A review on microbiota: relation with diseases and nutrients role
暂无分享,去创建一个
I. Tomasevic | Maomao Zeng | M. Brennan | F. Oz | Muharrem Bayrak | M. Şimşek | E. Ekiz | K. Çadırcı | Charles Brennan | E. Oz | Charalampos Proestos | Aysegul Simsek | Tahra Elobeid | Nihal Tuncer | Mukul Kumar
[1] J. Leza,et al. The gut-microbiota-brain axis in a Spanish population in the aftermath of the COVID-19 pandemic: microbiota composition linked to anxiety, trauma, and depression profiles , 2023, Gut microbes.
[2] Chen Liang,et al. Vagus Nerve and Underlying Impact on the Gut Microbiota-Brain Axis in Behavior and Neurodegenerative Diseases , 2022, Journal of inflammation research.
[3] S. Jheeta,et al. Feeding Our Microbiota: Stimulation of the Immune/Semiochemical System and the Potential Amelioration of Non-Communicable Diseases , 2022, Life.
[4] W. Khan,et al. Peripheral Serotonin: Cultivating Companionship with Gut Microbiota in Intestinal Homeostasis. , 2022, American journal of physiology. Cell physiology.
[5] Dongya Zhang,et al. Microbiota in health and diseases , 2022, Signal Transduction and Targeted Therapy.
[6] J. Cryan,et al. Inflammation, Lifestyle Factors, and the Microbiome‐Gut‐Brain Axis: Relevance to Depression and Antidepressant Action , 2022, Clinical pharmacology and therapeutics.
[7] Yoon Kim,et al. Dysbiotic change in gastric microbiome and its functional implication in gastric carcinogenesis , 2022, Scientific Reports.
[8] Jeff Trent,et al. Nivolumab plus ipilimumab with or without live bacterial supplementation in metastatic renal cell carcinoma: a randomized phase 1 trial , 2022, Nature Medicine.
[9] G. Major,et al. A systematic review and meta-analysis on the prevalence of non-malignant, organic gastrointestinal disorders misdiagnosed as irritable bowel syndrome , 2022, Scientific Reports.
[10] N. Segata,et al. Intestinal Akkermansia muciniphila predicts clinical response to PD-1 blockade in patients with advanced non-small-cell lung cancer , 2022, Nature Medicine.
[11] Hei Sung Kim,et al. The Human Microbiota and Skin Cancer , 2022, International journal of molecular sciences.
[12] D. Hanahan. Hallmarks of Cancer: New Dimensions. , 2022, Cancer discovery.
[13] Edoardo Pasolli,et al. Cancer induces a stress ileopathy depending on B-adrenergic receptors and promoting dysbiosis that contribute to carcinogenesis. , 2021, Cancer discovery.
[14] U. Ghoshal. Postinfection Irritable Bowel Syndrome , 2021, Gut and liver.
[15] Chen Liang,et al. Crosstalk between cancer-associated fibroblasts and immune cells in the tumor microenvironment: new findings and future perspectives , 2021, Molecular Cancer.
[16] B. Helmink,et al. Hallmarks of response, resistance, and toxicity to immune checkpoint blockade , 2021, Cell.
[17] M. Heymann,et al. The intratumoral microbiome: Characterization methods and functional impact. , 2021, Cancer letters.
[18] N. Mokhtar,et al. Irritable Bowel Syndrome, Depression, and Neurodegeneration: A Bidirectional Communication from Gut to Brain , 2021, Nutrients.
[19] N. Ajami,et al. Nodal immune flare mimics nodal disease progression following neoadjuvant immune checkpoint inhibitors in non-small cell lung cancer , 2021, Nature Communications.
[20] L. Zitvogel,et al. Microbiota-Centered Interventions: The Next Breakthrough in Immuno-Oncology? , 2021, Cancer discovery.
[21] Brian J. Bennett,et al. High-fat diet–induced colonocyte dysfunction escalates microbiota-derived trimethylamine N-oxide , 2021, Science.
[22] J. Denu,et al. Short-chain fatty acids activate acetyltransferase p300 , 2021, bioRxiv.
[23] L. Thompson,et al. Discriminatory and cooperative effects within the mouse gut microbiota in response to flaxseed and its oil and lignan components. , 2021, The Journal of nutritional biochemistry.
[24] G. Qi,et al. Dietary oregano essential oil supplementation improves intestinal functions and alters gut microbiota in late-phase laying hens , 2021, Journal of Animal Science and Biotechnology.
[25] K. Chung,et al. Altered gut microbiome compositions are associated with the severity of asthma , 2021, Journal of thoracic disease.
[26] Yuanfa Liu,et al. Influences of dietary oils and fats, and the accompanied minor content of components on the gut microbiota and gut inflammation: A review , 2021, Trends in Food Science & Technology.
[27] Yongdong Feng,et al. IL-6 regulates autophagy and chemotherapy resistance by promoting BECN1 phosphorylation , 2021, Nature Communications.
[28] J. Przysławski,et al. The role of microbiota and enteroendocrine cells in maintaining homeostasis in the human digestive tract. , 2021, Advances in medical sciences.
[29] Y. Shouche,et al. Restoration of dysbiotic human gut microbiome for homeostasis. , 2021, Life sciences.
[30] U. Vollmer-Conna,et al. A Review of Inflammatory Bowel Disease: A Model of Microbial, Immune and Neuropsychological Integration , 2021, Public Health Reviews.
[31] M. Sohrabi,et al. Role of microbiota-derived short-chain fatty acids in cancer development and prevention. , 2021, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[32] Doron Betel,et al. Impact of Use of Antibiotics on Response to Immune Checkpoint Inhibitors and Tumor Microenvironment , 2021, American journal of clinical oncology.
[33] Dohyun Han,et al. Akkermansia muciniphila secretes a glucagon-like peptide-1-inducing protein that improves glucose homeostasis and ameliorates metabolic disease in mice , 2021, Nature Microbiology.
[34] C. Mackay,et al. Gut microbial metabolites facilitate anticancer therapy efficacy by modulating cytotoxic CD8+ T cell immunity. , 2021, Cell metabolism.
[35] E. Ruppin,et al. Identification of bacteria-derived HLA-bound peptides in melanoma , 2021, Nature.
[36] G. DeNicola,et al. The microbiome(s) and cancer: know thy neighbor(s) , 2021, The Journal of pathology.
[37] L. Zitvogel,et al. Oral administration of Akkermansia muciniphila elevates systemic antiaging and anticancer metabolites , 2021, Aging.
[38] Juyi Wan,et al. Cytotoxin-Associated Gene A-Positive Helicobacter pylori Promotes Autophagy in Colon Cancer Cells by Inhibiting miR-125b-5p , 2021, The Canadian journal of infectious diseases & medical microbiology = Journal canadien des maladies infectieuses et de la microbiologie medicale.
[39] G. Méhes,et al. Molecular Profiling of Merkel Cell Polyomavirus-Associated Merkel Cell Carcinoma and Cutaneous Melanoma , 2021, Diagnostics.
[40] S. Ramos,et al. Impact of diet on gut microbiota , 2021 .
[41] S. Duncan,et al. Impact of protein on the composition and metabolism of the human gut microbiota and health , 2020, Proceedings of the Nutrition Society.
[42] N. Ajami,et al. Fecal microbiota transplant promotes response in immunotherapy-refractory melanoma patients , 2020, Science.
[43] J. Ajani,et al. Fusobacterium nucleatum confers chemoresistance by modulating autophagy in oesophageal squamous cell carcinoma , 2020, British Journal of Cancer.
[44] M. C. G. Gouveia Pelúzio,et al. Chemoprevention of DMH-Induced Early Colon Carcinogenesis in Male BALB/c Mice by Administration of Lactobacillus Paracasei DTA81 , 2020, Microorganisms.
[45] Shuo Wang,et al. The Impact of Human Papillomavirus Infection on Skin Cancer: A Population-Based Cohort Study. , 2020, The oncologist.
[46] Yi Chen,et al. Review of the relationships among polysaccharides, gut microbiota, and human health. , 2020, Food research international.
[47] Matthias Scholz,et al. Gut microbiota associations with diet in irritable bowel syndrome and the effect of low FODMAP diet and probiotics. , 2020, Clinical nutrition.
[48] T. Makino,et al. Skin microbiome in acral melanoma: Corynebacterium is associated with advanced melanoma , 2020, The Journal of dermatology.
[49] J. Sonnenburg,et al. Gut Microbiota-Targeted Diets Modulate Human Immune Status , 2020, bioRxiv.
[50] P. Sparén,et al. HPV Vaccination and the Risk of Invasive Cervical Cancer. , 2020, The New England journal of medicine.
[51] Y. Kudo,et al. Involvement of Fusobacterium Species in Oral Cancer Progression: A Literature Review Including Other Types of Cancer , 2020, International journal of molecular sciences.
[52] Hui Wang,et al. Inhibition of autophagy by chloroquine enhances the antitumor activity of gemcitabine for gallbladder cancer , 2020, Cancer Chemotherapy and Pharmacology.
[53] T. Okumura,et al. Probiotic-derived ferrichrome inhibits the growth of refractory pancreatic cancer cells , 2020, International journal of oncology.
[54] M. Mijares,et al. The role of Chloroquine and Hydroxychloroquine in Immune Regulation and Diseases. , 2020, Current pharmaceutical design.
[55] N. Cho,et al. Differential immune microenvironmental features of microsatellite-unstable colorectal cancers according to Fusobacterium nucleatum status , 2020, Cancer Immunology, Immunotherapy.
[56] S. Pizzimenti,et al. Non-Melanoma Skin Cancer: news from microbiota research , 2020, Critical reviews in microbiology.
[57] Qiang Li,et al. Itraconazole inhibits the Hedgehog signaling pathway thereby inducing autophagy-mediated apoptosis of colon cancer cells , 2020, Cell Death & Disease.
[58] M. Galdiero,et al. Current Evidence on the Ocular Surface Microbiota and Related Diseases , 2020, Microorganisms.
[59] Y. Hu,et al. Inhibition of autophagy aggravates DNA damage response and gastric tumorigenesis via Rad51 ubiquitination in response to H. pylori infection , 2020, Gut microbes.
[60] Kathy T. LeSaint,et al. Brief Review of Chloroquine and Hydroxychloroquine Toxicity and Management , 2020, The western journal of emergency medicine.
[61] Noam Shental,et al. The human tumor microbiome is composed of tumor type–specific intracellular bacteria , 2020, Science.
[62] Edoardo Pasolli,et al. Gut Bacteria Composition Drives Primary Resistance to Cancer Immunotherapy in Renal Cell Carcinoma Patients. , 2020, European urology.
[63] P. Savelkoul,et al. Effects of Antibiotics on the Intestinal Microbiota of Mice , 2020, Antibiotics.
[64] K. Laitinen,et al. Interactions of dietary fat with the gut microbiota: Evaluation of mechanisms and metabolic consequences. , 2020, Clinical nutrition.
[65] K. Michels,et al. Does Consumption of Fermented Foods Modify the Human Gut Microbiota? , 2020, The Journal of nutrition.
[66] R. Eri,et al. Beyond Just Bacteria: Functional Biomes in the Gut Ecosystem Including Virome, Mycobiome, Archaeome and Helminths , 2020, Microorganisms.
[67] R. Barrangou,et al. In Vivo Targeting of Clostridioides difficile Using Phage-Delivered CRISPR-Cas3 Antimicrobials , 2020, mBio.
[68] Yanting Chen,et al. Polyphenol supplementation benefits human health via gut microbiota: A systematic review via meta-analysis , 2020 .
[69] Rob Knight,et al. Microbiome analyses of blood and tissues suggest cancer diagnostic approach , 2020, Nature.
[70] Xu Feng,et al. Preventive effect of Lactobacillus reuteri on melanoma. , 2020, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[71] Gail L. Rosen,et al. Emerging Priorities for Microbiome Research , 2020, Frontiers in Microbiology.
[72] M. Sokolowska,et al. The Role of Lung and Gut Microbiota in the Pathology of Asthma , 2020, Immunity.
[73] S. O'keefe,et al. Diet and the Human Gut Microbiome: An International Review , 2020, Digestive Diseases and Sciences.
[74] Qi Yang,et al. Role of Dietary Nutrients in the Modulation of Gut Microbiota: A Narrative Review , 2020, Nutrients.
[75] S. Jheeta,et al. Measuring Microbiome Effectiveness: A Role for Ingestible Sensors , 2020, Gastrointestinal Disorders.
[76] Shi-kun He,et al. Autophagy and autophagy-related proteins in cancer , 2020, Molecular Cancer.
[77] Dayong Ren,et al. Reduction of serum cholesterol and its mechanism by Lactobacillus plantarum H6 screened from local fermented food products. , 2020, Food & function.
[78] D. Bar-Sagi,et al. Tumor Cell-Derived IL-1β Promotes Desmoplasia and Immune Suppression in Pancreatic Cancer. , 2020, Cancer research.
[79] D. Schadendorf,et al. Tertiary lymphoid structures improve immunotherapy and survival in melanoma , 2020, Nature.
[80] S. Pushalkar,et al. The Fungal Mycobiome Promotes Pancreatic Oncogenesis via MBL Activation , 2019, Nature.
[81] A. Soto-Piña,et al. Inulin Supplementation Reduces Systolic Blood Pressure in Women with Breast Cancer Undergoing Neoadjuvant Chemotherapy , 2019, Cardiovascular therapeutics.
[82] W. Wong,et al. The Microbiome and Irritable Bowel Syndrome – A Review on the Pathophysiology, Current Research and Future Therapy , 2019, Front. Microbiol..
[83] K. Kalanetra,et al. Neonatal Vitamin A Supplementation and Vitamin A Status Are Associated with Gut Microbiome Composition in Bangladeshi Infants in Early Infancy and at 2 Years of Age. , 2019, The Journal of nutrition.
[84] P. Nisticò,et al. Polyphenols: Immunomodulatory and Therapeutic Implication in Colorectal Cancer , 2019, Front. Immunol..
[85] B. Helmink,et al. The microbiome, cancer, and cancer therapy , 2019, Nature Medicine.
[86] T. Powles,et al. Pembrolizumab plus Axitinib versus Sunitinib for Advanced Renal‐Cell Carcinoma , 2019, The New England journal of medicine.
[87] Rob Knight,et al. Contamination in Low Microbial Biomass Microbiome Studies: Issues and Recommendations. , 2019, Trends in microbiology.
[88] A. Manges,et al. The Human Microbiome and Child Growth - First 1000 Days and Beyond. , 2019, Trends in microbiology.
[89] J. McQuade,et al. Modulating the microbiome to improve therapeutic response in cancer. , 2019, The Lancet. Oncology.
[90] Amy Holt,et al. The flagellin of candidate live biotherapeutic Enterococcus gallinarum MRx0518 is a potent immunostimulant , 2019, Scientific Reports.
[91] T. Weir,et al. The gut microbiota at the intersection of diet and human health , 2018, Science.
[92] C. Jobin,et al. Campylobacter jejuni promotes colorectal tumorigenesis through the action of cytolethal distending toxin , 2018, Gut.
[93] H. Törnblom,et al. Work Productivity and Activity Impairment in Irritable Bowel Syndrome (IBS): A Multifaceted Problem , 2018, The American Journal of Gastroenterology.
[94] L. Iughetti,et al. Changes of intestinal microbiota in early life , 2018, The journal of maternal-fetal & neonatal medicine : the official journal of the European Association of Perinatal Medicine, the Federation of Asia and Oceania Perinatal Societies, the International Society of Perinatal Obstetricians.
[95] T. van de Wiele,et al. Impact of tart cherries polyphenols on the human gut microbiota and phenolic metabolites in vitro and in vivo. , 2018, The Journal of nutritional biochemistry.
[96] M. Gilbert,et al. Protein fermentation in the gut; implications for intestinal dysfunction in humans, pigs, and poultry. , 2018, American journal of physiology. Gastrointestinal and liver physiology.
[97] T. Yada,et al. Short-chain fatty acids suppress food intake by activating vagal afferent neurons. , 2018, The Journal of nutritional biochemistry.
[98] M. V. van Zelm,et al. Review article: short chain fatty acids as potential therapeutic agents in human gastrointestinal and inflammatory disorders , 2018, Alimentary pharmacology & therapeutics.
[99] I. Kimura,et al. Dietary mung bean protein reduces high-fat diet-induced weight gain by modulating host bile acid metabolism in a gut microbiota-dependent manner. , 2018, Biochemical and biophysical research communications.
[100] Kristin M. Scheible,et al. Impact of prematurity and nutrition on the developing gut microbiome and preterm infant growth , 2017, Microbiome.
[101] Daxesh P. Patel,et al. Intermittent Fasting Promotes White Adipose Browning and Decreases Obesity by Shaping the Gut Microbiota. , 2017, Cell metabolism.
[102] J. Nakayama,et al. Development of the gut microbiota in infancy and its impact on health in later life. , 2017, Allergology international : official journal of the Japanese Society of Allergology.
[103] J. Most,et al. Gut microbiota composition in relation to the metabolic response to 12-week combined polyphenol supplementation in overweight men and women , 2017, European Journal of Clinical Nutrition.
[104] L. Macia,et al. Detrimental Impact of Microbiota-Accessible Carbohydrate-Deprived Diet on Gut and Immune Homeostasis: An Overview , 2017, Front. Immunol..
[105] A. Matheu,et al. Helicobacter pylori infection modulates the expression of miRNAs associated with DNA mismatch repair pathway , 2017, Molecular carcinogenesis.
[106] J. Wargo,et al. Primary, Adaptive, and Acquired Resistance to Cancer Immunotherapy , 2017, Cell.
[107] S. Boytsov,et al. Association between the gut microbiota and diet: Fetal life, early childhood, and further life. , 2016, Nutrition.
[108] Lindsay K. Eller,et al. Interactive effects of oligofructose and obesity predisposition on gut hormones and microbiota in diet‐induced obese rats , 2015, Obesity.
[109] Jeroen Raes,et al. How informative is the mouse for human gut microbiota research? , 2015, Disease Models & Mechanisms.
[110] Eran Segal,et al. Transkingdom Control of Microbiota Diurnal Oscillations Promotes Metabolic Homeostasis , 2014, Cell.
[111] Lawrence A. David,et al. Diet rapidly and reproducibly alters the human gut microbiome , 2013, Nature.
[112] W. D. de Vos,et al. Intestinal Microbiota in Healthy U.S. Young Children and Adults—A High Throughput Microarray Analysis , 2013, PloS one.
[113] J. Kranich,et al. Microbial influences on epithelial integrity and immune function as a basis for inflammatory diseases , 2012, Immunological reviews.
[114] A. N. Alagöz. Microbiota and Neurodegeneration , 2017 .