Volume 35 Issue 2
Mar.  2019
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TAOWei-wei, DONGYu, LIULi, XIAODong, WUHao-ran, WUHao-xing, CHENGang, DILiu-qing, WANGHan-qing. Research Progress on the Effect of Intestinal Flora on Depression Based on 'Brain-Gut' Axis[J]. Journal of Nanjing University of traditional Chinese Medicine, 2019, 35(2): 234-240.
Citation: TAOWei-wei, DONGYu, LIULi, XIAODong, WUHao-ran, WUHao-xing, CHENGang, DILiu-qing, WANGHan-qing. Research Progress on the Effect of Intestinal Flora on Depression Based on "Brain-Gut" Axis[J]. Journal of Nanjing University of traditional Chinese Medicine, 2019, 35(2): 234-240.

Research Progress on the Effect of Intestinal Flora on Depression Based on "Brain-Gut" Axis

  • Publish Date: 2019-03-10
  • In recent years, with the deepening of the research on the regulation of intestinal flora, the "brain-gut" axis, which is used to describe the complex network relationship between gastrointestinal microflora and their hosts. It is a bidirectional information regulation pathway based on the presence of intestinal flora in mammals and plays an important role in human health and disease process. Depression is a long and recurring chronic mental illness that differs from simple mood disorders. Studies have shown that intestinal flora can significantly influence host stress response, anxiety, depression and cognitive function through the brain-gut axis. Based on the intestinal flora, this paper reviewed the research status and mechanism of depression, aiming to provide basis and reference for the treatment of depression.

     

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  • [1]
    MOUSSAVI S, CHATTERJI S, VERDES E, et al. Depression, chronic diseases, and decrements in health: results from the World Health Surveys[J]. Lancet, 2007, 370(9590): 851-858.
    [2]
    RUSH AJ, TRIVEDI MH, WISNIEWSKI SR, et al. Acute and longer-term outcomes in depressed outpatients requiring one or several treatment steps: A STAR*D report[J]. Am J Psychiat, 2006, 163(11): 1905-1917.
    [3]
    BIENENSTOCK J, COLLINS S. 99th Dahlem conference on infection, inflammation and chronic inflammatory disorders: psycho-neuroimmunology and the intestinal microbiota: clinical observations and basic mechanisms[J]. Clin Exp Immunol, 2010, 160(1): 85-91.
    [4]
    MAYER EA. Gut feelings: the emerging biology of gut-brain communication[J]. Nat Rev Neurosci, 2011, 12(8): 453-466.
    [5]
    梁姗,王涛,胡旭,等.微生物与行为和精神疾病[J]. 心理科学进展, 2012, 20(1): 75-97.
    [6]
    KELLY JR, CLARKE G, CRYAN JF, et al. Brain-gut-microbiota axis: challenges for translation in psychiatry[J]. Ann Epidemiol, 2016, 26(5): 366-372.
    [7]
    ALONSO VR, GUARNER F. Linking the gut microbiota to human health[J]. Brit J Nutrit, 2013, 109:S21-S26.
    [8]
    GILL SR, POP M, DEBOY RT, et al. Metagenomic analysis of the human distal gut microbiome[J]. Science, 2006, 312(5778): 1355-1359.
    [9]
    LUCKEY TD. Introduction to intestinal microecology[J]. Am J Clin Nutr, 1972, 25(12): 1292-1294.
    [10]
    ECKBURG PB, BIK EM, BERNSTEIN CN, et al. Diversity of the human intestinal microbial flora[J]. Science, 2005, 308(5728): 1635-1638.
    [11]
    TREMAROLI V, BACKHED F. Functional interactions between the gut microbiota and host metabolism[J]. Nature, 2012, 489(7415): 242-249.
    [12]
    .[12]KELLY CR, KHORUTS A, STALEY C, et al. Effect of fecal microbiota transplantation on recurrence in multiply recurrent clostridium difficile infection: a randomized trial[J]. Ann Intern Med, 2016, 165(9): 609-616.
    [13]
    ZHENG P, ZENG B, ZHOU C, et al. Gut microbiome remodeling induces depressive-like behaviors through a pathway mediated by the host's metabolism[J]. Mol Psychiat, 2016, 21(6): 786-796.
    [14]
    KESSLER RC, BROMET EJ. The Epidemiology of depression across cultures[J]. Ann Rev Pub Heal, 2013, 34:119-138.
    [15]
    YARANDI SS, PETERSON DA, TREISMAN GJ, et al. Modulatory effects of gut microbiota on the central nervous system: how gut could play a role in neuropsychiatric health and diseases[J]. J Neurogastroenterol Motil, 2016, 22(2): 201-212.
    [16]
    FOND G, BOUKOUACI W, CHEVALIER G, et al. The "psychomicrobiotic": Targeting microbiota in major psychiatric disorders: A systematic review[J]. Pathol Biol, 2015, 63(1): 35-42.
    [17]
    KELLY JR, BORRE Y, EI A, et al. Transferring the blues: Depression-associated gut microbiota induces neurobehavioural changes in the rat[J]. J Psychiat Res, 2016, 82:109-118.
    [18]
    YATSUNENKO T, REY FE, MANARY MJ, et al. Human gut microbiome viewed across age and geography[J]. Nature, 2012, 486(7402): 222.
    [19]
    JIANG HY, LING ZX, ZHANG YH, et al. Altered fecal microbiota composition in patients with major depressive disorder[J]. Brain Behav Immun, 2015, 48:186-194.
    [20]
    LIU YX, ZHANG L, WANG XQ, et al. Similar fecal microbiota signatures in patients with diarrhea-predominant irritable bowel syndrome and patients with depression[J]. Clin Gastroenterol Hepatol, 2016, 14(11): 1602.
    [21]
    AIZAWA E, TSUJI H, ASAHARA T, et al. Possible association of Bifidobacterium and Lactobacillus in the gut microbiota of patients with major depressive disorder[J]. J Affect Disord, 2016, 202:254-257.
    [22]
    LIN P, DING BY, FENG CY, et al. Prevotella and Klebsiella proportions in fecal microbial communities are potential characteristic parameters for patients with major depressive disorder[J]. J Affect Disord, 2017, 207:300-304.
    [23]
    PARK AJ, COLLINS J, BLENNERHASSETT PA, et al. Altered colonic function and microbiota profile in a mouse model of chronic depression[J]. Neurogastroenterol Motil, 2013, 25(10): 857.
    [24]
    O'MAHONY S M, MARCHESI J R, SCULLY P, et al. Early life stress alters behavior, immunity, and microbiota in rats: implications for irritable bowel syndrome and psychiatric illnesses[J]. Biologic Psychiat, 2009, 65(3): 263-267.
    [25]
    BHARWANI A, MIAN MF, SURETTE MG, et al. Oral treatment with Lactobacillus rhamnosus attenuates behavioural deficits and immune changes in chronic social stress[J]. BMC Med, 2017, 15(1):7.
    [26]
    YU M, JIA HM, ZHOU C, et al. Variations in gut microbiota and fecal metabolic phenotype associated with depression by 16S rRNA gene sequencing and LC/MS-based metabolomics[J]. J Pharmaceut Biomed Anal, 2017, 138:231-239.
    [27]
    LIANG S, WANG T, HU X, et al. Administration of lactobacillus helveticus Ns8 improves behavioral, cognitive, and biochemical aberrations caused by chronic restraint stress[J]. Neurosci, 2015, 310:561-577.
    [28]
    BERCIK P, COLLINS SM. The effects of inflammation, infection and antibiotics on the microbiota-gut-brain axis[J]. Adv Exp Med Biol, 2014, 817:279-289.
    [29]
    KOHLER O, PETERSEN L, MORS O, et al. Infections and exposure to anti-infective agents and the risk of severe mental disorders: a nationwide study[J]. Acta Psychiat Scand, 2017, 135(2): 97-105.
    [30]
    SLYKERMAN RF, THOMPSON J, WALDIE KE, et al. Antibiotics in the first year of life and subsequent neurocognitive outcomes[J]. Acta Paediat, 2017, 106(1): 87-94.
    [31]
    GUIDA F, TURCO F, IANNOTTA M, et al. Antibiotic-induced microbiota perturbation causes gut endocannabinoidome changes, hippocampal neuroglial reorganization and depression in mice[J]. Brain Behav Immun, 2018, 67:230-245.
    [32]
    HOLDEMAN LV, GOOD IJ, MOORE WE. Human fecal flora: variation in bacterial composition within individuals and a possible effect of emotional stress[J]. Appl Environ Microbiol, 1976, 31(3): 359-375.
    [33]
    FREI R, LAUENER RP, CRAMERI R, et al. Microbiota and dietary interactions: an update to the hygiene hypothesis?[J]. Allergy, 2012, 67(4): 451-461.
    [34]
    OWEN L, CORFE B. The role of diet and nutrition on mental health and wellbeing[J]. P Nutr Soc, 2017, 76(4): 425-426.
    [35]
    JORGENSEN BP, HANSEN JT, KRYCH L, et al. A possible link between food and mood: dietary impact on gut microbiota and behavior in BALB/c mice[J]. PLoS ONE, 2014, 9(8):e103398.
    [36]
    ORIACH CS, ROBERTSON RC, STANTON C, et al. Food for thought: The role of nutrition in the microbiota-gut-brain axis[J]. Clin Nutrit Exp, 2016, 6: 25-38.
    [37]
    NG KM, FERREYRA JA, HIGGINBOTTOM SK, et al. Microbiota-liberated host sugars facilitate post-antibiotic expansion of enteric pathogens[J]. Nature, 2013, 502(7469): 96-99.
    [38]
    ROCA-SAAVEDRA P, MENDEZ-VILABRILLE V, MIRANDA J M, et al. Food additives, contaminants and other minor components: effects on human gut microbiota-a review[J]. J Physiol Biochem, 2018, 74(1): 69-83.
    [39]
    GRENHAM S, CLARKE G, CRYAN JF, et al. Brain-gut-microbe communication in health and disease[J]. Front Physiol, 2011, 2:94.
    [40]
    LIU X, CAO S, ZHANG X. Modulation of gut microbiota-brain axis by probiotics, prebiotics, and diet[J]. J Agric Food Chem, 2015, 63(36): 7885-7895.
    [41]
    CAMMAROTA G, IANIRO G, BIBBO S, et al. Gut microbiota modulation: probiotics, antibiotics or fecal microbiota transplantation?[J]. Intern Emerg Med, 2014, 9(4): 365-373.
    [42]
    MARQUES TM, CRYAN JF, SHANAHAN F, et al. Gut microbiota modulation and implications for host health: Dietary strategies to influence the gut-brain axis[J]. Innovat Food Sci Emerg Technol, 2014, 22:239-247.
    [43]
    GILL HS, GROVER S, BATISH VK, et al. Immunological effects of probiotics and their significance to human health[J]. Prebiot Probiot Sci Technol,2009(13):901-948.
    [44]
    DINAN TG, STANTON C, CRYAN JF. Psychobiotics: a novel class of psychotropic[J]. Biol Psychiatry, 2013, 74(10): 720-726.
    [45]
    AKKASHEH G, KASHANI-POOR Z, TAJABADI-EBRAHIMI M, et al. Clinical and metabolic response to probiotic administration in patients with major depressive disorder: A randomized, double-blind, placebo-controlled trial[J]. Nutrition, 2016, 32(3): 315-320.
    [46]
    WALLACE CJK, MILEV R. The effects of probiotics on depressive symptoms in humans: a systematic review[J]. Ann Gener Psychiat, 2017, 16:14-24.
    [47]
    PIRBAGLOU M, KATZ J, DE SOUZA RJ, et al. Probiotic supplementation can positively affect anxiety and depressive symptoms: a systematic review of randomized controlled trials[J]. Nutrit Res, 2016, 36(9): 889-898.
    [48]
    ABILDGAARD A, ELFVING B, HOKLAND M, et al. Probiotic treatment reduces depressive-like behaviour in rats independently of diet[J]. Psychoneuroendocrinology, 2017, 79:40-48.
    [49]
    DESBONNET L, GARRETT L, CLARKE G, et al. Effects of the probiotic bifidobacterium infantis in the maternal separation model of depression[J]. Neuroscience, 2010, 170(4): 1179-1188.
    [50]
    GIBSON GR, HUTKINS R, SANDERS ME, et al. Expert consensus document: The international scientific association for probiotics and prebiotics (ISAPP) consensus statement on the definition and scope of prebiotics[J]. Nat Rev Gastroenterol Hepatol, 2017, 14(8): 491-502.
    [51]
    SCHMIDT K, COWEN P J, HARMER CJ, et al. Prebiotic intake reduces the waking cortisol response and alters emotional bias in healthy volunteers[J]. Psychopharmacology, 2015, 232(10): 1793-1801.
    [52]
    MURPHY T, DIAS GP, THURET S. Effects of diet on brain plasticity in animal and human studies: mind the gap[J]. Neural Plasticity, 2014,2014:563160.
    [53]
    HEIMAN ML, GREENWAY FL. A healthy gastrointestinal microbiome is dependent on dietarydiversity[J]. Mol Metabol, 2016, 5(5): 317-20.
    [54]
    EVRENSEL A, CEYLAN ME. Fecal microbiota transplantation and its usage in neuropsychiatric disorders[J]. Clin Psychopharmacol Neurosci, 2016, 14(3): 231-237.
    [55]
    KALI A. Psychobiotics: An emerging probiotic in psychiatric practice[J]. Biomed J, 2016, 39(3): 223-224.
    [56]
    MACEDO D, CHAVES AJM, DE SOUSA CNS, et al. Antidepressants, antimicrobials or both? Gut microbiota dysbiosis in depression and possible implications of the antimicrobial effects of antidepressant drugs for antidepressant effectiveness[J]. J Affect Disord, 2017, 208:22-32.
    [57]
    YUAN TF, ROCHA NB, PAES F, et al. Neural mechanisms of exercise: effects on gut microbiota and depression[J]. CNS Neurol Disord Drug Targ, 2015, 14(10): 1312-1314.
    [58]
    GALLEY JD, NELSON MC, YU ZT, et al. Exposure to a social stressor disrupts the community structure of the colonic mucosa-associated microbiota[J]. BMC Microbiol, 2014, 14:189-202.
    [59]
    SCHNORR SL, BACHNER HA. Integrative therapies in anxiety treatment with special emphasis on the gut microbiome[J]. Yale J Biol Med, 2016, 89(3): 397-422.
    [60]
    BAMBLING M, EDWARDS SC, HALL S, et al. A combination of probiotics and magnesium orotate attenuate depression in a small SSRI resistant cohort: an intestinal anti-inflammatory response is suggested[J]. Inflammopharmacology, 2017, 25(2): 271-274.
    [61]
    BACKHED F, DING H, WANG T, et al. The gut microbiota as an environmental factor that regulates fat storage[J]. P Nat Acad Sci USA, 2004, 101(44): 15718-15723.
    [62]
    HSIAO EY, MCBRIDE SW, HSIEN S, et al. Microbiota modulate behavioral and physiological abnormalities associated with neurodevelopmental disorders[J]. Cell, 2013, 155(7): 1451-1463.
    [63]
    CRYAN JF, DINAN TG. Mind-altering microorganisms: the impact of the gut microbiota on brain and behaviour[J]. Nat Rev Neurosci, 2012, 13(10): 701-712.
    [64]
    GERSHON MD, TACK J. The serotonin signaling system: From basic understanding to drug development-for functional GI disorders[J]. Gastroenterology, 2007, 132(1): 397-414.
    [65]
    RUDDICK JP, EVANS AK, NUTT DJ, et al. Tryptophan metabolism in the central nervous system: medical implications[J]. Expert Rev Mol Med, 2006, 8(20): 1-27.
    [66]
    FURNESS JB, KUNZE WAA, CLERC N. The intestine as a sensory organ: neural, endocrine, and immune responses[J]. Am J Physiol, 1999, 277(1): 922-928.
    [67]
    NICHOLSON JK, HOLMES E, KINROSS J, et al. Host-Gut microbiota metabolic interactions[J]. Science, 2012, 336(6086): 1262-1267.
    [68]
    SCHILTZ JC, SAWCHENKO PE. Distinct brain vascular cell types manifest inducible cyclooxygenase expression as a function of the strength and nature of immune insults[J]. J Neurosci, 2002, 22(13): 5606-5618.
    [69]
    BANKS WA. The blood-brain barrier in psychoneuroimmunology[J]. Neurol Clin, 2006, 24(3): 413.
    [70]
    VITKOVIC L, KONSMAN JP, BOCKAERT J, et al. Cytokine signals propagate through the brain[J]. Mol Psychiat, 2001, 6(2): 249.
    [71]
    BENARROCH EE. Vagus Nerve (Cranial Nerve X)[J]. Encycloped Neurologic Sci, 2014,2014:589-590.
    [72]
    GOEHLER LE, PARK SM, OPITZ N, et al. Campylobacter jejuni infection increases anxiety-like behavior in the holeboard: Possible anatomical substrates for viscerosensory modulation of exploratorybehavior[J]. Brain Behav Immun, 2008, 22(3): 354-366.
    [73]
    LYTE M, LI W, OPITZ N, et al. Induction of anxiety-like behavior in mice during the initial stages of infection with the agent of murine colonic hyperplasia Citrobacter rodentium[J]. Physiol Behav, 2006, 89(3): 350-357.
    [74]
    BARBARA G, WANG B, STANGHELLINI V, et al. Mast cell-dependent excitation of visceral-nociceptive sensory neurons in irritable bowel syndrome[J]. Gastroenterology, 2007, 132(1): 26-37.
    [75]
    ROMEO HE, TIO DL, RAHMAN SU, et al. The glossopharyngeal nerve as a novel pathway in immune-to-brain communication: relevance to neuroimmune surveillance of the oral cavity[J]. J Neuroimmunol, 2001, 115(1/2): 91-100.
    [76]
    BLUTHE RM, WALTER V, PARNET P, et al. Lipopolysaccharide induces sickness behaviour in rats by a vagal mediated mechanism[J]. CR Acad Sci Ⅲ, 1994, 317(6): 499-503.
    [77]
    O'MAHONY SM, CLARKE G, BORRE YE, et al. Serotonin, tryptophan metabolism and the brain-gut-microbiome axis[J]. Behav Brain Res, 2015, 277:32-48.
    [78]
    BERCIK P, PARK AJ, SINCLAIR D, et al. The anxiolytic effect of Bifidobacterium longum NCC3001 involves vagal pathways for gut-brain communication[J]. Neurogastroenterol Motil, 2011, 23(12): 1132.
    [79]
    DINAN TG, CRYAN JF. Melancholic microbes: a link between gut microbiota and depression?[J]. Neurogastroenterol Motil, 2013, 25(9): 713-719.
    [80]
    THOMAS RH, MEEKING MM, MEPHAM JR, et al. The enteric bacterial metabolite propionic acid alters brain and plasma phospholipid molecular species: further development of a rodent model of autism spectrum disorders[J]. J Neuroinflamm, 2012, 9:153.
    [81]
    MACFABE DF, CAIN NE, BOON F, et al. Effects of the enteric bacterial metabolic product propionic acid on object-directed behavior, social behavior, cognition, and neuroinflammation in adolescent rats: Relevance to autism spectrum disorder[J]. Behav Brain Res, 2011, 217(1): 47-54.
    [82]
    CONN AR, FELL DI, STEELE RD. Characterization of alpha-keto acid transport across blood-brain barrier in rats[J]. Am J Physiol, 1983, 245(3): 253-260.
    [83]
    WANG JF, FU SP, LI SN, et al. Short-chain fatty acids inhibit growth hormone and prolactin gene transcription via cAMP/PKA/CREB signaling pathway in dairy cow anterior pituitary cells[J]. Int J Mol Sci, 2013, 14(11): 21474-88.
    [84]
    PARASHAR A, UDAYABANU M. Gut microbiota regulates key modulators of social behavior[J]. Eur Neuropsychopharmacol, 2016, 26(1): 78-91.
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