Protective effect of Broussonetia papyrifera leaf polysaccharides on intestinal integrity in a rat model of diet-induced oxidative stress.
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X. Mao | Junqiu Luo | Jun He | P. Zheng | Jie Yu | Yuheng Luo | B. Yu | Quyuan Wang | Huifen Wang | Xiangqi Fan | Jianping Wang | Hui Yan | Wei Yu | Qingxiang Wang | Heng Yang | Dayan Tan
[1] Xin Lv,et al. The signaling pathways and therapeutic potential of itaconate to alleviate inflammation and oxidative stress in inflammatory diseases , 2022, Redox biology.
[2] Jing Li,et al. Senegalia macrostachya seed polysaccharides attenuate inflammation-induced intestinal epithelial barrier dysfunction in a Caco-2 and RAW264.7 macrophage co-culture model by inhibiting the NF-κB/MLCK pathway. , 2022, Food & function.
[3] Xiaoli Shi,et al. Lentinan inhibits oxidative stress and alleviates LPS-induced inflammation and apoptosis of BMECs by activating the Nrf2 signaling pathway. , 2022, International journal of biological macromolecules.
[4] Juqing Huang,et al. Structural characterization of a soluble polysaccharide SSPS1 from soy whey and its immunoregulatory activity in macrophages. , 2022, International journal of biological macromolecules.
[5] Dongyang Nie,et al. Broussonetia papyrifera Polysaccharide Alleviated Acetaminophen-Induced Liver Injury by Regulating the Intestinal Flora , 2022, Nutrients.
[6] Hui Zhang,et al. Angelica Sinensis Polysaccharide Suppresses the Aging of Hematopoietic Stem Cells Through Sirt1/FoxO1 Signaling. , 2022, Clinical laboratory.
[7] Lei He,et al. Effects of dietary Glycyrrhiza polysaccharide on growth performance, blood parameters and immunity in weaned piglets. , 2022, Journal of animal physiology and animal nutrition.
[8] X. Mao,et al. l-Isoleucine Administration Alleviates DSS-Induced Colitis by Regulating TLR4/MyD88/NF-κB Pathway in Rats , 2022, Frontiers in Immunology.
[9] Jian-ping Luo,et al. Dendrobium fimbriatum Hook polysaccharide ameliorates dextran-sodium-sulfate-induced colitis in mice via improving intestinal barrier function, modulating intestinal microbiota, and reducing oxidative stress and inflammatory responses. , 2021, Food & function.
[10] T. Efferth,et al. Dendrobium officinale Polysaccharide Alleviates Intestinal Inflammation by Promoting Small Extracellular Vesicle Packaging of miR-433-3p. , 2021, Journal of agricultural and food chemistry.
[11] F. Rise,et al. Pectic polysaccharide from Nelumbo nucifera leaves promotes intestinal antioxidant defense in vitro and in vivo. , 2021, Food & function.
[12] T. Mahmood,et al. Effects of naturally oxidized corn oil on inflammatory reaction and intestinal health of broilers , 2021, Poultry science.
[13] Y. Zheng,et al. Artemisia ordosica Polysaccharide Alleviated Lipopolysaccharide-induced Oxidative Stress of Broilers via Nrf2/Keap1 and TLR4/NF-κB Pathway. , 2021, Ecotoxicology and environmental safety.
[14] Zhi Luo,et al. Oxidized fish oils increased lipid deposition via oxidative stress-mediated mitochondrial dysfunction and the CREB1-Bcl2-Beclin1 pathway in the liver tissues and hepatocytes of yellow catfish. , 2021, Food chemistry.
[15] Gangliang Huang,et al. Preparation, activity, and antioxidant mechanism of rice bran polysaccharide. , 2021, Food & function.
[16] S. Cuzzocrea,et al. Plumericin Protects against Experimental Inflammatory Bowel Disease by Restoring Intestinal Barrier Function and Reducing Apoptosis , 2021, Biomedicines.
[17] X. Mao,et al. Lentinan administration alleviates diarrhea of rotavirus-infected weaned pigs via regulating intestinal immunity , 2020, Journal of animal science and biotechnology.
[18] Wenjian Yang,et al. Antioxidant activities and mechanisms of polysaccharides , 2020, Chemical biology & drug design.
[19] Shengli Li,et al. Effects of Paper Mulberry Silage on the Milk Production, Apparent Digestibility, Antioxidant Capacity, and Fecal Bacteria Composition in Holstein Dairy Cows , 2020, Animals : an open access journal from MDPI.
[20] Fang Liu,et al. Antiviral activities of Radix isatidis polysaccharide against pseudorabies virus in swine testicle cells , 2020, BMC complementary medicine and therapies.
[21] F. Dunshea,et al. Effects of heat stress on animal physiology, metabolism, and meat quality: A review. , 2019, Meat science.
[22] Daiwen Chen,et al. Resveratrol regulates muscle fiber type conversion via miR-22-3p and AMPK/SIRT1/PGC-1α pathway. , 2019, The Journal of nutritional biochemistry.
[23] J. Yin,et al. Effects of dietary supplementation of Lycium barbarum polysaccharides on growth performance, immune status, antioxidant capacity and selected microbial populations of weaned piglets. , 2019, Journal of animal physiology and animal nutrition.
[24] X. Mao,et al. Effects of Dietary Aged Maize with Oxidized Fish Oil on Growth Performance, Antioxidant Capacity and Intestinal Health in Weaned Piglets , 2019, Animals : an open access journal from MDPI.
[25] M-F Du,et al. Hemp seed polysaccharides protect intestinal epithelial cells from hydrogen peroxide-induced oxidative stress. , 2019, International journal of biological macromolecules.
[26] Hongnin Liu,et al. Dendrobium Officinale Polysaccharides Protect against MNNG-Induced PLGC in Rats via Activating the NRF2 and Antioxidant Enzymes HO-1 and NQO-1 , 2019, Oxidative medicine and cellular longevity.
[27] Fanxing Xu,et al. Polysaccharide from Okra (Abelmoschus esculentus (L.) Moench) Improves Antioxidant Capacity via PI3K/AKT Pathways and Nrf2 Translocation in a Type 2 Diabetes Model , 2019, Molecules.
[28] X. Mao,et al. Lentinan administration relieves gut barrier dysfunction induced by rotavirus in a weaned piglet model. , 2019, Food & function.
[29] Ye Zhao,et al. Effects of dietary glutamate supplementation on flesh quality, antioxidant defense and gene expression related to lipid metabolism and myogenic regulation in Jian carp (Cyprinus carpio var. Jian) , 2019, Aquaculture.
[30] R. Grant,et al. Oxidation of fish oil supplements in Australia , 2019, International journal of food sciences and nutrition.
[31] Sunil K. Sharma,et al. Oxidative Stress: Major Threat in Traumatic Brain Injury. , 2018, CNS & neurological disorders drug targets.
[32] X. Ge,et al. Oxidized fish oil injury stress in Megalobrama amblycephala: Evaluated by growth, intestinal physiology, and transcriptome‐based PI3K‐Akt/NF‐&kgr;B/TCR inflammatory signaling , 2018, Fish & shellfish immunology.
[33] Masayuki Yamamoto,et al. The KEAP1-NRF2 System: a Thiol-Based Sensor-Effector Apparatus for Maintaining Redox Homeostasis. , 2018, Physiological reviews.
[34] K. Dias,et al. Effects of dietary oxidized fish oil supplementation on oxidative stress and antioxidant defense system in juvenile rainbow trout (Oncorhynchus mykiss) , 2018, Fish & shellfish immunology.
[35] Tianyi Liu,et al. Antioxidants Maintain Cellular Redox Homeostasis by Elimination of Reactive Oxygen Species , 2017, Cellular Physiology and Biochemistry.
[36] Huaguo Chen,et al. [Structure-activity relationship of plant polysaccharides]. , 2017, Zhongguo Zhong yao za zhi = Zhongguo zhongyao zazhi = China journal of Chinese materia medica.
[37] Choongho Lee. Collaborative Power of Nrf2 and PPARγ Activators against Metabolic and Drug-Induced Oxidative Injury , 2017, Oxidative medicine and cellular longevity.
[38] Li Wang,et al. Effects of soybean isoflavone on intestinal antioxidant capacity and cytokines in young piglets fed oxidized fish oil , 2016, Journal of Zhejiang University-SCIENCE B.
[39] Yulong Yin,et al. Oxidative Stress and Inflammation: What Polyphenols Can Do for Us? , 2016, Oxidative medicine and cellular longevity.
[40] P. Prenzler,et al. Deep-fried oil consumption in rats impairs glycerolipid metabolism, gut histology and microbiota structure , 2016, Lipids in Health and Disease.
[41] X. Lai,et al. Purification, preliminary characterization and bioactivities of polysaccharides from Ostrea rivularis Gould. , 2015, International journal of biological macromolecules.
[42] M. Garg,et al. Fish oil supplements in New Zealand are highly oxidised and do not meet label content of n-3 PUFA , 2015, Scientific Reports.
[43] A. Kong,et al. Nrf2 knockout enhances intestinal tumorigenesis in Apcmin/+ mice due to attenuation of anti‐oxidative stress pathway while potentiates inflammation , 2014, Molecular carcinogenesis.
[44] B. Aggarwal,et al. Oxidative stress, inflammation, and cancer: how are they linked? , 2010, Free radical biology & medicine.
[45] Robert A. Smith,et al. Toxicological and pathophysiological roles of reactive oxygen and nitrogen species. , 2010, Toxicology.
[46] Xi Ma,et al. The effects of lipoic acid on soybean 𝛃-conglycinin-induced anaphylactic reactions in a rat model , 2010, Archives of animal nutrition.
[47] C. Teng,et al. Bioactive constituents of Morus australis and Broussonetia papyrifera. , 1997, Journal of natural products.
[48] Chen Daiwen. Selenium supplementation on anti-oxidative enzymes and cellular structure of oxidative stressed Piglets , 2011 .