The human gut bacteria Christensenellaceae are widespread, heritable, and associated with health
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[1] W. D. de Vos,et al. Biotechnology of health-promoting bacteria. , 2019, Biotechnology advances.
[2] K. Monroe,et al. Fecal Microbial Diversity and Structure Are Associated with Diet Quality in the Multiethnic Cohort Adiposity Phenotype Study. , 2019, The Journal of nutrition.
[3] K. Ueda,et al. Fecal microbiota of captive Antillean manatee Trichechus manatus manatus. , 2019, FEMS microbiology letters.
[4] Seong-Ah Kim,et al. Serum level of sex steroid hormone is associated with diversity and profiles of human gut microbiome. , 2019, Research in microbiology.
[5] After the Integrative Human Microbiome Project, what’s next for the microbiome community? , 2019, Nature.
[6] L. Proctor,et al. Priorities for the next 10 years of human microbiome research , 2019, Nature.
[7] William A. Walters,et al. Host diet and evolutionary history explain different aspects of gut microbiome diversity among vertebrate clades , 2018, Nature Communications.
[8] J. Chung,et al. Comparison of the Gut Microbiota of Centenarians in Longevity Villages of South Korea with Those of Other Age Groups. , 2019, Journal of microbiology and biotechnology.
[9] Robert A. Gilmore,et al. Alcohol-induced changes in the gut microbiome and metabolome of rhesus macaques , 2019, Psychopharmacology.
[10] S. Lahtinen,et al. Probiotic or synbiotic alters the gut microbiota and metabolism in a randomised controlled trial of weight management in overweight adults. , 2019, Beneficial microbes.
[11] G. Martin,et al. Linseed oil and heated linseed grain supplements have different effects on rumen bacterial community structures and fatty acid profiles in cashmere kids1. , 2019, Journal of animal science.
[12] C. Consolandi,et al. Unraveling gut microbiota in Parkinson's disease and atypical parkinsonism , 2018, Movement disorders : official journal of the Movement Disorder Society.
[13] H. Lai,et al. Next generation probiotics in disease amelioration , 2019, Journal of food and drug analysis.
[14] Xiaoxu Wang,et al. Bacterial community and metabolome shifts in the cecum and colon of captive sika deer (Cervus nippon) from birth to post weaning , 2019, FEMS microbiology letters.
[15] Gulzar Singh,et al. The Effect of Psyllium Husk on Intestinal Microbiota in Constipated Patients and Healthy Controls , 2019, International Journal of Molecular Sciences.
[16] N. Waddell,et al. IL23R-Protective Coding Variant Promotes Beneficial Bacteria and Diversity in the Ileal Microbiome in Healthy Individuals Without Inflammatory Bowel Disease , 2018, Journal of Crohn's & colitis.
[17] the International Network Medicine Consortium. The Integrative Human Microbiome Project , 2019 .
[18] J. Zia,et al. Relationships of Microbiome Markers With Extraintestinal, Psychological Distress and Gastrointestinal Symptoms, and Quality of Life in Women With Irritable Bowel Syndrome , 2020, Journal of clinical gastroenterology.
[19] Jufang Wang,et al. Effects of Christensenella minuta lipopolysaccharide on RAW 264.7 macrophages activation. , 2018, Microbial pathogenesis.
[20] G. Wegener,et al. Altered fecal microbiota composition in the Flinders sensitive line rat model of depression , 2018, Psychopharmacology.
[21] Subbaya Subramanian,et al. Microbiota-metabolites interactions in non-human primate gastrointestinal tract , 2018, bioRxiv.
[22] J. Raes,et al. Linking gut microbiota, metabolic syndrome and economic status based on a population-level analysis , 2018, Microbiome.
[23] G. Savva,et al. Metabolite quantification of faecal extracts from colorectal cancer patients and healthy controls , 2018, Oncotarget.
[24] Nicholas A. Bokulich,et al. Fecal microbiota and bile acid interactions with systemic and adipose tissue metabolism in diet-induced weight loss of obese postmenopausal women , 2018, Journal of Translational Medicine.
[25] T. Knotts,et al. Conservation Implications of Shifting Gut Microbiomes in Captive-Reared Endangered Voles Intended for Reintroduction into the Wild , 2018, Microorganisms.
[26] Evgeni Levin,et al. Depicting the composition of gut microbiota in a population with varied ethnic origins but shared geography , 2018, Nature Medicine.
[27] Donovan H. Parks,et al. A standardized bacterial taxonomy based on genome phylogeny substantially revises the tree of life , 2018, Nature Biotechnology.
[28] W. Rojas,et al. Gut microbiota composition explains more variance in the host cardiometabolic risk than genetic ancestry , 2018, bioRxiv.
[29] A. Magis,et al. A Multi-omic Association Study of Trimethylamine N-Oxide. , 2018, Cell reports.
[30] M. Dekker Nitert,et al. A Vegetarian Diet Is a Major Determinant of Gut Microbiota Composition in Early Pregnancy , 2018, Nutrients.
[31] Timothy R Church,et al. A taxonomic signature of obesity in a large study of American adults , 2018, Scientific Reports.
[32] Andrew W. Brooks,et al. Gut microbiota diversity across ethnicities in the United States , 2018, bioRxiv.
[33] Ran Blekhman,et al. Colorectal cancer mutational profiles correlate with defined microbial communities in the tumor microenvironment , 2018, PLoS genetics.
[34] S. Rampelli,et al. Infant and Adult Gut Microbiome and Metabolome in Rural Bassa and Urban Settlers from Nigeria. , 2018, Cell reports.
[35] C. Aguilar-Salinas,et al. Composition of gut microbiota in obese and normal‐weight Mexican school‐age children and its association with metabolic traits , 2018, Pediatric obesity.
[36] Matthew I Jackson,et al. Anti-aging food that improves markers of health in senior dogs by modulating gut microbiota and metabolite profiles , 2018, bioRxiv.
[37] A. Parte. LPSN - List of Prokaryotic names with Standing in Nomenclature (bacterio.net), 20 years on. , 2018, International journal of systematic and evolutionary microbiology.
[38] Alexander V. Tyakht,et al. Microbiome Responses to an Uncontrolled Short-Term Diet Intervention in the Frame of the Citizen Science Project , 2018, Nutrients.
[39] A. Paterson,et al. FUT2 genotype and secretory status are not associated with fecal microbial composition and inferred function in healthy subjects , 2018, Gut microbes.
[40] T. Spector,et al. Use of dietary indices to control for diet in human gut microbiota studies , 2018, Microbiome.
[41] T. DeSantis,et al. Maternal metabolic, immune, and microbial systems in late pregnancy vary with malnutrition in mice† , 2018, Biology of Reproduction.
[42] L. Timmermann,et al. Management of constipation in patients with Parkinson’s disease , 2018, npj Parkinson's Disease.
[43] E. Zheng,et al. A global comparison of the microbiome compositions of three gut locations in commercial pigs with extreme feed conversion ratios , 2018, Scientific Reports.
[44] Se Jin Song,et al. The development of gut microbiota in ostriches and its association with juvenile growth , 2018, bioRxiv.
[45] Julian Parkhill,et al. The Impact of NOD2 Variants on Fecal Microbiota in Crohn’s Disease and Controls Without Gastrointestinal Disease , 2018, Inflammatory bowel diseases.
[46] T. Spector,et al. Detection of stable community structures within gut microbiota co-occurrence networks from different human populations , 2018, PeerJ.
[47] J. Riera,et al. Processes shaping gut microbiota diversity in allopatric populations of the endemic lizard Podarcis lilfordi from Menorcan islets (Balearic Islands) , 2018, FEMS microbiology ecology.
[48] Yuguang Du,et al. Chitin Oligosaccharide Modulates Gut Microbiota and Attenuates High-Fat-Diet-Induced Metabolic Syndrome in Mice , 2018, Marine drugs.
[49] Wanting Gao,et al. Characterizing the bacterial microbiota in different gastrointestinal tract segments of the Bactrian camel , 2018, Scientific Reports.
[50] F. Turroni,et al. Identification of universal gut microbial biomarkers of common human intestinal diseases by meta‐analysis , 2017, FEMS microbiology ecology.
[51] Kun Lu,et al. Nicotine Alters the Gut Microbiome and Metabolites of Gut-Brain Interactions in a Sex-Specific Manner. , 2017, Chemical research in toxicology.
[52] P. Hugenholtz,et al. Gene and genome-centric analyses of koala and wombat fecal microbiomes point to metabolic specialization for Eucalyptus digestion , 2017, PeerJ.
[53] Shengli Li,et al. Effect of Dietary Forage to Concentrate Ratios on Dynamic Profile Changes and Interactions of Ruminal Microbiota and Metabolites in Holstein Heifers , 2017, Front. Microbiol..
[54] M. Poulsen,et al. Pycnoscelus surinamensis cockroach gut microbiota respond consistently to a fungal diet without mirroring those of fungus-farming termites , 2017, PloS one.
[55] Y. Zhu,et al. The Effect of Lactobacillus isolates on growth performance, immune response, intestinal bacterial community composition of growing Rex Rabbits , 2017, Journal of animal physiology and animal nutrition.
[56] Annaïg Lan,et al. Quantity and source of dietary protein influence metabolite production by gut microbiota and rectal mucosa gene expression: a randomized, parallel, double-blind trial in overweight humans. , 2017, The American journal of clinical nutrition.
[57] A. Sgoifo,et al. How to Feed the Mammalian Gut Microbiota: Bacterial and Metabolic Modulation by Dietary Fibers , 2017, Front. Microbiol..
[58] C. Lozupone,et al. Pre-pregnancy weight, gestational weight gain, and the gut microbiota of mothers and their infants , 2017, Microbiome.
[59] 毛玲娜,et al. Oral versus intravenous iron replacement therapy distinctly alters the gut microbiota and metabolome in patients with IBD , 2017 .
[60] Se Jin Song,et al. The Effects of Captivity on the Mammalian Gut Microbiome , 2017, Integrative and comparative biology.
[61] B. Paulweber,et al. Gut microbiota dysbiosis associated with glucose metabolism disorders and the metabolic syndrome in older adults. , 2017, Beneficial microbes.
[62] S. Heo,et al. Comparative analysis of gut microbiota associated with body mass index in a large Korean cohort , 2017, BMC Microbiology.
[63] G. Keeney,et al. Compositional differences among female‐associated and embryo‐associated microbiota of the viviparous Pacific Beetle cockroach, Diploptera punctata , 2017, FEMS microbiology ecology.
[64] L. Cheong,et al. Structural modulation of gut microbiota in Bama minipigs in response to treatment with a “growth-promoting agent”, salbutamol , 2017, Applied Microbiology and Biotechnology.
[65] James T. Morton,et al. Parkinson's disease and Parkinson's disease medications have distinct signatures of the gut microbiome , 2017, Movement disorders : official journal of the Movement Disorder Society.
[66] M. Orho-Melander,et al. The gut microbiome as a target for prevention and treatment of hyperglycaemia in type 2 diabetes: from current human evidence to future possibilities , 2017, Diabetologia.
[67] M. Laakso,et al. Relationships between gut microbiota, plasma metabolites, and metabolic syndrome traits in the METSIM cohort , 2017, Genome Biology.
[68] I. Saltykova,et al. Analysis of Gut Microbiota in Patients with Parkinson’s Disease , 2017, Bulletin of Experimental Biology and Medicine.
[69] J. A. Sáez Nieto,et al. First report of human infection by Christensenella minuta, a gram-negative, strickly anaerobic rod that inhabits the human intestine. , 2017, Anaerobe.
[70] Robert J. Moore,et al. Sorghum and wheat differentially affect caecal microbiota and associated performance characteristics of meat chickens , 2017, PeerJ.
[71] M. Surette,et al. Transplantation of fecal microbiota from patients with irritable bowel syndrome alters gut function and behavior in recipient mice , 2017, Science Translational Medicine.
[72] S. Dutta,et al. Effect of Aging on the Composition of Fecal Microbiota in Donors for FMT and Its Impact on Clinical Outcomes , 2017, Digestive Diseases and Sciences.
[73] N. Ellis,et al. Race-dependent association of sulfidogenic bacteria with colorectal cancer , 2017, Gut.
[74] K. Kohl,et al. Gut microbial ecology of lizards: insights into diversity in the wild, effects of captivity, variation across gut regions and transmission , 2017, Molecular ecology.
[75] M. Inouye,et al. Microbial Factors Associated with Postoperative Crohn’s Disease Recurrence , 2017, Journal of Crohn's & colitis.
[76] Patrick M. Hecht,et al. Sex-specific effects of docosahexaenoic acid (DHA) on the microbiome and behavior of socially-isolated mice , 2017, Brain, Behavior, and Immunity.
[77] Harry Sokol,et al. A microbial signature for Crohn's disease , 2017, Gut.
[78] A. Wollam,et al. Genome Sequence of Christensenella minuta DSM 22607T , 2017, Genome Announcements.
[79] Y. Choi,et al. First Case Report of Bacteremia Due to Catabacter hongkongensis in a Korean Patient , 2016, Annals of laboratory medicine.
[80] T. Klaenhammer,et al. Impact of short-chain galactooligosaccharides on the gut microbiome of lactose-intolerant individuals , 2016, Proceedings of the National Academy of Sciences.
[81] B. Michalke,et al. Oral versus intravenous iron replacement therapy distinctly alters the gut microbiota and metabolome in patients with IBD , 2016, Gut.
[82] R. Uwiera,et al. Impacts of resistant starch and wheat bran consumption on enteric inflammation in relation to colonic bacterial community structures and short-chain fatty acid concentrations in mice , 2016, Gut Pathogens.
[83] T. Spector,et al. Shotgun Metagenomics of 250 Adult Twins Reveals Genetic and Environmental Impacts on the Gut Microbiome. , 2016, Cell systems.
[84] F. Tinahones,et al. Insulin resistance is associated with specific gut microbiota in appendix samples from morbidly obese patients. , 2016, American journal of translational research.
[85] Y. Benno,et al. Comprehensive analysis of the fecal microbiota of healthy Japanese adults reveals a new bacterial lineage associated with a phenotype characterized by a high frequency of bowel movements and a lean body type , 2016, BMC Microbiology.
[86] Emily R. Davenport,et al. ABO antigen and secretor statuses are not associated with gut microbiota composition in 1,500 twins , 2016, BMC Genomics.
[87] E. Rubin,et al. Rumen metagenome and metatranscriptome analyses of low methane yield sheep reveals a Sharpea-enriched microbiome characterised by lactic acid formation and utilisation , 2016, Microbiome.
[88] C. Huttenhower,et al. Interplay of host genetics and gut microbiota underlying the onset and clinical presentation of inflammatory bowel disease , 2016, Gut.
[89] A. Paterson,et al. Association of host genome with intestinal microbial composition in a large healthy cohort , 2016, Nature Genetics.
[90] M. Dekker Nitert,et al. Increased Systolic and Diastolic Blood Pressure Is Associated With Altered Gut Microbiota Composition and Butyrate Production in Early Pregnancy , 2016, Hypertension.
[91] Y. Li,et al. Gut microbiota signatures of longevity , 2016, Current Biology.
[92] Emily R. Davenport,et al. Heritable components of the human fecal microbiome are associated with visceral fat , 2016, Genome Biology.
[93] Ali A. Faruqi,et al. Gut microbiota in early pediatric multiple sclerosis: a case−control study , 2016, European journal of neurology.
[94] B. Specker,et al. Impact of dietary resistant starch type 4 on human gut microbiota and immunometabolic functions , 2016, Scientific Reports.
[95] T. R. Licht,et al. Colonic transit time is related to bacterial metabolism and mucosal turnover in the gut , 2016, Nature Microbiology.
[96] S. Rampelli,et al. Gut Microbiota and Extreme Longevity , 2016, Current Biology.
[97] D. Raoult,et al. Christensenella timonensis, a new bacterial species isolated from the human gut , 2016, New microbes and new infections.
[98] Emily R. Davenport,et al. Genetic Determinants of the Gut Microbiome in UK Twins. , 2016, Cell host & microbe.
[99] D. Raoult,et al. Christensenella massiliensis, a new bacterial species isolated from the human gut , 2016, New microbes and new infections.
[100] Emily R. Davenport,et al. Cross-species comparisons of host genetic associations with the microbiome , 2016, Science.
[101] Yun-Mi Song,et al. The effect of heritability and host genetics on the gut microbiota and metabolic syndrome , 2016, Gut.
[102] Sanjoy Ghosh,et al. Cardiorespiratory fitness as a predictor of intestinal microbial diversity and distinct metagenomic functions , 2016, Microbiome.
[103] Ran Blekhman,et al. Gut Microbiome of Coexisting BaAka Pygmies and Bantu Reflects Gradients of Traditional Subsistence Patterns. , 2016, Cell reports.
[104] T. Karlsen,et al. The gut microbial profile in patients with primary sclerosing cholangitis is distinct from patients with ulcerative colitis without biliary disease and healthy controls , 2016, Gut.
[105] R. Burcelin,et al. Establishing a causal link between gut microbes, body weight gain and glucose metabolism in humans - towards treatment with probiotics. , 2016, Beneficial microbes.
[106] D. Stanley,et al. The gastrointestinal tract microbiota of the Japanese quail, Coturnix japonica , 2016, Applied Microbiology and Biotechnology.
[107] V. Pérez-Brocal,et al. Metagenomic Analysis of Crohn's Disease Patients Identifies Changes in the Virome and Microbiome Related to Disease Status and Therapy, and Detects Potential Interactions and Biomarkers , 2015, Inflammatory bowel diseases.
[108] D. Gevers,et al. The Gut Microbiome Contributes to a Substantial Proportion of the Variation in Blood Lipids , 2015, Circulation research.
[109] Molly Przeworski,et al. Variation in Rural African Gut Microbiota Is Strongly Correlated with Colonization by Entamoeba and Subsistence , 2015, bioRxiv.
[110] S. Turroni,et al. High-level adherence to a Mediterranean diet beneficially impacts the gut microbiota and associated metabolome , 2015, Gut.
[111] M. Bonder,et al. Gut microbiota composition associated with stool consistency , 2015, Gut.
[112] I. Måge,et al. High nutrient availability reduces the diversity and stability of the equine caecal microbiota , 2015, Microbial ecology in health and disease.
[113] C. Manichanh,et al. Reduction of butyrate- and methane-producing microorganisms in patients with Irritable Bowel Syndrome , 2015, Scientific Reports.
[114] Mouming Zhao,et al. Gut Microbiota Community and Its Assembly Associated with Age and Diet in Chinese Centenarians. , 2015, Journal of microbiology and biotechnology.
[115] P. Woo,et al. Draft Genome Sequence of Catabacter hongkongensis Type Strain HKU16T, Isolated from a Patient with Bacteremia and Intestinal Obstruction , 2015, Genome Announcements.
[116] T. Tuberville,et al. Kinship, inbreeding and fine‐scale spatial structure influence gut microbiota in a hindgut‐fermenting tortoise , 2015, Molecular ecology.
[117] Cecil M. Lewis,et al. Subsistence strategies in traditional societies distinguish gut microbiomes , 2015, Nature Communications.
[118] J. Escobar,et al. The gut microbiota of Colombians differs from that of Americans, Europeans and Asians , 2014, BMC Microbiology.
[119] R. Knight,et al. Meta‐analyses of human gut microbes associated with obesity and IBD , 2014, FEBS letters.
[120] Angela C. Poole,et al. Human Genetics Shape the Gut Microbiome , 2014, Cell.
[121] Judy H. Cho,et al. Immunoglobulin A Coating Identifies Colitogenic Bacteria in Inflammatory Bowel Disease , 2014, Cell.
[122] W. D. de Vos,et al. The first 1000 cultured species of the human gastrointestinal microbiota , 2014, FEMS microbiology reviews.
[123] S. Tims,et al. Faecal Microbiota Composition in Adults Is Associated with the FUT2 Gene Determining the Secretor Status , 2014, PloS one.
[124] Se Jin Song,et al. The treatment-naive microbiome in new-onset Crohn's disease. , 2014, Cell host & microbe.
[125] Lawrence A. David,et al. Diet rapidly and reproducibly alters the human gut microbiome , 2013, Nature.
[126] G. Czarnecki-Maulden,et al. Fecal Microbiota of Cats with Naturally Occurring Chronic Diarrhea Assessed Using 16S rRNA Gene 454‐Pyrosequencing before and after Dietary Treatment , 2013, Journal of veterinary internal medicine.
[127] K. Garsed,et al. Faecal microbiota composition and host–microbe cross-talk following gastroenteritis and in postinfectious irritable bowel syndrome , 2013, Gut.
[128] H. Tun,et al. Characterization of cecal microbiota of the emu (Dromaius novaehollandiae). , 2013, Veterinary microbiology.
[129] F. Guarner,et al. Phylogenetic Analysis of Dysbiosis in Ulcerative Colitis During Remission , 2013, Inflammatory bowel diseases.
[130] Hongyu Zhang,et al. The Impact of Environmental Heterogeneity and Life Stage on the Hindgut Microbiota of Holotrichia parallela Larvae (Coleoptera: Scarabaeidae) , 2013, PloS one.
[131] M. Ferrer,et al. Microbiota from the distal guts of lean and obese adolescents exhibit partial functional redundancy besides clear differences in community structure. , 2013, Environmental microbiology.
[132] Eric J. Alm,et al. Non-Invasive Mapping of the Gastrointestinal Microbiota Identifies Children with Inflammatory Bowel Disease , 2012, PloS one.
[133] K. Yuen,et al. High Mortality Associated with Catabacter hongkongensis Bacteremia , 2012, Journal of Clinical Microbiology.
[134] J. Clemente,et al. Human gut microbiome viewed across age and geography , 2012, Nature.
[135] M. Morotomi,et al. Description of Christensenella minuta gen. nov., sp. nov., isolated from human faeces, which forms a distinct branch in the order Clostridiales, and proposal of Christensenellaceae fam. nov. , 2012, International journal of systematic and evolutionary microbiology.
[136] P. Evans,et al. Molecular diversity of the foregut bacteria community in the dromedary camel (Camelus dromedarius). , 2011, Environmental microbiology.
[137] F. Roblot,et al. Catabacter hongkongensis Bacteremia with Fatal Septic Shock , 2011, Emerging infectious diseases.
[138] Jesse R. Zaneveld,et al. Pan-genome of the dominant human gut-associated archaeon, Methanobrevibacter smithii, studied in twins , 2011, Proceedings of the National Academy of Sciences.
[139] Eoin L. Brodie,et al. A persistent and diverse airway microbiota present during chronic obstructive pulmonary disease exacerbations. , 2010, Omics : a journal of integrative biology.
[140] B. Roe,et al. A core gut microbiome in obese and lean twins , 2008, Nature.
[141] Hidekatsu Yanai,et al. The underlying mechanisms for development of hypertension in the metabolic syndrome , 2008, Nutrition Journal.
[142] S. Karita,et al. Fecal microbiota of a dugong (Dugong dugong) in captivity at Toba Aquarium. , 2008, The Journal of general and applied microbiology.
[143] K. Yuen,et al. Catabacter hongkongensis gen. nov., sp. nov., Isolated from Blood Cultures of Patients from Hong Kong and Canada , 2006, Journal of Clinical Microbiology.
[144] Hilde van der Togt,et al. Publisher's Note , 2003, J. Netw. Comput. Appl..
[145] M. Kamm,et al. Pathophysiology and management of bowel dysfunction in multiple sclerosis , 2001, European journal of gastroenterology & hepatology.