Probiotic-Fermented Camel Milk Attenuates Neurodegenerative Symptoms via SOX5/miR-218 Axis Orchestration in Mouse Models
暂无分享,去创建一个
[1] D. Hafler,et al. A multiple sclerosis–protective coding variant reveals an essential role for HDAC7 in regulatory T cells , 2022, Science Translational Medicine.
[2] Lei Zhang,et al. Role of intestinal flora in primary sclerosing cholangitis and its potential therapeutic value , 2022, World journal of gastroenterology.
[3] S. Hosseini,et al. Corrigendum: Probiotic supplementation and systemic inflammation in relapsing-remitting multiple sclerosis: A randomized, double-blind, placebo-controlled trial , 2022, Frontiers in Neuroscience.
[4] J. Saluk,et al. Probiotics and Commensal Gut Microbiota as the Effective Alternative Therapy for Multiple Sclerosis Patients Treatment , 2022, International journal of molecular sciences.
[5] W. Mousa,et al. Microbial dysbiosis in the gut drives systemic autoimmune diseases , 2022, Frontiers in Immunology.
[6] H. Ibrahim,et al. The synergic impact of lignin and Lactobacillus plantarum on DSS-induced colitis model via regulating CD44 and miR 199a alliance , 2022, World Journal of Microbiology and Biotechnology.
[7] S. Mehrotra,et al. The role of the adaptive immune system and T cell dysfunction in neurodegenerative diseases , 2022, Journal of Neuroinflammation.
[8] Jae-Hoon Chang,et al. AMPK Amplifies IL2–STAT5 Signaling to Maintain Stability of Regulatory T Cells in Aged Mice , 2022, International journal of molecular sciences.
[9] Harpreet Kaur,et al. Dairy-Based Probiotic-Fermented Functional Foods: An Update on Their Health-Promoting Properties , 2022, Fermentation.
[10] K. Mills. IL-17 and IL-17-producing cells in protection versus pathology , 2022, Nature Reviews Immunology.
[11] H. Ibrahim,et al. Bacillus amyloliquefaciens Enriched Camel Milk Attenuated Colitis Symptoms in Mice Model , 2022, Nutrients.
[12] M. A. Arain,et al. Nutritional significance and promising therapeutic/medicinal application of camel milk as a functional food in human and animals: a comprehensive review , 2022, Animal biotechnology.
[13] Jirimutu,et al. Camel milk modulates the gut microbiota and has anti-inflammatory effects in a mouse model of colitis. , 2022, Journal of dairy science.
[14] M. d’Angelo,et al. Are We What We Eat? Impact of Diet on the Gut–Brain Axis in Parkinson’s Disease , 2022, Nutrients.
[15] N. Majdinasab,et al. Probiotic supplementation and systemic inflammation in relapsing-remitting multiple sclerosis: A randomized, double-blind, placebo-controlled trial , 2021, Frontiers in Neuroscience.
[16] Ziping Ye,et al. Aryl hydrocarbon receptor activation ameliorates experimental colitis by modulating the tolerogenic dendritic and regulatory T cell formation , 2020, Cell & bioscience.
[17] K. El-Zahar,et al. Protective Effect of Fermented Camel Milk Containing Bifidobacterium longum BB536 on Blood Lipid Profile in Hypercholesterolemic Rats , 2021, Journal of nutrition and metabolism.
[18] H. Keyvani,et al. Role of microbiota-derived short-chain fatty acids in nervous system disorders. , 2021, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[19] M. Motallebnezhad,et al. Implications the Role of miR-155 in the Pathogenesis of Autoimmune Diseases , 2021, Frontiers in Immunology.
[20] P. Emeka,et al. A Molecular Insight into the Synergistic Mechanism of Nigella sativa (Black Cumin) with β-Lactam Antibiotics against Clinical Isolates of Methicillin-Resistant Staphylococcus aureus , 2021, Applied Sciences.
[21] Wei Chen,et al. Efficacy of probiotics in multiple sclerosis: a systematic review of preclinical trials and meta-analysis of randomized controlled trials. , 2021, Food & function.
[22] K. El-Tarabily,et al. Nutritional, antimicrobial and medicinal properties of Camel’s milk: A review , 2021, Saudi journal of biological sciences.
[23] N. Al-Dhabi,et al. Probiotic and Antioxidant Potential of Lactobacillus reuteriLR12 and Lactobacillus lactisLL10 Isolated from Pineapple Puree and Quality Analysis of Pineapple-Flavored Goat Milk Yoghurt during Storage , 2020, Microorganisms.
[24] H. Yadav,et al. Postbiotics-parabiotics: the new horizons in microbial biotherapy and functional foods , 2020, Microbial Cell Factories.
[25] G. Opdenakker,et al. Neutrophils: Underestimated Players in the Pathogenesis of Multiple Sclerosis (MS) , 2020, International journal of molecular sciences.
[26] X. Montalban,et al. A Commercial Probiotic Induces Tolerogenic and Reduces Pathogenic Responses in Experimental Autoimmune Encephalomyelitis , 2020, Cells.
[27] R. Frozza,et al. The Role of Short-Chain Fatty Acids From Gut Microbiota in Gut-Brain Communication , 2020, Frontiers in Endocrinology.
[28] M. Morshedi,et al. Immunomodulatory and anti-inflammatory effects of probiotics in multiple sclerosis: a systematic review , 2019, Journal of Neuroinflammation.
[29] S. Awad,et al. Milk Bioactive Peptides: Antioxidant, Antimicrobial and Anti-Diabetic Activities , 2019, Advances in Biochemistry.
[30] Yuyin Fan,et al. Dietary Modulation of Intestinal Microbiota: Future Opportunities in Experimental Autoimmune Encephalomyelitis and Multiple Sclerosis , 2019, Front. Microbiol..
[31] Christopher M. Taylor,et al. Lactobacillus reuteri Reduces the Severity of Experimental Autoimmune Encephalomyelitis in Mice by Modulating Gut Microbiota , 2019, Front. Immunol..
[32] M. Saghafi-Asl,et al. The novel insight into anti-inflammatory and anxiolytic effects of psychobiotics in diabetic rats: possible link between gut microbiota and brain regions , 2019, European Journal of Nutrition.
[33] S. Sozzani,et al. Cytokine Targeting by miRNAs in Autoimmune Diseases , 2019, Front. Immunol..
[34] M. Tajabadi-Ebrahimi,et al. Probiotic and selenium co-supplementation, and the effects on clinical, metabolic and genetic status in Alzheimer's disease: A randomized, double-blind, controlled trial. , 2019, Clinical nutrition.
[35] Xinliang Wei,et al. Semi-rational screening of the probiotics from the fecal flora of healthy adults against DSS-induced colitis mice by enhancing anti-inflammatory activity and modulating the gut microbiota. , 2019, Journal of microbiology and biotechnology.
[36] Elizabeth A. Kennedy,et al. Mouse Microbiota Models: Comparing Germ-Free Mice and Antibiotics Treatment as Tools for Modifying Gut Bacteria , 2018, Front. Physiol..
[37] Z. M. Dar,et al. Role of Probiotics in Human Health , 2018, Research Trends in Life Sciences (Volume - 1).
[38] Ludwig Kappos,et al. Neurofilaments as biomarkers in neurological disorders , 2018, Nature Reviews Neurology.
[39] L. Piccio,et al. Use of Vitamins and Dietary Supplements by Patients With Multiple Sclerosis: A Review , 2018, JAMA neurology.
[40] Trevor O. Kirby,et al. The Gut Microbiome and Multiple Sclerosis. , 2018, Cold Spring Harbor perspectives in medicine.
[41] C. Gazzaruso,et al. Microbiota and metabolic diseases , 2018, Endocrine.
[42] Wenyi Zhang,et al. Influence of Bactrian camel milk on the gut microbiota. , 2018, Journal of dairy science.
[43] M. Rafieian-kopaei,et al. Probiotics are a good choice in remission of inflammatory bowel diseases: A meta analysis and systematic review , 2018, Journal of cellular physiology.
[44] F. Ribeiro,et al. Animal Toxins as Therapeutic Tools to Treat Neurodegenerative Diseases , 2018, Front. Pharmacol..
[45] B. Zeydan,et al. Progressive Forms of Multiple Sclerosis: Distinct Entity or Age-Dependent Phenomena. , 2018, Neurologic clinics.
[46] Moses Rodriguez,et al. Multiple Sclerosis , 2017, Neurologic Clinics.
[47] M. Mahmoudi,et al. Bifidobacterium animalis in combination with human origin of Lactobacillus plantarum ameliorate neuroinflammation in experimental model of multiple sclerosis by altering CD4+ T cell subset balance. , 2017, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[48] K. Abe,et al. Therapeutic potential of Bifidobacterium breve strain A1 for preventing cognitive impairment in Alzheimer’s disease , 2017, Scientific Reports.
[49] É. Oswald,et al. Oral Administration of the Probiotic Strain Escherichia coli Nissle 1917 Reduces Susceptibility to Neuroinflammation and Repairs Experimental Autoimmune Encephalomyelitis-Induced Intestinal Barrier Dysfunction , 2017, Front. Immunol..
[50] B. '. ’t Hart,et al. Modulation of Multiple Sclerosis and Its Animal Model Experimental Autoimmune Encephalomyelitis by Food and Gut Microbiota , 2017, Front. Immunol..
[51] S. Prakash,et al. Microbiome, probiotics and neurodegenerative diseases: deciphering the gut brain axis , 2017, Cellular and Molecular Life Sciences.
[52] Miguel Alaminos,et al. Staining Methods for Normal and Regenerative Myelin in the Nervous System. , 2017, Methods in molecular biology.
[53] A. Mangalam,et al. The “Gut Feeling”: Breaking Down the Role of Gut Microbiome in Multiple Sclerosis , 2017, Neurotherapeutics.
[54] S. Esposito,et al. Microbiota and neurologic diseases: potential effects of probiotics , 2016, Journal of Translational Medicine.
[55] E. Mowry,et al. Emerging Concepts on the Gut Microbiome and Multiple Sclerosis. , 2016, Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research.
[56] K. Koriem. Multiple sclerosis: New insights and trends , 2016 .
[57] P. Sætrom,et al. Human Breast Milk miRNA, Maternal Probiotic Supplementation and Atopic Dermatitis in Offspring , 2015, PloS one.
[58] H. Nakajima,et al. Sox5 and Th17 cell differentiation , 2015, Oncotarget.
[59] I. Amit,et al. Host microbiota constantly control maturation and function of microglia in the CNS , 2015, Nature Neuroscience.
[60] Á. Gil,et al. Pyrosequencing Analysis Reveals Changes in Intestinal Microbiota of Healthy Adults Who Received a Daily Dose of Immunomodulatory Probiotic Strains , 2015, Nutrients.
[61] M. Nasr-Esfahani,et al. miR-141 and miR-200a, Revelation of New Possible Players in Modulation of Th17/Treg Differentiation and Pathogenesis of Multiple Sclerosis , 2015, PloS one.
[62] Rustem F. Ismagilov,et al. Indigenous Bacteria from the Gut Microbiota Regulate Host Serotonin Biosynthesis , 2015, Cell.
[63] S. Ignacimuthu,et al. Bioassay guided fractionation and identification of active anti-inflammatory constituent from Delonix elata flowers using RAW 264.7 cells , 2015, Pharmaceutical biology.
[64] J. Dyck,et al. Inhibiting peripheral serotonin synthesis reduces obesity and metabolic dysfunction by promoting brown adipose tissue thermogenesis , 2014, Nature Medicine.
[65] H. Arab,et al. Camel's milk ameliorates TNBS-induced colitis in rats via downregulation of inflammatory cytokines and oxidative stress. , 2014, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[66] J. Wong,et al. Melatonin Regulation as a Possible Mechanism for Probiotic (VSL#3) in Irritable Bowel Syndrome: A Randomized Double-Blinded Placebo Study , 2014, Digestive Diseases and Sciences.
[67] Gicheon Kim,et al. Amelioration of experimental autoimmune encephalomyelitis by probiotic mixture is mediated by a shift in T helper cell immune response. , 2013, Clinical immunology.
[68] Á. Gil,et al. Probiotic Mechanisms of Action , 2012, Annals of Nutrition and Metabolism.
[69] Jenna M. Sullivan,et al. Th17 cells induce ectopic lymphoid follicles in central nervous system tissue inflammation. , 2011, Immunity.
[70] D. Kasper,et al. A polysaccharide from the human commensal Bacteroides fragilis protects against CNS demyelinating disease , 2010, Mucosal Immunology.
[71] Elizabeth Fisher,et al. Imaging correlates of axonal swelling in chronic multiple sclerosis brains , 2007, Annals of neurology.