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From Great Genetics To Neuropsychology – Outline Of The Research On The Association Between Microbiota And Human Behaviour


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Adams M.D., Kerlavage A.R., Fleischmann R.D., Fuldner R.A., Bult C.J., Lee N.H., Kirkness E.F., Weinstock K.G., Gocayne J.D., White O.: Initial assessment of human gene diversity and expression patterns based upon 83 million nucleotides of cDNA sequence. Nature, 377, 3–174 (1995)AdamsM.D.KerlavageA.R.FleischmannR.D.FuldnerR.A.BultC.J.LeeN.H.KirknessE.F.WeinstockK.G.GocayneJ.D.WhiteO.Initial assessment of human gene diversity and expression patterns based upon 83 million nucleotides of cDNA sequenceNature37731741995Search in Google Scholar

Ait-Belgnaoui A., Durand H., Cartier C., Chaumaz G., Eutamene H., Ferrier L., Houdeau E., Fioramonti J., Bueno L., Theodorou V.: Prevention of gut leakiness by a probiotic treatment leads to attenuated HPA response to an acute psychological stress in rats. Psychoneuroendocrinol. 37, 1885–1895 (2012)Ait-BelgnaouiA.DurandH.CartierC.ChaumazG.EutameneH.FerrierL.HoudeauE.FioramontiJ.BuenoL.TheodorouV.Prevention of gut leakiness by a probiotic treatment leads to attenuated HPA response to an acute psychological stress in ratsPsychoneuroendocrinol.3718851895201210.1016/j.psyneuen.2012.03.02422541937Search in Google Scholar

Akbari E., Asemi Z., Daneshvar Kakhaki R., Bahmani F., Kouchaki E., Tamtaji O.R., Hamidi G.A., Salami M.: Effect of probiotic supplementation on cognitive function and metabolic status in Alzheimer’s disease: a randomized, double-blind and controlled trial. Front. Aging Neurosci. 8, 256 (2016)AkbariE.AsemiZ.Daneshvar KakhakiR.BahmaniF.KouchakiE.TamtajiO.R.HamidiG.A.SalamiM.Effect of probiotic supplementation on cognitive function and metabolic status in Alzheimer’s disease: a randomized, double-blind and controlled trialFront. Aging Neurosci.8256201610.3389/fnagi.2016.00256510511727891089Search in Google Scholar

Anderson G., Seo M., Berk M., Carvalho A F., Maes M.: Gut permeability and microbiota in Parkinson’s disease: role of depression, tryptophan catabolites, oxidative and nitrosative stress and melatonergic pathways. Curr. Pharmac. Des. 22, 6142–6151 (2017)AndersonG.SeoM.BerkM.CarvalhoA F.MaesM.Gut permeability and microbiota in Parkinson’s disease: role of depression, tryptophan catabolites, oxidative and nitrosative stress and melatonergic pathwaysCurr. Pharmac. Des.2261426151201710.2174/138161282266616090616151327604608Search in Google Scholar

Anderson G., Maes M.: The gut-brain axis: The role of melatonin in linking psychiatric, inflammatory and neurodegenerative conditions. Adv. Integr. Med. 2, 31–37 (2015)AndersonG.MaesM.The gut-brain axis: The role of melatonin in linking psychiatric, inflammatory and neurodegenerative conditionsAdv. Integr. Med.23137201510.1016/j.aimed.2014.12.007Search in Google Scholar

Antequera F., Bird A.: Number of CpG islands and genes in human and mouse. Proceedings of the National Academy of Sciences, 90, 11995–11999 (1993)AntequeraF.BirdA.Number of CpG islands and genes in human and mouseProceedings of the National Academy of Sciences901199511999199310.1073/pnas.90.24.11995481127505451Search in Google Scholar

Arumugam M., Bork P. i wsp.: Enterotypes of the human gut microbiome. Nature, 473, 174–180 (2011)ArumugamM.BorkP.i wsp.Enterotypes of the human gut microbiomeNature473174180201110.1038/nature09944372864721508958Search in Google Scholar

Aziz Q., Doré J., Emmanuel A., Guarner F., Quigley E.M.M.: Gut microbiota and gastrointestinal health: current concepts and future directions. Neurogastroenterol. Motil. 25, 4–15 (2013)AzizQ.DoréJ.EmmanuelA.GuarnerF.QuigleyE.M.M.Gut microbiota and gastrointestinal health: current concepts and future directionsNeurogastroenterol. Motil.25415201310.1111/nmo.1204623279728Search in Google Scholar

Bailey M.T., Dowd S.E., Galley J.D., Hufnagle A.R., Allen R.G., Lyte M.: Exposure to a social stressor alters the structure of the intestinal microbiota: implications for stressor-induced immunomodulation. Brain. Behav. Immun. 25, 397–407 (2011)BaileyM.T.DowdS.E.GalleyJ.D.HufnagleA.R.AllenR.G.LyteM.Exposure to a social stressor alters the structure of the intestinal microbiota: implications for stressor-induced immunomodulationBrain. Behav. Immun.25397407201110.1016/j.bbi.2010.10.023303907221040780Search in Google Scholar

Bajaj J.: Faecal microbiota transplantation improves cognitive impairment caused by recurrent severe liver disease. In: The International Liver Congress. pp. 1–3 (2017)BajajJ.Faecal microbiota transplantation improves cognitive impairment caused by recurrent severe liver diseaseThe International Liver Congress132017Search in Google Scholar

Benton D., Williams C., Brown A.: Impact of consuming a milk drink containing a probiotic on mood and cognition. Eur. J. Clin. Nutr. 61, 355–361 (2007)BentonD.WilliamsC.BrownA.Impact of consuming a milk drink containing a probiotic on mood and cognitionEur. J. Clin. Nutr.61355361200710.1038/sj.ejcn.160254617151594Search in Google Scholar

Binek M.: Mikrobiom człowieka – Zdrowie i choroba. Post. Mikrobiol. 51, 27–36 (2012)BinekM.Mikrobiom człowieka – Zdrowie i chorobaPost. Mikrobiol.5127362012Search in Google Scholar

Braniste V., Petterson S. i wsp.: The gut microbiota influences blood-brain barrier permeability in mice. Sci. Transl. Med. 6, (2014)BranisteV.PettersonS.i wsp.The gut microbiota influences blood-brain barrier permeability in miceSci. Transl. Med.6201410.1126/scitranslmed.3009759439684825411471Search in Google Scholar

Bravo J.A., Forsythe P., Chew M. V, Escaravage E., Savignac H.M., Dinan, T.G., Bienenstock J., Cryan J.F.: Ingestion of Lactobacillus strain regulates emotional behavior and central GABA receptor expression in a mouse via the vagus nerve. Proc. Natl. Acad. Sci. USA, 108, 16050–16055 (2011)BravoJ.A.ForsytheP.ChewM. VEscaravageE.SavignacH.M.DinanT.G.BienenstockJ.CryanJ.F.Ingestion of Lactobacillus strain regulates emotional behavior and central GABA receptor expression in a mouse via the vagus nerveProc. Natl. Acad. Sci. USA1081605016055201110.1073/pnas.1102999108317907321876150Search in Google Scholar

Bravo J.A., Julio-Pieper M., Forsythe P., Kunze W., Dinan T.G., Bienenstock J., Cryan J.F.: Communication between gastrointestinal bacteria and the nervous system. Curr. Opin. Pharmacol. 12, 667–672 (2012)BravoJ.A.Julio-PieperM.ForsytheP.KunzeW.DinanT.G.BienenstockJ.CryanJ.F.Communication between gastrointestinal bacteria and the nervous systemCurr. Opin. Pharmacol.12667672201210.1016/j.coph.2012.09.01023041079Search in Google Scholar

Burokas A., Arboleya S., Moloney R.D., Peterson V.L., Murphy K., Clarke G., Stanton C., Dinan T.G., Cryan J.F.: Targeting the microbiota-gut-brain axis: prebiotics have anxiolytic and antidepressant-like effects and reverse the impact of chronic stress in mice. Biol. Psychiatry. (2017)BurokasA.ArboleyaS.MoloneyR.D.PetersonV.L.MurphyK.ClarkeG.StantonC.DinanT.G.CryanJ.F.Targeting the microbiota-gut-brain axis: prebiotics have anxiolytic and antidepressant-like effects and reverse the impact of chronic stress in miceBiol. Psychiatry.201710.1016/j.biopsych.2016.12.03128242013Search in Google Scholar

Claesson M.J., O’Toole P.W. i wsp.: Gut microbiota composition correlates with diet and health in the elderly. Nature, 488, 178–184 (2012)ClaessonM.J.O’TooleP.W.i wsp.Gut microbiota composition correlates with diet and health in the elderlyNature488178184201210.1038/nature1131922797518Search in Google Scholar

Claverie J.M.: Gene number. What if there are only 30,000 human genes? Science, 291, 1255–1257 (2001)ClaverieJ.M.Gene number. What if there are only 30,000 human genes?Science29112551257200110.1126/science.105896911233450Search in Google Scholar

Collins F.S., Morgan M., Patrinos A.: The Human Genome Project: lessons from large-scale biology. Science, 300, 286–290 (2003)CollinsF.S.MorganM.PatrinosA.The Human Genome Project: lessons from large-scale biologyScience300286290200310.1126/science.108456412690187Search in Google Scholar

The C. elegans Sequencing Consortium: Genome sequence of the nematode C. elegans: A platform for investigating biology. Science, 282, 2012–2018 (1998)The C. elegans Sequencing Consortium: Genome sequence of the nematode C. elegans: A platform for investigating biologyScience28220122018199810.1126/science.282.5396.20129851916Search in Google Scholar

Dalton N., Chandler S., Turner C., Charman T., Pickles A., Loucas T., Simonoff E., Sullivan P., Baird G.: Gut permeability in autism spectrum disorders. Autism Res. 7, 305–313 (2014)DaltonN.ChandlerS.TurnerC.CharmanT.PicklesA.LoucasT.SimonoffE.SullivanP.BairdG.Gut permeability in autism spectrum disordersAutism Res.7305313201410.1002/aur.135024339339Search in Google Scholar

Davies J.: In a map for human life, count the microbes, too. Science, 291, 2316 (2001)DaviesJ.In a map for human life, count the microbes, tooScience2912316200110.1126/science.291.5512.2316b11269298Search in Google Scholar

Desbonnet L., Garrett L., Clarke G., Bienenstock J., Dinan T.G.: The probiotic Bifidobacteria infantis: An assessment of potential antidepressant properties in the rat. J. Psychiatr. Res. 43, 164–174 (2008)DesbonnetL.GarrettL.ClarkeG.BienenstockJ.DinanT.G.The probiotic Bifidobacteria infantis: An assessment of potential antidepressant properties in the ratJ. Psychiatr. Res.43164174200810.1016/j.jpsychires.2008.03.00918456279Search in Google Scholar

Dinan T.G., Stanton C., Cryan J.F.: Psychobiotics: A novel class of psychotropic. Biol. Psychiatry. 74, 720–726 (2013)DinanT.G.StantonC.CryanJ.F.Psychobiotics: A novel class of psychotropicBiol. Psychiatry.74720726201310.1016/j.biopsych.2013.05.00123759244Search in Google Scholar

Eckburg P.B., Bik E.M., Bernstein C.N., Purdom E., Dethlefsen L., Sargent M., Gill S.R., Nelson K.E., Relman D.A.: Diversity of the human intestinal microbial flora. Science, 308, 1635–1638 (2005)EckburgP.B.BikE.M.BernsteinC.N.PurdomE.DethlefsenL.SargentM.GillS.R.NelsonK.E.RelmanD.A.Diversity of the human intestinal microbial floraScience30816351638200510.1126/science.1110591139535715831718Search in Google Scholar

Ewing B., Green P.: Analysis of expressed sequence tags indicates 35,000 human genes. Nat. Genet. 25, 232–234 (2000)EwingB.GreenP.Analysis of expressed sequence tags indicates 35,000 human genesNat. Genet.25232234200010.1038/7611510835644Search in Google Scholar

Ferri G.-L., Probert L., Cocchia D., Michetti F., Marangos P.J., Polak J.M.: Evidence for the presence of S-100 protein in the glial component of the human enteric nervous system. Nature, 297, 409–410 (1982)FerriG.-L.ProbertL.CocchiaD.MichettiF.MarangosP.J.PolakJ.M.Evidence for the presence of S-100 protein in the glial component of the human enteric nervous systemNature297409410198210.1038/297409a07043279Search in Google Scholar

Fields C., Adams M., White O., Venter J.: How many genes are in the human genome? Nature, 1–5 (2013)FieldsC.AdamsM.WhiteO.VenterJ.How many genes are in the human genome?Nature15201310.1038/ng0794-3457920649Search in Google Scholar

Fortun M.A.: The Human Genome Project: past, present, and future anterior. 339–362 (2001)FortunM.A.The Human Genome Project: past, present, and future anterior339362200110.1007/978-94-017-2956-7_20Search in Google Scholar

Foster J.A., McVey Neufeld K.A.: Gut-brain axis: How the microbiome influences anxiety and depression. Trends Neurosci. 36, 305–312 (2013)FosterJ.A.McVey NeufeldK.A.Gut-brain axis: How the microbiome influences anxiety and depressionTrends Neurosci.36305312201310.1016/j.tins.2013.01.00523384445Search in Google Scholar

Fröhlich E.E. Holzer P. i wsp.: Cognitive impairment by antibiotic-induced gut dysbiosis: Analysis of gut microbiota-brain communication. Brain. Behav. Immun. 56, 140–155 (2016)FröhlichE.E.HolzerP.i wsp.Cognitive impairment by antibiotic-induced gut dysbiosis: Analysis of gut microbiota-brain communicationBrain. Behav. Immun.56140155201610.1016/j.bbi.2016.02.020501412226923630Search in Google Scholar

Gonzalez A., Stombaugh J., Lozupone C., Turnbaugh P.J., Gordon J.I., Knight R.: The mind-body-microbial continuum. Dialogues Clin. Neurosci. 13, 55–62 (2011)GonzalezA.StombaughJ.LozuponeC.TurnbaughP.J.GordonJ.I.KnightR.The mind-body-microbial continuumDialogues Clin. Neurosci.135562201110.31887/DCNS.2011.13.1/agonzalezSearch in Google Scholar

Grundy D., Schemann M.: Enteric nervous system. Curr. Opin. Gastroenterol. 22, 102–110 (2006)GrundyD.SchemannM.Enteric nervous systemCurr. Opin. Gastroenterol.22102110200610.1097/01.mog.0000208459.46395.1616462164Search in Google Scholar

Haba R., Shintani N., Onaka Y., Wang H., Takenaga R., Hayata A., Baba A., Hashimoto H.: Lipopolysaccharide affects exploratory behaviors toward novel objects by impairing cognition and/or motivation in mice: Possible role of activation of the central amygdala. Behav. Brain Res. 228, 423–431 (2012)HabaR.ShintaniN.OnakaY.WangH.TakenagaR.HayataA.BabaA.HashimotoH.Lipopolysaccharide affects exploratory behaviors toward novel objects by impairing cognition and/or motivation in mice: Possible role of activation of the central amygdalaBehav. Brain Res.228423431201210.1016/j.bbr.2011.12.02722209851Search in Google Scholar

Hamdani N., Tamouza R., Leboyer M.: Immuno-inflammatory markers of bipolar disorder: a review of evidence. Front. Biosci. 4, 2170–2182 (2012)HamdaniN.TamouzaR.LeboyerM.Immuno-inflammatory markers of bipolar disorder: a review of evidenceFront. Biosci.421702182201210.2741/e534Search in Google Scholar

Handelsman J.: Metagenomics: Application of genomics to uncultured microorganisms. Microbiol. Mol. Biol. Rev. 68, 669–685 (2004)HandelsmanJ.Metagenomics: Application of genomics to uncultured microorganismsMicrobiol. Mol. Biol. Rev.68669685200410.1128/MMBR.68.4.669-685.200453900315590779Search in Google Scholar

Hegstrand L.R., Hine R.J.: Variations of brain histamine levels in germ-free and nephrectomized rats. Neurochem. Res. 11, 185–191 (1986)HegstrandL.R.HineR.J.Variations of brain histamine levels in germ-free and nephrectomized ratsNeurochem. Res.11185191198610.1007/BF009679672422565Search in Google Scholar

Hu X., Wang T., Jin, F.: Alzheimer’s disease and gut microbiota. Sci. China Life Sci. 1–18 (2016)HuX.WangT.JinF.Alzheimer’s disease and gut microbiotaSci. China Life Sci.118201610.1007/s11427-016-5083-927566465Search in Google Scholar

Jeffery I.B., Claesson M.J., O’Toole P.W., Shanahan F.: Categorization of the gut microbiota: enterotypes or gradients? Nat. Rev. Microbiol. 10, 591–592 (2012)JefferyI.B.ClaessonM.J.O’TooleP.W.ShanahanF.Categorization of the gut microbiota: enterotypes or gradients?Nat. Rev. Microbiol.10591592201210.1038/nrmicro285923066529Search in Google Scholar

Kamada N., Chen G.Y., Inohara N., Núñez G.: Control of pathogens and pathobionts by the gut microbiota. Nat. Immunol. 14, 685–690 (2013)KamadaN.ChenG.Y.InoharaN.NúñezG.Control of pathogens and pathobionts by the gut microbiotaNat. Immunol.14685690201310.1038/ni.2608408350323778796Search in Google Scholar

Knights D., Ward T.L., McKinlay C.E., Miller H., Gonzalez A., McDonald D., Knight R.: Rethinking “Enterotypes.” Cell Host Microbe, 16, 433–437 (2014)KnightsD.WardT.L.McKinlayC.E.MillerH.GonzalezA.McDonaldD.KnightR.Rethinking “Enterotypes.”Cell Host Microbe16433437201410.1016/j.chom.2014.09.013555846025299329Search in Google Scholar

Lander E.S. Chen Y.J. i wsp.: Initial sequencing and analysis of the human genome. Nature, 409, 860–921 (2001)LanderE.S.ChenY.J.i wsp.Initial sequencing and analysis of the human genomeNature409860921200110.1038/3505706211237011Search in Google Scholar

Leboyer M., Berk M., Yolken R.H., Tamouza R., Kupfer D., Groc L.: Immuno-psychiatry: An agenda for clinical practice and innovative research. BMC Med. 14, (2016)LeboyerM.BerkM.YolkenR.H.TamouzaR.KupferD.GrocL.Immuno-psychiatry: An agenda for clinical practice and innovative researchBMC Med.14201610.1186/s12916-016-0712-5508434427788673Search in Google Scholar

Lederberg J., Mccray A.T.: ‘Ome sweet’ omics – a genealogical treasury of words. Science, 15, 8–8 (2001)LederbergJ.MccrayA.T.‘Ome sweet’ omics – a genealogical treasury of wordsScience15882001Search in Google Scholar

Li W., Dowd S.E., Scurlock B., Acosta-Martinez V., Lyte M.: Memory and learning behavior in mice is temporally associated with diet-induced alterations in gut bacteria. Physiol. Behav. 96, 557–567 (2009)LiW.DowdS.E.ScurlockB.Acosta-MartinezV.LyteM.Memory and learning behavior in mice is temporally associated with diet-induced alterations in gut bacteriaPhysiol. Behav.96557567200910.1016/j.physbeh.2008.12.00419135464Search in Google Scholar

Luo J., Wang T., Liang S., Hu X., Li W., Jin F.: Ingestion of Lactobacillus strain reduces anxiety and improves cognitive function in the hyperammonemia rat. Sci. China Life Sci. 57, 327–335 (2014)LuoJ.WangT.LiangS.HuX.LiW.JinF.Ingestion of Lactobacillus strain reduces anxiety and improves cognitive function in the hyperammonemia ratSci. China Life Sci.57327335201410.1007/s11427-014-4615-424554471Search in Google Scholar

Lynch S. V., Pedersen O.: The human intestinal microbiome in health and disease. N. Engl. J. Med. 375, 2369–2379 (2016)LynchS. V.PedersenO.The human intestinal microbiome in health and diseaseN. Engl. J. Med.37523692379201610.1056/NEJMra160026627974040Search in Google Scholar

Lyte M.: Probiotics function mechanistically as delivery vehicles for neuroactive compounds: Microbial endocrinology in the design and use of probiotics. BioEssays, 33, 574–581 (2011)LyteM.Probiotics function mechanistically as delivery vehicles for neuroactive compounds: Microbial endocrinology in the design and use of probioticsBioEssays33574581201110.1002/bies.20110002421732396Search in Google Scholar

MacDonald T.T., Monteleone I., Fantini M.C., Monteleone G.: Regulation of homeostasis and inflammation in the intestine. Gastroenterol. 140, 1768–1775 (2011)MacDonaldT.T.MonteleoneI.FantiniM.C.MonteleoneG.Regulation of homeostasis and inflammation in the intestineGastroenterol.14017681775201110.1053/j.gastro.2011.02.04721530743Search in Google Scholar

Mackie R.I., Sghir A., Gaskins H.R.: Developmental microbial ecology of the neonata gastrointestinal tract. Am. J. Clin. Nutr. 69, 1035S–1045S (1999)MackieR.I.SghirA.GaskinsH.R.Developmental microbial ecology of the neonata gastrointestinal tractAm. J. Clin. Nutr.691035S1045S199910.1093/ajcn/69.5.1035s10232646Search in Google Scholar

Maes M., Kubera M., Leunis J.C., Berk M.: Increased IgA and IgM responses against gut commensals in chronic depression: Further evidence for increased bacterial translocation or leaky gut. J. Affect. Disord. 141, 55–62 (2012)MaesM.KuberaM.LeunisJ.C.BerkM.Increased IgA and IgM responses against gut commensals in chronic depression: Further evidence for increased bacterial translocation or leaky gutJ. Affect. Disord.1415562201210.1016/j.jad.2012.02.02322410503Search in Google Scholar

Maes M., Leunis J.C., Maes M.: Normalization of leaky gut in chronic fatigue syndrome (CFS) is accompanied by a clinical improvement: effects of age, duration of illness and the translocation of LPS from Gram-negative bacteria. Neuroendocrinol. Letters, 29, 902 (2008)MaesM.LeunisJ.C.MaesM.Normalization of leaky gut in chronic fatigue syndrome (CFS) is accompanied by a clinical improvement: effects of age, duration of illness and the translocation of LPS from Gram-negative bacteriaNeuroendocrinol. Letters299022008Search in Google Scholar

Maqsood R., Stone T.W.: The gut-brain axis, BDNF, NMDA and CNS disorders. Neurochem. Res. 41, 1–17 (2016)MaqsoodR.StoneT.W.The gut-brain axis, BDNF, NMDA and CNS disordersNeurochem. Res.41117201610.1007/s11064-016-2039-127553784Search in Google Scholar

Nagao-Kitamoto H., Kamada N.: Host-microbial cross-talk in inflammatory bowel disease. Immune Netw. 17, 1 (2017)Nagao-KitamotoH.KamadaN.Host-microbial cross-talk in inflammatory bowel diseaseImmune Netw.171201710.4110/in.2017.17.1.1533411728261015Search in Google Scholar

NIH HMP Working Group: The NIH Human Microbiome Project. Genome Res. 19, 2317–2323 (2009)NIH HMP Working GroupThe NIH Human Microbiome ProjectGenome Res.1923172323200910.1101/gr.096651.109279217119819907Search in Google Scholar

O’Mahony L., Quigley, E. M. i wsp.: Lactobacillus and Bifidobacterium in irritable bowel syndrome: Symptom responses and relationship to cytokine profiles. Gastroenterol. 128, 541–551 (2005)O’MahonyL.QuigleyE. M.i wsp.Lactobacillus and Bifidobacterium in irritable bowel syndrome: Symptom responses and relationship to cytokine profilesGastroenterol.128541551200510.1053/j.gastro.2004.11.050Search in Google Scholar

O’Sullivan E., Barrett E., Grenham S., Fitzgerald P., Stanton C., Ross R.P., Quigley E.M.M., Cryan J.F., Dinan T.G.: BDNF expression in the hippocampus of maternally separated rats: Does Bifidobacterium breve 6330 alter BDNF levels? Benef. Microbes, 2, 199–207 (2011)O’SullivanE.BarrettE.GrenhamS.FitzgeraldP.StantonC.RossR.P.QuigleyE.M.M.CryanJ.F.DinanT.G.BDNF expression in the hippocampus of maternally separated rats: Does Bifidobacterium breve 6330 alter BDNF levels?Benef. Microbes2199207201110.1016/S0016-5085(11)63528-2Search in Google Scholar

Olson M. V.: The human genome project: A player’s perspective. J. Mol. Biol. 319, 931–942 (2002)OlsonM. V.The human genome project: A player’s perspectiveJ. Mol. Biol.319931942200210.1016/S0022-2836(02)00333-9Search in Google Scholar

Olszewska J., Jagusztyn-Krynicka E.K.: Human Microbiome Project – mikroflora jelit oraz jej wpływ na fizjologię i zdrowie człowieka. Post. Mikrobiol. 51, 243–256 (2012)OlszewskaJ.Jagusztyn-KrynickaE.K.Human Microbiome Project – mikroflora jelit oraz jej wpływ na fizjologię i zdrowie człowiekaPost. Mikrobiol.512432562012Search in Google Scholar

Pertea M., Salzberg S.L.: Between a chicken and a grape: estimating the number of human genes. Genome Biol. 11, 206 (2010)PerteaM.SalzbergS.L.Between a chicken and a grape: estimating the number of human genesGenome Biol.11206201010.1186/gb-2010-11-5-206289807720441615Search in Google Scholar

Qin, J., Wang. J. i wsp.: A human gut microbial gene catalogue established by metagenomic sequencing. Nature, 464, 59–65 (2010)QinJ.Wang.J.i wsp.A human gut microbial gene catalogue established by metagenomic sequencingNature4645965201010.1038/nature08821377980320203603Search in Google Scholar

Riedel C.U., Foata F., Philippe D., Adolfsson O., Eikmanns B.J., Blum S.: Anti-inflammatory effects of bifidobacteria by inhibition of LPS-induced NF-κB activation. World J. Gastroenterol. 12, 3729–3735 (2006)RiedelC.U.FoataF.PhilippeD.AdolfssonO.EikmannsB.J.BlumS.Anti-inflammatory effects of bifidobacteria by inhibition of LPS-induced NF-κB activationWorld J. Gastroenterol.1237293735200610.3748/wjg.v12.i23.3729408746616773690Search in Google Scholar

Rudzki L., Ostrowska L., Pawlak D., Małus A., Pawlak K., Waszkiewicz N., Szulc A.: Probiotic Lactobacillus Plantarum 299v decreases kynurenine concentration and improves cognitive functions in patients with major depression: A double-blind, randomized, placebo controlled study. Psychoneuroendocrinol. 100, 213–222 (2019)RudzkiL.OstrowskaL.PawlakD.MałusA.PawlakK.WaszkiewiczN.SzulcA.Probiotic Lactobacillus Plantarum 299v decreases kynurenine concentration and improves cognitive functions in patients with major depression: A double-blind, randomized, placebo controlled studyPsychoneuroendocrinol.100213222201910.1016/j.psyneuen.2018.10.01030388595Search in Google Scholar

Rudzki L., Szulc A.: “Immune Gate” of psychopathology – The role of gut derived immune activation in major psychiatric disorders. Frontiers in Psychiatry, 9, 205 (2018)RudzkiL.SzulcA.“Immune Gate” of psychopathology – The role of gut derived immune activation in major psychiatric disordersFrontiers in Psychiatry9205201810.3389/fpsyt.2018.00205598701629896124Search in Google Scholar

Schmidt K., Cowen P.J., Harmer C.J., Tzortzis G., Errington S., Burnet P.W.J.: Prebiotic intake reduces the waking cortisol response and alters emotional bias in healthy volunteers. Psychopharmacol. (Berl), 232, 1793–1801 (2015)SchmidtK.CowenP.J.HarmerC.J.TzortzisG.ErringtonS.BurnetP.W.J.Prebiotic intake reduces the waking cortisol response and alters emotional bias in healthy volunteersPsychopharmacol. (Berl)23217931801201510.1007/s00213-014-3810-0441013625449699Search in Google Scholar

Scholz-Ahrens K.E., Schrezenmeir J.: Inulin, oligofructose and mineral metabolism – experimental data and mechanism. Br. J. Nutr. 87, S179 (2002)Scholz-AhrensK.E.SchrezenmeirJ.Inulin, oligofructose and mineral metabolism – experimental data and mechanismBr. J. Nutr.87S179200210.1079/BJN/2002535Search in Google Scholar

Staley J.T., Konopka A.: Microorganisms in aquatic and terrestrial habitats. Annu. Rev. Microbiol. 39, 321–346 (1985)StaleyJ.T.KonopkaA.Microorganisms in aquatic and terrestrial habitatsAnnu. Rev. Microbiol.39321346198510.1146/annurev.mi.39.100185.0015413904603Search in Google Scholar

Steenbergen L., Sellaro R., van Hemert S., Bosch J.A., Colzato L.S.: A randomized controlled trial to test the effect of multispecies probiotics on cognitive reactivity to sad mood. Brain. Behav. Immun. 48, 258–264 (2015)SteenbergenL.SellaroR.van HemertS.BoschJ.A.ColzatoL.S.A randomized controlled trial to test the effect of multispecies probiotics on cognitive reactivity to sad moodBrain. Behav. Immun.48258264201510.1016/j.bbi.2015.04.00325862297Search in Google Scholar

Sudo N., Chida Y., Aiba Y., Sonoda J., Oyama N., Yu X.N., Kubo C., Koga Y.: Postnatal microbial colonization programs the hypothalamic-pituitary-adrenal system for stress response in mice. J. Physiol. 558, 263–275 (2004)SudoN.ChidaY.AibaY.SonodaJ.OyamaN.YuX.N.KuboC.KogaY.Postnatal microbial colonization programs the hypothalamic-pituitary-adrenal system for stress response in miceJ. Physiol.558263275200410.1113/jphysiol.2004.063388166492515133062Search in Google Scholar

Tremaroli V., Bäckhed F.: Functional interactions between the gut microbiota and host metabolism. Nature, 489, 242–249 (2012)TremaroliV.BäckhedF.Functional interactions between the gut microbiota and host metabolismNature489242249201210.1038/nature1155222972297Search in Google Scholar

Turnbaugh P.J., Ley R.E., Hamady M., Fraser-Liggett C.M., Knight R., Gordon J.I.: The Human Microbiome Project. Nature, 449, 804–810 (2007)TurnbaughP.J.LeyR.E.HamadyM.Fraser-LiggettC.M.KnightR.GordonJ.I.The Human Microbiome ProjectNature449804810200710.1038/nature06244370943917943116Search in Google Scholar

United States. Congress. House. Committee on Science. Subcommittee on Energy and Environment.: The human genome project: how private sector developments affect the government program : hearing before the Subcommittee on Energy and Environment of the Committee on Science, U.S. House of Representatives, One Hundred Fifth Congress, second session, June 17, 1998. U.S. G.P.O. (1998)United States. Congress. House. Committee on Science. Subcommittee on Energy and Environment.The human genome project: how private sector developments affect the government program : hearing before the Subcommittee on Energy and Environment of the Committee on Science, U.S. House of Representatives, One Hundred Fifth Congress, second session, June 17, 1998U.S. G.P.O.1998Search in Google Scholar

Venter J.C., Zhu X. i wsp.: The sequence of the human genome. Science, 291, 1304–1351 (2001)VenterJ.C.ZhuX.i wsp.The sequence of the human genomeScience29113041351200110.1126/science.105804011181995Search in Google Scholar

Vogel F.: A preliminary estimate of the number of human genes. Nature, 201, 847 (1964)VogelF.A preliminary estimate of the number of human genesNature201847196410.1038/201847a014161239Search in Google Scholar

Wall R., Cryan J.F., Paul Ross R., Fitzgerald G.F., Dinan T.G., Stanton C.: Bacterial neuroactive compounds produced by psychobiotics. Adv. Exp. Med. Biol. 817, 221–239 (2014)WallR.CryanJ.F.Paul RossR.FitzgeraldG.F.DinanT.G.StantonC.Bacterial neuroactive compounds produced by psychobioticsAdv. Exp. Med. Biol.817221239201410.1007/978-1-4939-0897-4_1024997036Search in Google Scholar

Wallace C.J.K., Milev R.: The effects of probiotics on depressive symptoms in humans: a systematic review. Ann. Gen. Psychiatry, 16, 14 (2017)WallaceC.J.K.MilevR.The effects of probiotics on depressive symptoms in humans: a systematic reviewAnn. Gen. Psychiatry1614201710.1186/s12991-017-0138-2531917528239408Search in Google Scholar

Watson, J.D.: The human genome project: past, present, and future. Science, 248, 44–49 (1990)WatsonJ.D.The human genome project: past, present, and futureScience2484449199010.1126/science.21816652181665Search in Google Scholar

Wischmeyer P.E.: Glutamine: Role in gut protection in critical illness. Curr. Opin. Clin. Nutr. Metab. Care, 9, 607–612 (2006)WischmeyerP.E.Glutamine: Role in gut protection in critical illnessCurr. Opin. Clin. Nutr. Metab. Care9607612200610.1097/01.mco.0000241672.09676.0316912558Search in Google Scholar

Wu G.D., Lewis J.D.: Linking long-term dietary patterns with gut microbial enterotypes. Science, 334, 105–108 (2011)WuG.D.LewisJ.D.Linking long-term dietary patterns with gut microbial enterotypesScience334105108201110.1126/science.1208344336838221885731Search in Google Scholar

Xu Y., Zhou H., Zhu Q.: The Impact of microbiota-gut-brain axis on diabetic cognition impairment. Front. Aging Neurosci. 9, 106 (2017)XuY.ZhouH.ZhuQ.The Impact of microbiota-gut-brain axis on diabetic cognition impairmentFront. Aging Neurosci.9106201710.3389/fnagi.2017.00106540647428496408Search in Google Scholar

Yong E.: Gut microbial “enterotypes” become less clear-cut. Nature, 8–10 (2012)YongE.Gut microbial “enterotypes” become less clear-cutNature810201210.1038/nature.2012.10276Search in Google Scholar

Zoetendal E.G., Akkermans A.D., De Vos, W.M.: Temperature gradient gel electrophoresis analysis of 16S rRNA from human fecal samples reveals stable and host-specific communities of active bacteria. Appl. Environ. Microbiol. 64, 3854–3859 (1998)ZoetendalE.G.AkkermansA.D.De VosW.M.Temperature gradient gel electrophoresis analysis of 16S rRNA from human fecal samples reveals stable and host-specific communities of active bacteriaAppl. Environ. Microbiol.6438543859199810.1128/AEM.64.10.3854-3859.19981065699758810Search in Google Scholar

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