of large and small bodied largescale loaches cultivated in paddy fields. Scientific Reports,2021, 11:4936.IF=3.8
Sun JL, Zhao LL,Yang S#, et al. Interactive effect of thermal and hypoxia on largemouth bass (Micropterus salmoides) gill and liver: Aggravation of oxidative stress, inhibition of immunity and promotion of cell apoptosis, Fish and Shellfish Immunology, 2020, 98: 923-936. IF=3.2,高被引论文
Sun JL, Zhao LL,Yang S#, et al. Acute hypoxia changes the mode of glucose and lipid utilization in the liver of the largemouth bass (Micropterus salmoides), Science of the Total Environment, 2020, 713(135157): 1-19. If=6.5
Liulan Zhao1 , Can Cui, Yang Song, et al. Combined exposure to hypoxia and ammonia aggravated biological effects on glucose metabolism, oxidative stress, inflammation and apoptosis in largemouth bass (Micropterus salmoides). Aquatic Toxicology 224 (2020) 105514 , 1:13. IF=5.3, 高被引论文
Zhao LL, Sun JL,Yang S#, et al. Enhancing lipid metabolism and inducing antioxidant and immune responses to adapt to acute hypoxic stress inSchizothorax prenanti, Aquaculture, 2020.1, 519(734933) :1-15. IF=3.02
Zhao LL, He K,Yang S#,et al.Co-modulation of Liver Genes and Intestinal Microbiome of Largemouth Bass Larvae (Micropterus salmoides) During Weaning.Frontiers in Microbiology, 2020,11:1-12. IF=4.25
Yang S#, Wu H, Zhao LL, et al. Response of AMP-activated protein kinase and lactate metabolism of largemouth bass (Micropterus salmoides) under acute hypoxic stress, Science of the Total Environment, 2019, 666(1): 1071-1079. IF=5.4
Zhao LL,H. Wu, J.L,Yang S, et al. MicroRNA-124 regulates lactate transportation in the muscle of largemouth bass (micropterus salmoides) under hypoxia by targeting MCT1[J]. Aquatic Toxicology, 2020, 218(105359):1-10. IF=4.3
Yang S, Yan T, Zhao LL*, et al. Acute hypoxic stress: Effect on blood parameters, antioxidant enzymes, and expression of HIF-1alpha and GLUT-1 genes in largemouth bass (Micropterus salmoides), Fish & Shellfish Immunology, 2017, 67(1): 449-458. IF=3.2
Zhou J, Zhao H,Yang S*,et al. Effects of bacterial haemorrhagic septicemia on the immune response of Leiocassis longirostris by RNA-Seq and microRNA-Seq. Comparative Biochemistry and Physiology - Part D, 2020,34,100659:1-10. IF=2.8
Yang S, Du J, Zhao LL*,et al. Effects of different diets on the intestinal microbiota and immunity of common carp (Cyprinus carpio). Journal of Applied Microbiology, 2019, 127: 1327-1338. IF=2.5
Yang S*,Luo J, Zhao LL*, et al. Mixed Diets Reduce the Oxidative Stress of Common Carp (Cyprinus carpio): Based on MicroRNA Sequencing[J]. Frontiers in Physiology, 2019, 10(631):1-11. IF=3.4
Sun JL, Qiao Liu,Yang S*, et al. Potential regulation by miRNAs on glucose metabolism in liver of common carp (Cyprinus carpio) at different temperatures,Comparative Biochemistry and Physiology - Part D,2019,32,100628:1-12. IF=2.8
Sun JL, Zhao LL,Yang S*, et al Influence of long-term temperature stress on respiration frequency, Na+/ K+-ATPase activity, and lipid metabolism in common carp (Cyprinus carpio), Journal of Thermal Biology, 2019,83:165-171. IF=2.5
Sun JL, Zhao LL ,Yang S*, et al. Analysis of miRNA-seq in the liver of common carp(Cyprinus carpio L.) in response to different environmental temperatures[J].Functional & Intergrative Genomics, 2018, https://doi.org/10.1007/s10142-018-0643-7. IF=3.2
Yang S, Du J, Duan YL, Zhao LL*,et al. Differences in the digestive enzyme activity, intestinal mucosa and microbial community in loach cultivated in two separate environments [J]. BMC Microbiology, 2018, 18(1):1-12. IF=2.95
Yang S, Wu H, Zhao LL*, et al. Morphology and histochemical analysis of glycoproteins in the digestive tract of Dabry’s sturgeon[J]. Journal of Applied lchthyology, 2018, 34:1-9. IF= 0.8
Yang S, Yan T, Zhao LL*, et al. Effects of temperature on activities of antioxidant enzymes and Na+/K+-ATPase, and hormone levels inSchizothorax prenanti[J]. Journal of Thermal Biology, 2018, 72:155-160. IF=2.1
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