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Bajaj, J.S., Hylemon, P.B., Ridlon, J.M., Heuman, D.M., Daita, K., White, M.B., Monteith, P., Noble, N.A., Sikaroodi, M. and Gillevet, P.M., 2012. Colonic mucosal microbiome differs from stool microbiome in cirrhosis and hepatic encephalopathy and is linked to cognition and inflammation. American Journal of Physiology – Gastrointestinal and Liver Physiolology 30: 675-685. https://doi.org/10.1152/ajpgi.00152.2012
Caballero, S., Kim, S., Carter, R.A., Leiner, I.M., Sušac, B., Miller, L., Kim, G.J., Ling, L. and Pamer, E.G., 2017. Cooperating commensals restore colonization resistance to vancomycin-resistant Enterococcus faecium. Cell Host and Microbe 21: 592-602.e4. https://doi.org/10.1016/j.chom.2017.04.002
Cardoneanu, A., Cozma, S., Rezus, C., Petrariu, F., Burlui, A.M., and Rezus, E., 2021. Characteristics of the intestinal microbiome in ankylosing spondylitis. Experimental and Therapeutic Medicine 22: 676. https://doi.org/10.3892/etm.2021.10108
Chen, B.D., Jia, X.M., Xu, J.Y., Zhao, L.D., Ji, J.Y., Wu, B.X., Ma, Y., Li, H., Zuo, X.X., Pan, W.Y., Wang, X.H., Ye, S., Tsokos, G.C., Wang, J. and Zhang, X., 2021. An Autoimmunogenic and proinflammatory profile defined by the gut microbiota of patients with untreated systemic lupus erythematosus. Arthritis and Rheumatology 73: 232-243. https://doi.org/10.1002/art.41511
Chen, W., Liu, F., Ling, Z., Tong, X. and Xiang, C., 2012. Human intestinal lumen and mucosa-associated microbiota in patients with colorectal cancer. PLoS ONE 7: e39743. https://doi.org/10.1371/journal.pone.0039743
Jenq, R.R., Taur, Y., Devlin, S.M., Ponce, D.M., Goldberg, J.D., Ahr, K.F., Littmann, E.R., Ling, L., Gobourne, A.C., Miller, L.C., Docampo, M.D., Peled, J.U., Arpaia, N., Cross, J.R., Peets, T.K., Lumish, M.A., Shono, Y., Dudakov, J.A., Poeck, H., Hanash, A.M., Barker, J.N., Perales, M.A., Giralt, S.A., Pamer, E.G. and Van den Brink, M.R., 2015. Intestinal Blautia is associated with reduced death from graft-versus-host disease. Biology of Blood and Marrow Transplantation 21: 1373-1383. https://doi.org/10.1016/j.bbmt.2015.04.016
Kakiyama, G., Pandak, W.M., Gillevet, P.M., Hylemon, P.B., Heuman, D.M., Daita, K., Takei, H., Muto, A., Nittono, H., Ridlon, J.M., White, M.B., Noble, N.A., Monteith, P., Fuchs, M., Thacker, L.R., Sikaroodi, M. and Bajaj, J.S., 2013. Modulation of the fecal bile acid profile by gut microbiota in cirrhosis. Journal of Hepatology 58: 949-955. https://doi.org/10.1016/j.jhep.2013.01.003
Kim, S.G., Becattini, S., Moody, T.U., Shliaha, P.V., Littmann, E.R., Seok, R., Gjonbalaj, M., Eaton, V., Fontana, E., Amoretti, L., Wright, R., Caballero, S., Wang, Z.X., Jung, H.J., Morjaria, S.M., Leiner, I.M., Qin, W., Ramos, R.J.J.F., Cross, J.R., Narushima, S., Honda, K., Peled, J.U., Hendrickson, R.C., Taur, Y., Van den Brink, M.R.M. and Pamer, E.G., 2019. Microbiota-derived lantibiotic restores resistance against vancomycin-resistant Enterococcus. Nature 572: 665-669. https://doi.org/10.1038/s41586-019-1501-z
Lakhdari, O., Tap, J., Béguet-Crespel, F., Le Roux, K., de Wouters, T., Cultrone, A., Nepelska, M., Lefèvre, F., Doré, J. and Blottière, H.M., 2011. Identification of NF-κB modulation capabilities within human intestinal commensal bacteria. BioMed Research International 2011: 282356. https://doi.org/10.1155/2011/282356
Mason, B.L., Li, Q., Minhajuddin, A., Czysz, A.H., Coughlin, L.A., Hussain, S.K., Koh, A.Y. and Trivedi, M.H., 2020. Reduced anti-inflammatory gut microbiota are associated with depression and anhedonia. Journal of Affective Disorders 266: 394-401. https://doi.org/10.1016/j.jad.2020.01.137
Montassier, E., Valdés-Mas, R., Batard, E., Zmora, N., Dori-Bachash, M., Suez, J. and Elinav, E., 2021. Probiotics impact the antibiotic resistance gene reservoir along the human GI tract in a person-specific and antibiotic-dependent manner. Nature Microbiology 6: 1043-1054. https://doi.org/10.1038/s41564-021-00920-0
Murri, M., Leiva, I., Gomez-Zumaquero, J.M., Tinahones, F.J., Cardona, F., Soriguer, F. and Queipo-Ortuño, M.I., 2013. Gut microbiota in children with type 1 diabetes differs from that in healthy children: a case-control study. BMC Medicine 11: 46. https://doi.org/10.1186/1741-7015-11-46
Pathmanathan, S.G., Lawley, B., McConnell, M., Baird, M.A. and Tannock, G.W., 2020. Gut bacteria characteristic of the infant microbiota down-regulate inflammatory transcriptional responses in HT-29 cells. Anaerobe 61: 102112. https://doi.org/10.1016/j.anaerobe.2019.102112
Qin, Q., Yan, S., Yang, Y., Chen, J., Li, T., Gao, X., Yan, H., Wang, Y., Wang, J., Wang, S. and Ding, S., 2021. A metagenome-wide association study of the gut microbiome and metabolic syndrome. Frontiers in Microbiology 12: 682721. https://doi.org/10.3389/fmicb.2021.682721
Rondanelli, M., Giacosa, A., Faliva, M.A., Perna, S., Allieri, F. and Castellazzi, A.M. 2015. Review on microbiota and effectiveness of probiotics use in older. World Journal of Clinical Cases 3: 156-162. https://doi.org/10.12998/wjcc.v3.i2.156
Tuovinen, E., Keto, J., Nikkilä, J., Mättö, J. and Lähteenmäki, K., 2013. Cytokine response of human mononuclear cells induced by intestinal Clostridium species. Anaerobe 19: 70-76. https://doi.org/10.1016/j.anaerobe.2012.11.002
Zheng, J., Hoffman, K.L., Chen, J.S., Shivappa, N., Sood, A., Browman, G.J., Dirba, D.D., Hanash, S., Wei, P., Hebert, J.R., Petrosino, J.F., Schembre, S.M. and Daniel, C.R., 2020. Dietary inflammatory potential in relation to the gut microbiome: results from a cross-sectional study. British Journal of Nutrition 124: 931-942. https://doi.org/10.1017/S0007114520001853
| Insgesamt | Letzte 365 Tage | In den letzten 30 Tagen | |
|---|---|---|---|
| Aufrufe von Kurzbeschreibungen | 0 | 0 | 0 |
| Gesamttextansichten | 184 | 99 | 7 |
| PDF-Downloads | 92 | 48 | 6 |
| Insgesamt | Letzte 365 Tage | In den letzten 30 Tagen | |
|---|---|---|---|
| Aufrufe von Kurzbeschreibungen | 0 | 0 | 0 |
| Gesamttextansichten | 184 | 99 | 7 |
| PDF-Downloads | 92 | 48 | 6 |