The microbiome, cancer, and cancer therapy
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B. Helmink | J. Wargo | V. Gopalakrishnan | Vancheswaran Gopalakrishnan | M. A. Khan | Amanda Hermann | Jennifer A. Wargo | Beth A. Helmink | M. A. Wadud Khan | Amanda Hermann
[1] E. Hsu,et al. Cost-Effectiveness of Fecal Microbiota Transplantation in the Treatment of Recurrent Clostridium Difficile Infection: A Literature Review , 2017, Cureus.
[2] J. Alverdy,et al. Gut microbiome influences on anastomotic leak and recurrence rates following colorectal cancer surgery , 2018, The British journal of surgery.
[3] B. Helmink,et al. Fecal microbiota transplantation for refractory immune checkpoint inhibitor-associated colitis , 2018, Nature Medicine.
[4] Sue Abell,et al. Probiotics , 2009, Clinical pediatrics.
[5] F. Marincola,et al. Commensal Bacteria Control Cancer Response to Therapy by Modulating the Tumor Microenvironment , 2013, Science.
[6] R. Knight,et al. Meta‐analyses of human gut microbes associated with obesity and IBD , 2014, FEBS letters.
[7] Wendy S. Garrett,et al. Cancer and the microbiota , 2015, Science.
[8] M. Blaser,et al. The Intestinal Microbiome and Estrogen Receptor-Positive Female Breast Cancer. , 2016, Journal of the National Cancer Institute.
[9] T. van de Wiele,et al. Emerging Trends in “Smart Probiotics”: Functional Consideration for the Development of Novel Health and Industrial Applications , 2017, Front. Microbiol..
[10] Kevin Haynes,et al. Recurrent antibiotic exposure may promote cancer formation--Another step in understanding the role of the human microbiota? , 2015, European journal of cancer.
[11] J. Torres,et al. Microbiota studies in the bile duct strongly suggest a role for Helicobacter pylori in extrahepatic cholangiocarcinoma. , 2016, Clinical microbiology and infection : the official publication of the European Society of Clinical Microbiology and Infectious Diseases.
[12] Aleksandra A. Kolodziejczyk,et al. Dysbiosis and the immune system , 2017, Nature Reviews Immunology.
[13] L. Zitvogel,et al. Anticancer effects of the microbiome and its products , 2017, Nature Reviews Microbiology.
[14] S. Smola. Immunopathogenesis of HPV-Associated Cancers and Prospects for Immunotherapy , 2017, Viruses.
[15] Lihua Zhang,et al. Insight into alteration of gut microbiota in Clostridium difficile infection and asymptomatic C. difficile colonization. , 2015, Anaerobe.
[16] A. Lyra,et al. Intestinal microbiota is altered in patients with colon cancer and modified by probiotic intervention , 2017, BMJ open gastroenterology.
[17] M. Salami,et al. Clinical and metabolic response to probiotic supplementation in patients with multiple sclerosis: A randomized, double-blind, placebo-controlled trial. , 2017, Clinical nutrition.
[18] W. Isaacs,et al. A molecular analysis of prokaryotic and viral DNA sequences in prostate tissue from patients with prostate cancer indicates the presence of multiple and diverse microorganisms , 2008, The Prostate.
[19] Karen C Carroll,et al. The Bacteroides fragilis toxin gene is prevalent in the colon mucosa of colorectal cancer patients. , 2015, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[20] B. Birren,et al. Genomic analysis identifies association of Fusobacterium with colorectal carcinoma. , 2012, Genome research.
[21] Y. Taur,et al. Intestinal Blautia Is Associated with Reduced Death from Graft-versus-Host Disease. , 2015, Biology of blood and marrow transplantation : journal of the American Society for Blood and Marrow Transplantation.
[22] W. Tissing,et al. Chemotherapy treatment in pediatric patients with acute myeloid leukemia receiving antimicrobial prophylaxis leads to a relative increase of colonization with potentially pathogenic bacteria in the gut. , 2009, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[23] Rob Knight,et al. American Gut: an Open Platform for Citizen Science Microbiome Research , 2018, mSystems.
[24] W. Garrett,et al. Gut Microbiota, Inflammation, and Colorectal Cancer. , 2016, Annual review of microbiology.
[25] Justine W. Debelius,et al. Microbial endocrinology: the interplay between the microbiota and the endocrine system. , 2015, FEMS microbiology reviews.
[26] A. Wong-Beringer,et al. Regulatory Oversight and Safety of Probiotic Use , 2010, Emerging infectious diseases.
[27] K. Kalanetra,et al. Stool Microbiota and Vaccine Responses of Infants , 2014, Pediatrics.
[28] Zhi Wei,et al. The ovarian cancer oncobiome , 2017, Oncotarget.
[29] G. Núñez,et al. The interplay between host immune cells and gut microbiota in chronic inflammatory diseases , 2017, Experimental &Molecular Medicine.
[30] D. Nielsen,et al. A bacteriophage cocktail targeting Escherichia coli reduces E. coli in simulated gut conditions, while preserving a non-targeted representative commensal normal microbiota , 2018, Gut microbes.
[31] Annette Lee,et al. Evolving Concepts: How Diet and the Intestinal Microbiome Act as Modulators of Breast Malignancy , 2013, ISRN oncology.
[32] Mark Tangney,et al. Tumour targeting with systemically administered bacteria. , 2010, Current gene therapy.
[33] R. Sandler,et al. Fusobacterium Is Associated with Colorectal Adenomas , 2013, PloS one.
[34] H. Weiner,et al. A probiotic modulates the microbiome and immunity in multiple sclerosis , 2018, Annals of neurology.
[35] T. Dinan,et al. Minireview: Gut microbiota: the neglected endocrine organ. , 2014, Molecular endocrinology.
[36] T. Karantanos,et al. Synbiotics and gastrointestinal function-related quality of life after elective colorectal cancer resection , 2016, Annals of gastroenterology.
[37] S. Rosenberg,et al. Continuous intravenous administration of live genetically modified salmonella typhimurium in patients with metastatic melanoma. , 2003, Journal of immunotherapy.
[38] G. Dalmasso,et al. The bacterial genotoxin colibactin promotes colon tumor growth by modifying the tumor microenvironment , 2014, Gut microbes.
[39] H. Adami,et al. Fecal Microbiota Transplantation for Primary Clostridium difficile Infection. , 2018, The New England journal of medicine.
[40] M. Roberfroid,et al. Possible adjuvant cancer therapy by two prebiotics--inulin or oligofructose. , 2005, In vivo.
[41] C. Kelly. Fecal microbiota transplantation--an old therapy comes of age. , 2013, The New England journal of medicine.
[42] S. Podolsky. Metchnikoff and the microbiome , 2012, The Lancet.
[43] A. Fodor,et al. Locoregional Effects of Microbiota in a Preclinical Model of Colon Carcinogenesis. , 2017, Cancer research.
[44] E. Le Chatelier,et al. Gut microbiome modulates response to anti–PD-1 immunotherapy in melanoma patients , 2018, Science.
[45] C. Theriot,et al. Impact of microbial derived secondary bile acids on colonization resistance against Clostridium difficile in the gastrointestinal tract. , 2016, Anaerobe.
[46] J. Beniak,et al. Prevention of irinotecan induced diarrhea by probiotics: A randomized double blind, placebo controlled pilot study. , 2015, Complementary therapies in medicine.
[47] C. Jobin,et al. Campylobacter jejuni promotes colorectal tumorigenesis through the action of cytolethal distending toxin , 2018, Gut.
[48] W. Meng,et al. Helicobacter pylori-induced gastric inflammation and gastric cancer. , 2014, Cancer letters.
[49] Ian D. Wilson,et al. Gut microbiota modulation of chemotherapy efficacy and toxicity , 2017, Nature Reviews Gastroenterology &Hepatology.
[50] Emma Allen-Vercoe,et al. Co-occurrence of anaerobic bacteria in colorectal carcinomas , 2013, Microbiome.
[51] M. R. Rubinstein,et al. Fusobacterium nucleatum promotes colorectal carcinogenesis by modulating E-cadherin/β-catenin signaling via its FadA adhesin. , 2013, Cell host & microbe.
[52] Masahira Hattori,et al. Obesity-induced gut microbial metabolite promotes liver cancer through senescence secretome , 2013, Nature.
[53] Matthew C. B. Tsilimigras,et al. Carcinogenesis and therapeutics: the microbiota perspective , 2017, Nature Microbiology.
[54] Jung-Joon Min,et al. Two-step enhanced cancer immunotherapy with engineered Salmonella typhimurium secreting heterologous flagellin , 2017, Science Translational Medicine.
[55] T. Borody,et al. Fecal microbiota transplantation and emerging applications , 2012, Nature Reviews Gastroenterology &Hepatology.
[56] Jun Yu,et al. Gut mucosal microbiome across stages of colorectal carcinogenesis , 2015, Nature Communications.
[57] L. Cahill,et al. The Impact of Exclusive Enteral Nutrition (EEN) on the Gut Microbiome in Crohn’s Disease: A Review , 2017, Nutrients.
[58] S. O'keefe. Diet, microorganisms and their metabolites, and colon cancer , 2016, Nature Reviews Gastroenterology &Hepatology.
[59] L. Fajas,et al. Dietary Fiber Confers Protection against Flu by Shaping Ly6c− Patrolling Monocyte Hematopoiesis and CD8+ T Cell Metabolism , 2018, Immunity.
[60] H. Szajewska,et al. Commercial probiotic products: A call for improved quality control. A Position Paper by the ESPGHAN Working Group for Probiotics and Prebiotics. , 2017, Journal of pediatric gastroenterology and nutrition.
[61] T. Olszak,et al. Applications of bacteriophages versus phage enzymes to combat and cure bacterial infections: an ambitious and also a realistic application? , 2018, Applied Microbiology and Biotechnology.
[62] A. Andriulli,et al. Pharmacomicrobiomics: exploiting the drug-microbiota interactions in anticancer therapies , 2018, Microbiome.
[63] Eric Vivier,et al. The Intestinal Microbiota Modulates the Anticancer Immune Effects of Cyclophosphamide , 2013, Science.
[64] E. Mardis,et al. An obesity-associated gut microbiome with increased capacity for energy harvest , 2006, Nature.
[65] R Balfour Sartor,et al. Therapeutic Manipulation of the Microbiome in IBD: Current Results and Future Approaches , 2015, Current Treatment Options in Gastroenterology.
[66] C. Manichanh,et al. Reduced diversity of faecal microbiota in Crohn’s disease revealed by a metagenomic approach , 2005, Gut.
[67] A. Eggermont,et al. Baseline gut microbiota predicts clinical response and colitis in metastatic melanoma patients treated with ipilimumab , 2017, Annals of oncology : official journal of the European Society for Medical Oncology.
[68] D. Jacobsohn,et al. Acute graft-versus-host disease. , 1990, Cancer treatment and research.
[69] F. Bushman,et al. Linking Long-Term Dietary Patterns with Gut Microbial Enterotypes , 2011, Science.
[70] B. Mohanti,et al. Lactobacillus brevis CD2 lozenges reduce radiation- and chemotherapy-induced mucositis in patients with head and neck cancer: a randomized double-blind placebo-controlled study. , 2012, European journal of cancer.
[71] E. D. Di Domenico,et al. Biofilm Producing Salmonella Typhi: Chronic Colonization and Development of Gallbladder Cancer , 2017, International journal of molecular sciences.
[72] Helder I Nakaya,et al. TLR5-mediated sensing of gut microbiota is necessary for antibody responses to seasonal influenza vaccination. , 2014, Immunity.
[73] Laura M Cox,et al. Alterations of the human gut microbiome in multiple sclerosis , 2016, Nature Communications.
[74] R. Barrangou,et al. Genotyping by PCR and High-Throughput Sequencing of Commercial Probiotic Products Reveals Composition Biases , 2016, Front. Microbiol..
[75] N. Kinukawa,et al. Prevention of recurrence with epirubicin and lactobacillus casei after transurethral resection of bladder cancer. , 2008, The Journal of urology.
[76] A. Górski,et al. Bacteriophages in the gastrointestinal tract and their implications , 2017, Gut Pathogens.
[77] Casey M. Theriot,et al. Gut microbiome–mediated bile acid metabolism regulates liver cancer via NKT cells , 2018, Science.
[78] C. Jobin,et al. Pretreatment with the probiotic VSL#3 delays transition from inflammation to dysplasia in a rat model of colitis-associated cancer. , 2011, American journal of physiology. Gastrointestinal and liver physiology.
[79] Lactobacillus supplementation for diarrhoea related to chemotherapy of colorectal cancer: a randomised study , 2007, British Journal of Cancer.
[80] Young-Seok Cho,et al. Fecal microbiota transplantation for refractory Crohn's disease , 2017, Intestinal research.
[81] Antonio Ramos,et al. Administration of spores of nontoxigenic Clostridium difficile strain M3 for prevention of recurrent C. difficile infection: a randomized clinical trial. , 2015, JAMA.
[82] Oluf Pedersen,et al. Alterations in fecal microbiota composition by probiotic supplementation in healthy adults: a systematic review of randomized controlled trials , 2016, Genome Medicine.
[83] Katherine H. Huang,et al. Structure, Function and Diversity of the Healthy Human Microbiome , 2012, Nature.
[84] Jason B. Williams,et al. Commensal Bifidobacterium promotes antitumor immunity and facilitates anti–PD-L1 efficacy , 2015, Science.
[85] Noam Shental,et al. Potential role of intratumor bacteria in mediating tumor resistance to the chemotherapeutic drug gemcitabine , 2017, Science.
[86] S. Jonjić,et al. Binding of the Fap2 protein of Fusobacterium nucleatum to human inhibitory receptor TIGIT protects tumors from immune cell attack. , 2015, Immunity.
[87] K. Honda,et al. The microbiota in adaptive immune homeostasis and disease , 2016, Nature.
[88] J. Keenan,et al. Colonization with enterotoxigenic Bacteroides fragilis is associated with early-stage colorectal neoplasia , 2017, PloS one.
[89] Marco Braga,et al. A randomized double-blind trial on perioperative administration of probiotics in colorectal cancer patients. , 2010, World journal of gastroenterology.
[90] B. Finlay,et al. Host-mediated inflammation disrupts the intestinal microbiota and promotes the overgrowth of Enterobacteriaceae. , 2007, Cell host & microbe.
[91] Belgin Dogan,et al. Intestinal Inflammation Targets Cancer-Inducing Activity of the Microbiota , 2012, Science.
[92] H. Qin,et al. Microbiota disbiosis is associated with colorectal cancer , 2015, Front. Microbiol..
[93] Robin Patel,et al. Gut microbiome predictors of treatment response and recurrence in primary Clostridium difficile infection , 2016, Alimentary pharmacology & therapeutics.
[94] J. Goedert,et al. Human gut microbiome and risk for colorectal cancer. , 2013, Journal of the National Cancer Institute.
[95] Zhigang Zhang,et al. Kaposi’s Sarcoma-Associated Herpesvirus Increases PD-L1 and Proinflammatory Cytokine Expression in Human Monocytes , 2017, mBio.
[96] T. Ohkusa,et al. Fusobacterium varium localized in the colonic mucosa of patients with ulcerative colitis stimulates species‐specific antibody , 2002, Journal of gastroenterology and hepatology.
[97] S. Pushalkar,et al. The Pancreatic Cancer Microbiome Promotes Oncogenesis by Induction of Innate and Adaptive Immune Suppression. , 2018, Cancer discovery.
[98] L. Zitvogel,et al. Negative association of antibiotics on clinical activity of immune checkpoint inhibitors in patients with advanced renal cell and non-small-cell lung cancer , 2018, Annals of oncology : official journal of the European Society for Medical Oncology.
[99] S. Rosenberg,et al. Microbial translocation augments the function of adoptively transferred self/tumor-specific CD8+ T cells via TLR4 signaling. , 2007, The Journal of clinical investigation.
[100] C. Cámara-Lemarroy,et al. The intestinal barrier in multiple sclerosis: implications for pathophysiology and therapeutics. , 2018, Brain : a journal of neurology.
[101] Dan Knights,et al. Complex host genetics influence the microbiome in inflammatory bowel disease , 2014, Genome Medicine.
[102] M. Mellow,et al. Fecal Microbiota Transplant for Treatment of Clostridium difficile Infection in Immunocompromised Patients , 2014, The American Journal of Gastroenterology.
[103] C. Huttenhower,et al. Intestinal microbiome analyses identify melanoma patients at risk for checkpoint-blockade-induced colitis , 2016, Nature Communications.
[104] Mathieu Almeida,et al. Dietary intervention impact on gut microbial gene richness , 2013, Nature.
[105] Riyue Bao,et al. The commensal microbiome is associated with anti–PD-1 efficacy in metastatic melanoma patients , 2018, Science.
[106] R. Knight,et al. Evolution of Mammals and Their Gut Microbes , 2008, Science.
[107] G. Gloor,et al. The Microbiota of Breast Tissue and Its Association with Breast Cancer , 2016, Applied and Environmental Microbiology.
[108] Yan Peng,et al. Invasive Fusobacterium nucleatum may play a role in the carcinogenesis of proximal colon cancer through the serrated neoplasia pathway , 2016, International journal of cancer.
[109] Apolinaria García,et al. Microbiota dysbiosis: a new piece in the understanding of the carcinogenesis puzzle. , 2016, Journal of medical microbiology.
[110] M. Hallek,et al. Efficacy of antineoplastic treatment is associated with the use of antibiotics that modulate intestinal microbiota , 2016, Oncoimmunology.
[111] C. Jobin,et al. Novel insights into microbiome in colitis and colorectal cancer , 2017, Current opinion in gastroenterology.
[112] P. Bork,et al. Richness of human gut microbiome correlates with metabolic markers , 2013, Nature.
[113] Christian Jobin,et al. Gut microbiota and probiotics in colon tumorigenesis. , 2011, Cancer letters.
[114] D. Foureau,et al. Role of Gut Commensal Microflora in the Development of Experimental Autoimmune Encephalomyelitis1 , 2009, The Journal of Immunology.
[115] S. Lynch,et al. The Human Intestinal Microbiome in Health and Disease. , 2016, The New England journal of medicine.
[116] M. Carabotti,et al. The gut-brain axis: interactions between enteric microbiota, central and enteric nervous systems , 2015, Annals of gastroenterology.
[117] Laurence Zitvogel,et al. Gut microbiome influences efficacy of PD-1–based immunotherapy against epithelial tumors , 2018, Science.
[118] R. Ley,et al. Metabolic Syndrome and Altered Gut Microbiota in Mice Lacking Toll-Like Receptor 5 , 2010, Science.
[119] J. L. Costa,et al. Gastric microbial community profiling reveals a dysbiotic cancer-associated microbiota , 2017, Gut.
[120] Richard A. Moore,et al. Fusobacterium nucleatum infection is prevalent in human colorectal carcinoma. , 2012, Genome research.
[121] C. Cámara-Lemarroy,et al. Fecal microbiota transplantation associated with 10 years of stability in a patient with SPMS , 2018, Neurology: Neuroimmunology & Neuroinflammation.
[122] K. Svenson,et al. Diet dominates host genotype in shaping the murine gut microbiota. , 2015, Cell host & microbe.
[123] David M. Alvarado,et al. Lactobacillus rhamnosus GG protects the intestinal epithelium from radiation injury through release of lipoteichoic acid, macrophage activation and the migration of mesenchymal stem cells , 2018, Gut.
[124] Xingpeng Wang,et al. Mucosal adherent bacterial dysbiosis in patients with colorectal adenomas , 2016, Scientific Reports.
[125] Gabriel A. Al-Ghalith,et al. Chemotherapy‐driven dysbiosis in the intestinal microbiome , 2015, Alimentary pharmacology & therapeutics.
[126] K. Berer,et al. B cells in spontaneous autoimmune diseases of the central nervous system. , 2011, Molecular immunology.
[127] Chenhong Zhang,et al. Gut bacteria selectively promoted by dietary fibers alleviate type 2 diabetes , 2018, Science.
[128] Lawrence A. David,et al. Diet rapidly and reproducibly alters the human gut microbiome , 2013, Nature.
[129] F. Bäckhed,et al. Host-Bacterial Mutualism in the Human Intestine , 2005, Science.
[130] E. Thiel,et al. MyD88/TLR9 mediated immunopathology and gut microbiota dynamics in a novel murine model of intestinal graft-versus-host disease , 2010, Gut.
[131] G. Kaplan,et al. Effect of Oral Capsule– vs Colonoscopy-Delivered Fecal Microbiota Transplantation on Recurrent Clostridium difficile Infection: A Randomized Clinical Trial , 2017, JAMA.
[132] G. Gloor,et al. Stool substitute transplant therapy for the eradication of Clostridium difficile infection: ‘RePOOPulating’ the gut , 2013, Microbiome.
[133] F. Ginhoux,et al. Anticancer immunotherapy by CTLA-4 blockade relies on the gut microbiota , 2015, Science.
[134] H. Sokol,et al. The microbiota: an underestimated actor in radiation-induced lesions? , 2017, Gut.
[135] A. Fodor,et al. VSL#3 probiotic modifies mucosal microbial composition but does not reduce colitis-associated colorectal cancer , 2013, Scientific Reports.
[136] Donna Neuberg,et al. Analysis of Fusobacterium persistence and antibiotic response in colorectal cancer , 2017, Science.
[137] J. Andrews,et al. Systematic review with meta‐analysis: faecal microbiota transplantation for the induction of remission for active ulcerative colitis , 2017, Alimentary pharmacology & therapeutics.
[138] S. Tannenbaum,et al. Infection-induced colitis in mice causes dynamic and tissue-specific changes in stress response and DNA damage leading to colon cancer , 2012, Proceedings of the National Academy of Sciences.
[139] Daniel Wolff,et al. Low urinary indoxyl sulfate levels early after transplantation reflect a disrupted microbiome and are associated with poor outcome. , 2015, Blood.
[140] S. Orsulic,et al. Ovarian Cancer , 1993, British Journal of Cancer.
[141] S. Ishaq,et al. Helicobacter pylori and gastric cancer: a state of the art review , 2015, Gastroenterology and hepatology from bed to bench.
[142] A. Manges,et al. Systematic review of intestinal microbiota transplantation (fecal bacteriotherapy) for recurrent Clostridium difficile infection. , 2011, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[143] Anthony A. Fodor,et al. Microbial genomic analysis reveals the essential role of inflammation in bacteria-induced colorectal cancer , 2014, Nature Communications.
[144] Shenglan Wang,et al. Meta-analysis of broad-spectrum antibiotic therapy in patients with active inflammatory bowel disease , 2012, Experimental and therapeutic medicine.
[145] X. Tian,et al. Identification of helicobacter species in human liver samples from patients with primary hepatocellular carcinoma , 2004, Journal of Clinical Pathology.
[146] G. Bhanot,et al. Immune Activation and Benefit From Avelumab in EBV-Positive Gastric Cancer. , 2018, Journal of the National Cancer Institute.
[147] D. Kwon,et al. Gut Microbiota is critical for the induction of chemotherapy-induced pain , 2017, Nature Neuroscience.
[148] M. Henn,et al. A Novel Microbiome Therapeutic Increases Gut Microbial Diversity and Prevents Recurrent Clostridium difficile Infection. , 2016, The Journal of infectious diseases.
[149] Jianzhong Hu,et al. Interplay between the lung microbiome and lung cancer. , 2018, Cancer letters.
[150] Jun Yu,et al. Gavage of Fecal Samples From Patients With Colorectal Cancer Promotes Intestinal Carcinogenesis in Germ-Free and Conventional Mice. , 2017, Gastroenterology.
[151] M. Cronin,et al. Orally administered bifidobacteria as vehicles for delivery of agents to systemic tumors. , 2010, Molecular therapy : the journal of the American Society of Gene Therapy.
[152] H. Baba,et al. The microbiome and hepatobiliary-pancreatic cancers. , 2017, Cancer letters.
[153] E. Frenkel,et al. Metagenomic Shotgun Sequencing and Unbiased Metabolomic Profiling Identify Specific Human Gut Microbiota and Metabolites Associated with Immune Checkpoint Therapy Efficacy in Melanoma Patients , 2017, Neoplasia.
[154] Y. Kashi,et al. Radiation induces proinflammatory dysbiosis: transmission of inflammatory susceptibility by host cytokine induction , 2017, Gut.
[155] Jun Yu,et al. Bacteriophage transfer during faecal microbiota transplantation in Clostridium difficile infection is associated with treatment outcome , 2017, Gut.
[156] C. Huttenhower,et al. The healthy human microbiome , 2016, Genome Medicine.
[157] S. Ciernikova,et al. Probiotic bacteria in cancer patients undergoing chemotherapy and radiation therapy. , 2013, Complementary therapies in medicine.
[158] Ming Li,et al. Effects of probiotics on chemotherapy in patients with lung cancer , 2019, Oncology letters.
[159] M. Meyerson,et al. Fusobacterium nucleatum potentiates intestinal tumorigenesis and modulates the tumor-immune microenvironment. , 2013, Cell host & microbe.
[160] Fangfang Guo,et al. Fusobacterium nucleatum Promotes Chemoresistance to Colorectal Cancer by Modulating Autophagy , 2017, Cell.
[161] E. Zoetendal,et al. Findings From a Randomized Controlled Trial of Fecal Transplantation for Patients With Ulcerative Colitis. , 2015, Gastroenterology.
[162] R. Khanin,et al. Regulation of intestinal inflammation by microbiota following allogeneic bone marrow transplantation , 2012, The Journal of experimental medicine.
[163] Cynthia L Sears,et al. Microbes, microbiota, and colon cancer. , 2014, Cell host & microbe.
[164] Anders F. Andersson,et al. Short-Term Antibiotic Treatment Has Differing Long-Term Impacts on the Human Throat and Gut Microbiome , 2010, PloS one.
[165] Wendy S. Garrett,et al. Communicable Ulcerative Colitis Induced by T-bet Deficiency in the Innate Immune System , 2007, Cell.
[166] D. Pardoll,et al. The Myeloid Immune Signature of Enterotoxigenic Bacteroides Fragilis-Induced Murine Colon Tumorigenesis , 2016, Mucosal Immunology.
[167] Patrick D. Schloss,et al. Microbiome Data Distinguish Patients with Clostridium difficile Infection and Non-C. difficile-Associated Diarrhea from Healthy Controls , 2014, mBio.
[168] M. Surette,et al. Fecal Microbiota Transplantation Induces Remission in Patients With Active Ulcerative Colitis in a Randomized Controlled Trial. , 2015, Gastroenterology.
[169] Cynthia L Sears,et al. A human colonic commensal promotes colon tumorigenesis via activation of T helper type 17 T cell responses , 2009, Nature Medicine.
[170] G. Reid,et al. Local bacteria affect the efficacy of chemotherapeutic drugs , 2015, Scientific Reports.
[171] E. Zoetendal,et al. Duodenal infusion of donor feces for recurrent Clostridium difficile. , 2013, The New England journal of medicine.
[172] H. Szajewska,et al. Commercial Probiotic Products: A Call for Improved Quality Control. A Position Paper by the ESPGHAN Working Group for Probiotics and Prebiotics. , 2017, Journal of pediatric gastroenterology and nutrition.
[173] H. T. Park,et al. Bacterial outer membrane vesicles suppress tumor by interferon-γ-mediated antitumor response , 2017, Nature Communications.
[174] David C. Wilson,et al. Host-microbe interactions have shaped the genetic architecture of inflammatory bowel disease , 2012, Nature.