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Gut microbiome and the brain

Gut flora as it relates to mood and cognition.

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المكتبة البحثية731 works held

Peer-reviewed work held with its DOI and abstract, labelled with the study design its publication types report. None of it has been read or assessed, so nothing here may be cited as showing anything. Retracted work is held for the record but never listed; a review that a later version replaced is listed under its replacement and marked.

10.1016/j.gtc.2016.09.007Gastroenterology clinics of North America (2017)MEDLINE-indexed journal, not yet read by us; matched on Gastrointestinal Microbiome, Probiotics, Fatty Acids, Volatile, Gastrointestinal Tract, Prebiotics, Tryptophan, gut-brain axis, microbiota, Microbiota

The Microbiome-Gut-Brain Axis in Health and Disease.: Gut microbes are capable of producing most neurotransmitters found in the human brain. Evidence is accumulating to support the view that gut microbes influence central neurochemistry and behavior. Irritable bowel syndrome is regarded as the prototypic disorder of the brain-gut-microbiota axis that can be responsive to probiotic therapy. Translational studies indicate that certain bacteria may have an impact on stress responses and cognitive functioning. Manipulating the gut microbiota with psych

10.1093/brain/awab156Brain : a journal of neurology (2021)MEDLINE-indexed journal, not yet read by us; matched on Brain-Gut Axis, Gastrointestinal Microbiome, Dysbiosis, Probiotics, Prebiotics, microbiota

The role of gut dysbiosis in Parkinson's disease: mechanistic insights and therapeutic options.: Parkinson's disease is a common neurodegenerative disorder in which gastrointestinal symptoms may appear prior to motor symptoms. The gut microbiota of patients with Parkinson's disease shows unique changes, which may be used as early biomarkers of disease. Alterations in the gut microbiota composition may be related to the cause or effect of motor or non-motor symptoms, but the specific pathogenic mechanisms are unclear. The gut microbiota and its metabolites have been suggested to be involved

10.3390/ijms23031172International journal of molecular sciences (2022)MEDLINE-indexed journal, not yet read by us; matched on Brain-Gut Axis, Gastrointestinal Microbiome, Dysbiosis, Probiotics, gut-brain axis, microbiota

How Microbes Affect Depression: Underlying Mechanisms via the Gut-Brain Axis and the Modulating Role of Probiotics.: Accumulating evidence suggests that the gut microbiome influences the brain functions and psychological state of its host via the gut-brain axis, and gut dysbiosis has been linked to several mental illnesses, including major depressive disorder (MDD). Animal experiments have shown that a depletion of the gut microbiota leads to behavioral changes, and is associated with pathological changes, including abnormal stress response and impaired adult neurogenesis. Short-chain fatty acids such as butyr

10.1152/physrev.00018.2018Physiological reviews (2019)MEDLINE-indexed journal, not yet read by us; matched on Gastrointestinal Microbiome, Dysbiosis, Bacteria, Enteric Nervous System, Intestines, gut-brain axis, Host-Pathogen Interactions, microbiota

The Microbiota-Gut-Brain Axis.: The importance of the gut-brain axis in maintaining homeostasis has long been appreciated. However, the past 15 yr have seen the emergence of the microbiota (the trillions of microorganisms within and on our bodies) as one of the key regulators of gut-brain function and has led to the appreciation of the importance of a distinct microbiota-gut-brain axis. This axis is gaining ever more traction in fields investigating the biological and physiological basis of psychiatric, neurodevelopmental, age

10.1016/j.pnpbp.2020.110209Progress in neuro-psychopharmacology & biological psychiatry (2021)MEDLINE-indexed journal, not yet read by us; matched on Brain-Gut Axis, Gastrointestinal Microbiome, Probiotics, Enteric Nervous System, Prebiotics, Gastrointestinal Diseases

Psychological comorbidity in gastrointestinal diseases: Update on the brain-gut-microbiome axis.: The high comorbidity of psychological disorders in both functional and organic gastrointestinal diseases suggests the intimate and complex link between the brain and the gut. Termed the brain-gut axis, this bidirectional communication between the central nervous system and enteric nervous system relies on immune, endocrine, neural, and metabolic pathways. There is increasing evidence that the gut microbiome is a key part of this system, and dysregulation of the brain-gut-microbiome axis (BGMA) h

10.1016/j.phrs.2020.104784Pharmacological research (2020)MEDLINE-indexed journal, not yet read by us; matched on Gastrointestinal Microbiome, Dysbiosis, Probiotics, Bacteria, Intestines, microbiota

Probiotics and fructo-oligosaccharide intervention modulate the microbiota-gut brain axis to improve autism spectrum reducing also the hyper-serotonergic state and the dopamine metabolism disorder.: The prevalence of autism spectrum disorders (ASD) is increasing, but its etiology remains elusive and hence an effective treatment is not available. Previous research conducted on animal models suggests that microbiota-gut-brain axis may contribute to ASD pathology and more human research is needed. This study was divided into two stages,.At the discovery stage, we compared the differences in gut microbiota profiles (using 16S rRNA sequencing), fecal SCFAs (using GC-MS) and plasma neurotransmitt

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351 to 375 of 731
Dinan TG, Cryan JF (2017)reviewMEDLINE-indexed journal, not yet read by usNeuropsychopharmacology : official publication of the American College of Neuropsychopharmacology162 citations

Microbes, Immunity, and Behavior: Psychoneuroimmunology Meets the Microbiome.

There is now a large volume of evidence to support the view that the immune system is a key communication pathway between the gut and brain, which plays an important role in stress-related psychopathologies and thus provides a potentially fruitful target for psychotropic intervention. The gut microbiota is a complex ecosystem with a diverse range of organisms and a sophisticated genomic structure. Bacteria within the gut are estimated to weigh in excess of 1 kg in the adult human and the microbes within not only produce antimicrobial peptides, short chain fatty acids, and vitamins, but also most of the common neurotransmitters found in the human brain. That the microbial content of the gut plays a key role in immune development is now beyond doubt. Early disruption of the host-microbe interplay can have lifelong consequences, not just in terms of intestinal function but in distal organs

matched on Gastrointestinal Microbiome (mesh), microbiota (text)

Wiley NC, Dinan TG, Ross RP, Stanton C, Clarke G, Cryan JF (2017)reviewMEDLINE-indexed journal, not yet read by usJournal of animal science100 citations

The microbiota-gut-brain axis as a key regulator of neural function and the stress response: Implications for human and animal health.

The brain-gut-microbiota axis comprises an extensive communication network between the brain, the gut, and the microbiota residing there. Development of a diverse gut microbiota is vital for multiple features of behavior and physiology, as well as many fundamental aspects of brain structure and function. Appropriate early-life assembly of the gut microbiota is also believed to play a role in subsequent emotional and cognitive development. If the composition, diversity, or assembly of the gut microbiota is impaired, this impairment can have a negative impact on host health and lead to disorders such as obesity, diabetes, inflammatory diseases, and even potentially neuropsychiatric illnesses, including anxiety and depression. Therefore, much research effort in recent years has focused on understanding the potential of targeting the intestinal microbiota to prevent and treat such disorders.

matched on Gastrointestinal Microbiome (mesh), microbiota (text)

Alberoni D, Gaggìa F, Baffoni L, Di Gioia D (2016)reviewMEDLINE-indexed journal, not yet read by usApplied microbiology and biotechnology63 citations

Beneficial microorganisms for honey bees: problems and progresses.

Nowadays, honey bees are stressed by a number of biotic and abiotic factors which may compromise to some extent the pollination service and the hive productivity. The EU ban of antibiotics as therapeutic agents against bee pathogens has stimulated the search for natural alternatives. The increasing knowledge on the composition and functions of the bee gut microbiota and the link between a balanced gut microbiota and health status have encouraged the research on the use of gut microorganisms to improve bee health. Somehow, we are assisting to the transfer of the "probiotic concept" into the bee science. In this review, we examine the role of the honey bee gut microbiota in bee health and critically describe the available applications of beneficial microorganisms as pest control agents and health support. Most of the strains, mainly belonging to the genera Lactobacillus, Bifidobacterium an

matched on Gastrointestinal Microbiome (mesh), microbiota (text)

Leclercq S, Forsythe P, Bienenstock J (2016)reviewMEDLINE-indexed journal, not yet read by usCanadian journal of psychiatry. Revue canadienne de psychiatrie71 citations

Posttraumatic Stress Disorder: Does the Gut Microbiome Hold the Key?

Gut bacteria strongly influence our metabolic, endocrine, immune, and both peripheral and central nervous systems. Microbiota do this directly and indirectly through their components, shed and secreted, ranging from fermented and digested dietary and host products to functionally active neurotransmitters including serotonin, dopamine, and γ-aminobutyric acid. Depression has been associated with enhanced levels of proinflammatory biomarkers and abnormal responses to stress. Posttraumatic stress disorder (PTSD) appears to be marked in addition by low cortisol responses, and these factors seem to predict and predispose individuals to develop PTSD after a traumatic event. Dysregulation of the immune system and of the hypothalamic-pituitary-adrenal axis observed in PTSD may reflect prior trauma exposure, especially early in life. Early life, including the prenatal period, is a critical time i

matched on Gastrointestinal Microbiome (mesh), microbiota (text)

Hagerty SL, Hutchison KE, Lowry CA, Bryan AD (2020)MEDLINE-indexed journal, not yet read by usPloS one84 citations

An empirically derived method for measuring human gut microbiome alpha diversity: Demonstrated utility in predicting health-related outcomes among a human clinical sample.

The human gut microbiome has emerged as a potential key factor involved in the manifestation of physical and mental health. Despite an explosion of cross-disciplinary interest in researching the gut microbiome, there remains to be a gold-standard method for operationalizing gut microbiome alpha diversity. Given researchers' interest in examining the relationships among gut microbiome alpha diversity and health-related outcomes of interest, a way of operationalizing the microbiome that yields a numeric value, which could be used in common statistical approaches, is needed. Thus, the current study aims to provide methodological guidance for how to operationalize microbiome alpha diversity. Findings suggest that alpha diversity of the human gut microbiome is comprised of two sub-constructs (richness and evenness), and we propose a step-by-step method of creating alpha diversity composite me

matched on Gastrointestinal Microbiome (mesh), Bacteria (mesh), Microbiota (mesh), RNA, Ribosomal, 16S (mesh)

No distinct microbiome signature of irritable bowel syndrome found in a Swedish random population.

Objective: The ethiopathogenesis of irritable bowel syndrome (IBS) is unknown. While a link to the gut microbiome is postulated, the heterogeneity of the healthy gut makes it difficult to draw definitive conclusions. We aimed to describe the faecal and mucosa-associated microbiome (MAM) and health correlates on a community cohort of healthy and IBS individuals with no colonoscopic findings. Design: The PopCol study recruited a random sample of 3556 adults; 745 underwent colonoscopy. IBS was defined by Rome IV criteria and organic disease excluded. 16S rRNA gene sequencing was conducted on sigmoid biopsy samples from 376 representative individuals (63 IBS cases) and faecal samples from 185 individuals (32 IBS cases). Results: While sigmoid MAM was dominated by Lachnospiraceae, faeces presented a higher relative abundance of Ruminococcaceae. Microbial richness in MAM was linearly correlate

matched on Gastrointestinal Microbiome (mesh), Feces (mesh), Intestinal Mucosa (mesh), RNA, Ribosomal, 16S (mesh)

Differences in gut microbial composition correlate with regional brain volumes in irritable bowel syndrome.

Background: Preclinical and clinical evidence supports the concept of bidirectional brain-gut microbiome interactions. We aimed to determine if subgroups of irritable bowel syndrome (IBS) subjects can be identified based on differences in gut microbial composition, and if there are correlations between gut microbial measures and structural brain signatures in IBS. Methods: Behavioral measures, stool samples, and structural brain images were collected from 29 adult IBS and 23 healthy control subjects (HCs). 16S ribosomal RNA (rRNA) gene sequencing was used to profile stool microbial communities, and various multivariate analysis approaches were used to quantitate microbial composition, abundance, and diversity. The metagenomic content of samples was inferred from 16S rRNA gene sequence data using Phylogenetic Investigation of Communities by Reconstruction of Unobserved States (PICRUSt). T

matched on Gastrointestinal Microbiome (mesh), Bacteria (mesh), Feces (mesh), RNA, Ribosomal, 16S (mesh)

GABA-producing Bifidobacterium dentium modulates visceral sensitivity in the intestine.

Background: Recurrent abdominal pain is a common and costly health-care problem attributed, in part, to visceral hypersensitivity. Increasing evidence suggests that gut bacteria contribute to abdominal pain perception by modulating the microbiome-gut-brain axis. However, specific microbial signals remain poorly defined. γ-aminobutyric acid (GABA) is a principal inhibitory neurotransmitter and a key regulator of abdominal and central pain perception from peripheral afferent neurons. Although gut bacteria are reported to produce GABA, it is not known whether the microbial-derived neurotransmitter modulates abdominal pain. Methods: To investigate the potential analgesic effects of microbial GABA, we performed daily oral administration of a specific Bifidobacterium strain (B. dentiumATCC 27678) in a rat fecal retention model of visceral hypersensitivity, and subsequently evaluated pain respo

matched on Gastrointestinal Microbiome (mesh), Feces (mesh), Intestinal Mucosa (mesh), Intestines (mesh)

Singh V, Roth S, Llovera G, Sadler R, Garzetti D, Stecher B, Dichgans M, Liesz A (2016)MEDLINE-indexed journal, not yet read by usThe Journal of neuroscience : the official journal of the Society for Neuroscience600 citations

Microbiota Dysbiosis Controls the Neuroinflammatory Response after Stroke.

Unlabelled: Acute brain ischemia induces a local neuroinflammatory reaction and alters peripheral immune homeostasis at the same time. Recent evidence has suggested a key role of the gut microbiota in autoimmune diseases by modulating immune homeostasis. Therefore, we investigated the mechanistic link among acute brain ischemia, microbiota alterations, and the immune response after brain injury. Using two distinct models of acute middle cerebral artery occlusion, we show by next-generation sequencing that large stroke lesions cause gut microbiota dysbiosis, which in turn affects stroke outcome via immune-mediated mechanisms. Reduced species diversity and bacterial overgrowth of bacteroidetes were identified as hallmarks of poststroke dysbiosis, which was associated with intestinal barrier dysfunction and reduced intestinal motility as determined by in vivo intestinal bolus tracking. Reco

matched on Dysbiosis (mesh), Feces (mesh), Microbiota (mesh), Gastrointestinal Diseases (mesh), microbiota (text)

Yarandi SS, Peterson DA, Treisman GJ, Moran TH, Pasricha PJ (2016)reviewMEDLINE-indexed journal, not yet read by usJournal of neurogastroenterology and motility167 citations

Modulatory Effects of Gut Microbiota on the Central Nervous System: How Gut Could Play a Role in Neuropsychiatric Health and Diseases.

Gut microbiome is an integral part of the Gut-Brain axis. It is becoming increasingly recognized that the presence of a healthy and diverse gut microbiota is important to normal cognitive and emotional processing. It was known that altered emotional state and chronic stress can change the composition of gut microbiome, but it is becoming more evident that interaction between gut microbiome and central nervous system is bidirectional. Alteration in the composition of the gut microbiome can potentially lead to increased intestinal permeability and impair the function of the intestinal barrier. Subsequently, neuro-active compounds and metabolites can gain access to the areas within the central nervous system that regulate cognition and emotional responses. Deregulated inflammatory response, promoted by harmful microbiota, can activate the vagal system and impact neuropsychological functions

matched on Brain-Gut Axis (keyword), gut-brain axis (text), microbiota (text)

Rao M, Gershon MD (2016)reviewMEDLINE-indexed journal, not yet read by usNature reviews. Gastroenterology & hepatology441 citations

The bowel and beyond: the enteric nervous system in neurological disorders.

The enteric nervous system (ENS) is large, complex and uniquely able to orchestrate gastrointestinal behaviour independently of the central nervous system (CNS). An intact ENS is essential for life and ENS dysfunction is often linked to digestive disorders. The part the ENS plays in neurological disorders, as a portal or participant, has also become increasingly evident. ENS structure and neurochemistry resemble that of the CNS, therefore pathogenic mechanisms that give rise to CNS disorders might also lead to ENS dysfunction, and nerves that interconnect the ENS and CNS can be conduits for disease spread. We review evidence for ENS dysfunction in the aetiopathogenesis of autism spectrum disorder, amyotrophic lateral sclerosis, transmissible spongiform encephalopathies, Parkinson disease and Alzheimer disease. Animal models suggest that common pathophysiological mechanisms account for th

matched on Enteric Nervous System (mesh), gut-brain axis (text), Gastrointestinal Diseases (mesh)

Dash S, Clarke G, Berk M, Jacka FN (2015)reviewMEDLINE-indexed journal, not yet read by usCurrent opinion in psychiatry238 citations

The gut microbiome and diet in psychiatry: focus on depression.

Purpose of review: With depressive disorders the leading source of disability globally, the identification of new targets for prevention and management is imperative. A rapidly emerging field of research suggests that the microbiome-gut-brain axis is of substantial relevance to mood and behaviour. Similarly, unhealthy diet has recently emerged as a significant correlate of and risk factor for depression. This review provides evidence for the gut microbiota as a key factor mediating the link between diet and depressive illness. Recent findings: The development of new technologies is affording a better understanding of how diet influences gut microbiota composition and activity and how this may, in turn, influence depressive illness. New interventions are also suggesting the possible utility of pre and probiotic formulations and fermented food in influencing mental health. Summary: Althoug

matched on Gastrointestinal Tract (mesh), Microbiota (mesh), microbiota (text)

Luna RA, Foster JA (2015)reviewMEDLINE-indexed journal, not yet read by usCurrent opinion in biotechnology207 citations

Gut brain axis: diet microbiota interactions and implications for modulation of anxiety and depression.

The human gut microbiome is composed of an enormous number of microorganisms, generally regarded as commensal bacteria. Without this inherent microbial community, we would be unable to digest plant polysaccharides and would have trouble extracting lipids from our diet. Resident gut bacteria are an important contributor to healthy metabolism and there is significant evidence linking gut microbiota and metabolic disorders such as obesity and diabetes. In the past few years, neuroscience research has demonstrated the importance of microbiota in the development of brain systems that are vital to both stress reactivity and stress-related behaviours. Here we review recent literature that examines the impact of diet-induced changes in the microbiota on stress-related behaviours including anxiety and depression.

matched on Gastrointestinal Tract (mesh), Microbiota (mesh), microbiota (text)

Alcock J, Maley CC, Aktipis CA (2014)reviewMEDLINE-indexed journal, not yet read by usBioEssays : news and reviews in molecular, cellular and developmental biology264 citations

Is eating behavior manipulated by the gastrointestinal microbiota? Evolutionary pressures and potential mechanisms.

Microbes in the gastrointestinal tract are under selective pressure to manipulate host eating behavior to increase their fitness, sometimes at the expense of host fitness. Microbes may do this through two potential strategies: (i) generating cravings for foods that they specialize on or foods that suppress their competitors, or (ii) inducing dysphoria until we eat foods that enhance their fitness. We review several potential mechanisms for microbial control over eating behavior including microbial influence on reward and satiety pathways, production of toxins that alter mood, changes to receptors including taste receptors, and hijacking of the vagus nerve, the neural axis between the gut and the brain. We also review the evidence for alternative explanations for cravings and unhealthy eating behavior. Because microbiota are easily manipulatable by prebiotics, probiotics, antibiotics, fec

matched on Gastrointestinal Tract (mesh), Microbiota (mesh), microbiota (text)

Moloney RD, Desbonnet L, Clarke G, Dinan TG, Cryan JF (2014)reviewMEDLINE-indexed journal, not yet read by usMammalian genome : official journal of the International Mammalian Genome Society269 citations

The microbiome: stress, health and disease.

Bacterial colonisation of the gut plays a major role in postnatal development and maturation of key systems that have the capacity to influence central nervous system (CNS) programming and signaling, including the immune and endocrine systems. Individually, these systems have been implicated in the neuropathology of many CNS disorders and collectively they form an important bidirectional pathway of communication between the microbiota and the brain in health and disease. Regulation of the microbiome-brain-gut axis is essential for maintaining homeostasis, including that of the CNS. Moreover, there is now expanding evidence for the view that commensal organisms within the gut play a role in early programming and later responsivity of the stress system. Research has focused on how the microbiota communicates with the CNS and thereby influences brain function. The routes of this communicati

matched on Gastrointestinal Tract (mesh), Microbiota (mesh), microbiota (text)

Kim YK, Shin C (2018)MEDLINE-indexed journal, not yet read by usCurrent neuropharmacology164 citations

The Microbiota-Gut-Brain Axis in Neuropsychiatric Disorders: Pathophysiological Mechanisms and Novel Treatments.

Background: The human gut microbiome comprise a huge number of microorganisms with co-evolutionary associations with humans. It has been repeatedly revealed that bidirectional communication exists between the brain and the gut and involves neural, hormonal, and immunological pathways. Evidences from neuroscience researches over the past few years suggest that microbiota is essential for the development and maturation of brain systems that are associated to stress responses. Method: This review provides that the summarization of the communication among microbiota, gut and brain and the results of preclinical and clinical studies on gut microbiota used in treatments for neuropsychiatric disorders. Result: Recent studies have reported that diverse forms of neuropsychiatric disorders (such as autism, depression, anxiety, and schizophrenia) are associated with or modulated by variations in th

matched on Gastrointestinal Microbiome (mesh), Probiotics (mesh), microbiota (text), Prebiotics (keyword)

Qin HY, Cheng CW, Tang XD, Bian ZX (2014)reviewMEDLINE-indexed journal, not yet read by usWorld journal of gastroenterology248 citations

Impact of psychological stress on irritable bowel syndrome.

Psychological stress is an important factor for the development of irritable bowel syndrome (IBS). More and more clinical and experimental evidence showed that IBS is a combination of irritable bowel and irritable brain. In the present review we discuss the potential role of psychological stress in the pathogenesis of IBS and provide comprehensive approaches in clinical treatment. Evidence from clinical and experimental studies showed that psychological stresses have marked impact on intestinal sensitivity, motility, secretion and permeability, and the underlying mechanism has a close correlation with mucosal immune activation, alterations in central nervous system, peripheral neurons and gastrointestinal microbiota. Stress-induced alterations in neuro-endocrine-immune pathways acts on the gut-brain axis and microbiota-gut-brain axis, and cause symptom flare-ups or exaggeration in IBS. I

matched on Intestines (mesh), gut-brain axis (text), microbiota (text)

Holzer P, Reichmann F, Farzi A (2012)reviewMEDLINE-indexed journal, not yet read by usNeuropeptides348 citations

Neuropeptide Y, peptide YY and pancreatic polypeptide in the gut-brain axis.

The gut-brain axis refers to the bidirectional communication between the gut and the brain. Four information carriers (vagal and spinal afferent neurons, immune mediators such as cytokines, gut hormones and gut microbiota-derived signalling molecules) transmit information from the gut to the brain, while autonomic neurons and neuroendocrine factors carry outputs from the brain to the gut. The members of the neuropeptide Y (NPY) family of biologically active peptides, NPY, peptide YY (PYY) and pancreatic polypeptide (PP), are expressed by cell systems at distinct levels of the gut-brain axis. PYY and PP are exclusively expressed by endocrine cells of the digestive system, whereas NPY is found at all levels of the gut-brain and brain-gut axis. The major systems expressing NPY comprise enteric neurons, primary afferent neurons, several neuronal pathways throughout the brain and sympathetic

matched on Gastrointestinal Tract (mesh), gut-brain axis (text), microbiota (text)

Deans E (2016)editorial or commentMEDLINE-indexed journal, not yet read by usJournal of physiological anthropology20 citations

Microbiome and mental health in the modern environment.

A revolution in the understanding of the pathophysiology of mental illness combined with new knowledge about host/microbiome interactions and psychoneuroimmunology has opened an entirely new field of study, the "psychobiotics". The modern microbiome is quite changed compared to our ancestral one due to diet, antibiotic exposure, and other environmental factors, and these differences may well impact our brain health. The sheer complexity and scope of how diet, probiotics, prebiotics, and intertwined environmental variables could influence mental health are profound obstacles to an organized and useful study of the microbiome and psychiatric disease. However, the potential for positive anti-inflammatory effects and symptom amelioration with perhaps few side effects makes the goal of clarifying the role of the microbiota in mental health a vital one.

matched on Probiotics (mesh), Microbiota (mesh), Prebiotics (mesh), microbiota (text)

Li Q, Han Y, Dy ABC, Hagerman RJ (2017)reviewMEDLINE-indexed journal, not yet read by usFrontiers in cellular neuroscience271 citations

The Gut Microbiota and Autism Spectrum Disorders.

Gastrointestinal (GI) symptoms are a common comorbidity in patients with autism spectrum disorder (ASD), but the underlying mechanisms are unknown. Many studies have shown alterations in the composition of the fecal flora and metabolic products of the gut microbiome in patients with ASD. The gut microbiota influences brain development and behaviors through the neuroendocrine, neuroimmune and autonomic nervous systems. In addition, an abnormal gut microbiota is associated with several diseases, such as inflammatory bowel disease (IBD), ASD and mood disorders. Here, we review the bidirectional interactions between the central nervous system and the gastrointestinal tract (brain-gut axis) and the role of the gut microbiota in the central nervous system (CNS) and ASD. Microbiome-mediated therapies might be a safe and effective treatment for ASD.

matched on Brain-Gut Axis (keyword), Probiotics (keyword), microbiota (text)

Zhao Z, Ning J, Bao XQ, Shang M, Ma J, Li G, Zhang D (2021)MEDLINE-indexed journal, not yet read by usMicrobiome473 citations

Fecal microbiota transplantation protects rotenone-induced Parkinson's disease mice via suppressing inflammation mediated by the lipopolysaccharide-TLR4 signaling pathway through the microbiota-gut-brain axis.

Background: Parkinson's disease (PD) is a prevalent neurodegenerative disorder, displaying not only well-known motor deficits but also gastrointestinal dysfunctions. Consistently, it has been increasingly evident that gut microbiota affects the communication between the gut and the brain in PD pathogenesis, known as the microbiota-gut-brain axis. As an approach to re-establishing a normal microbiota community, fecal microbiota transplantation (FMT) has exerted beneficial effects on PD in recent studies. Here, in this study, we established a chronic rotenone-induced PD mouse model to evaluate the protective effects of FMT treatment on PD and to explore the underlying mechanisms, which also proves the involvement of gut microbiota dysbiosis in PD pathogenesis via the microbiota-gut-brain axis. Results: We demonstrated that gut microbiota dysbiosis induced by rotenone administration caused

matched on Brain-Gut Axis (mesh), Gastrointestinal Microbiome (mesh), microbiota (text)

Li H, Xiang Y, Zhu Z, Wang W, Jiang Z, Zhao M, Cheng S, Pan F, Liu D, Ho RCM, Ho CSH (2021)MEDLINE-indexed journal, not yet read by usJournal of neuroinflammation199 citations

Rifaximin-mediated gut microbiota regulation modulates the function of microglia and protects against CUMS-induced depression-like behaviors in adolescent rat.

Background: Chronic unpredictable mild stress (CUMS) can not only lead to depression-like behavior but also change the composition of the gut microbiome. Regulating the gut microbiome can have an antidepressant effect, but the mechanism by which it improves depressive symptoms is not clear. Short-chain fatty acids (SCFAs) are small molecular compounds produced by the fermentation of non-digestible carbohydrates. SFCAs are ubiquitous in intestinal endocrine and immune cells, making them important mediators of gut microbiome-regulated body functions. The balance between the pro- and anti-inflammatory microglia plays an important role in the occurrence and treatment of depression caused by chronic stress. Non-absorbable antibiotic rifaximin can regulate the structure of the gut microbiome. We hypothesized that rifaximin protects against stress-induced inflammation and depression-like behavi

matched on Brain-Gut Axis (mesh), Gastrointestinal Microbiome (mesh), microbiota (text)

Dickerson F, Severance E, Yolken R (2017)reviewMEDLINE-indexed journal, not yet read by usBrain, behavior, and immunity195 citations

The microbiome, immunity, and schizophrenia and bipolar disorder.

Schizophrenia and bipolar disorder are serious neuropsychiatric disorders of uncertain etiology. Recent studies indicate that immune activation may contribute to the etiopathogenesis of these disorders. Numerous studies in animal models indicate that the mucosal microbiome may influence cognition and behavior by altering the functioning of the immune system. It is thus likely that the microbiome plays a role in human psychiatric disorders. The study of immune alterations and the microbiome in schizophrenia and bipolar disorder is in its infancy. Two recent investigations of the oro-pharyngeal microbiota in schizophrenia found differences between cases and controls. Other studies have found increased gastrointestinal inflammation in schizophrenia and bipolar disorder based on measures of microbial translocation. Several studies have also found an association between the receipt of antibio

matched on Microbiota (mesh), Probiotics (keyword), microbiota (text)

Zhang H, Wang Z, Wang G, Song X, Qian Y, Liao Z, Sui L, Ai L, Xia Y (2023)reviewMEDLINE-indexed journal, not yet read by usThe Journal of nutrition81 citations

Understanding the Connection between Gut Homeostasis and Psychological Stress.

Long-term exposure to adverse life events that provoke acute or chronic psychological stress (hereinafter "stress") can negatively affect physical health and even increase susceptibility to psychological illnesses, such as anxiety and depression. As a part of the hypothalamic-pituitary-adrenal axis, corticotropin-releasing factor (CRF) released from the hypothalamus is primarily responsible for the stress response. Typically, CRF disrupts the gastrointestinal system and leads to gut microbiota dysbiosis, thereby increasing risk of functional gastrointestinal diseases, such as irritable bowel syndrome. Furthermore, CRF increases oxidative damage to the colon and triggers immune responses involving mast cells, neutrophils, and monocytes. CRF even affects the differentiation of intestinal stem cells (ISCs), causing enterochromaffin cells to secrete excessive amounts of 5-hydroxytryptamine (

matched on gut-brain axis (text), Probiotics (keyword), microbiota (text)

Altered bile acid profile associates with cognitive impairment in Alzheimer's disease-An emerging role for gut microbiome.

Introduction: Increasing evidence suggests a role for the gut microbiome in central nervous system disorders and a specific role for the gut-brain axis in neurodegeneration. Bile acids (BAs), products of cholesterol metabolism and clearance, are produced in the liver and are further metabolized by gut bacteria. They have major regulatory and signaling functions and seem dysregulated in Alzheimer's disease (AD). Methods: Serum levels of 15 primary and secondary BAs and their conjugated forms were measured in 1464 subjects including 370 cognitively normal older adults, 284 with early mild cognitive impairment, 505 with late mild cognitive impairment, and 305 AD cases enrolled in the AD Neuroimaging Initiative. We assessed associations of BA profiles including selected ratios with diagnosis, cognition, and AD-related genetic variants, adjusting for confounders and multiple testing. Results:

matched on Gastrointestinal Microbiome (mesh), Dysbiosis (mesh), gut-brain axis (text)