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1.
Cell ; 179(5): 1129-1143.e23, 2019 11 14.
Artigo em Inglês | MEDLINE | ID: mdl-31730854

RESUMO

Energy homeostasis requires precise measurement of the quantity and quality of ingested food. The vagus nerve innervates the gut and can detect diverse interoceptive cues, but the identity of the key sensory neurons and corresponding signals that regulate food intake remains unknown. Here, we use an approach for target-specific, single-cell RNA sequencing to generate a map of the vagal cell types that innervate the gastrointestinal tract. We show that unique molecular markers identify vagal neurons with distinct innervation patterns, sensory endings, and function. Surprisingly, we find that food intake is most sensitive to stimulation of mechanoreceptors in the intestine, whereas nutrient-activated mucosal afferents have no effect. Peripheral manipulations combined with central recordings reveal that intestinal mechanoreceptors, but not other cell types, potently and durably inhibit hunger-promoting AgRP neurons in the hypothalamus. These findings identify a key role for intestinal mechanoreceptors in the regulation of feeding.


Assuntos
Comportamento Alimentar/fisiologia , Fenômenos Genéticos , Células Receptoras Sensoriais/fisiologia , Nervo Vago/fisiologia , Proteína Relacionada com Agouti/metabolismo , Animais , Encéfalo/fisiologia , Trato Gastrointestinal/inervação , Marcadores Genéticos , Mecanorreceptores/metabolismo , Camundongos , Nervo Vago/anatomia & histologia , Vísceras/inervação
2.
Cell ; 168(5): 758-774, 2017 02 23.
Artigo em Inglês | MEDLINE | ID: mdl-28235194

RESUMO

Because human energy metabolism evolved to favor adiposity over leanness, the availability of palatable, easily attainable, and calorically dense foods has led to unprecedented levels of obesity and its associated metabolic co-morbidities that appear resistant to traditional lifestyle interventions. However, recent progress identifying the molecular signaling pathways through which the brain and the gastrointestinal system communicate to govern energy homeostasis, combined with emerging insights on the molecular mechanisms underlying successful bariatric surgery, gives reason to be optimistic that novel precision medicines that mimic, enhance, and/or modulate gut-brain signaling can have unprecedented potential for stopping the obesity and type 2 diabetes pandemics.


Assuntos
Encéfalo/fisiologia , Metabolismo Energético , Trato Gastrointestinal/fisiologia , Animais , Regulação do Apetite , Encéfalo/anatomia & histologia , Trato Gastrointestinal/anatomia & histologia , Trato Gastrointestinal/inervação , Homeostase , Humanos , Vias Neurais , Prazer , Saciação
3.
Cell ; 158(2): 300-313, 2014 Jul 17.
Artigo em Inglês | MEDLINE | ID: mdl-25036630

RESUMO

Intestinal peristalsis is a dynamic physiologic process influenced by dietary and microbial changes. It is tightly regulated by complex cellular interactions; however, our understanding of these controls is incomplete. A distinct population of macrophages is distributed in the intestinal muscularis externa. We demonstrate that, in the steady state, muscularis macrophages regulate peristaltic activity of the colon. They change the pattern of smooth muscle contractions by secreting bone morphogenetic protein 2 (BMP2), which activates BMP receptor (BMPR) expressed by enteric neurons. Enteric neurons, in turn, secrete colony stimulatory factor 1 (CSF1), a growth factor required for macrophage development. Finally, stimuli from microbial commensals regulate BMP2 expression by macrophages and CSF1 expression by enteric neurons. Our findings identify a plastic, microbiota-driven crosstalk between muscularis macrophages and enteric neurons that controls gastrointestinal motility. PAPERFLICK:


Assuntos
Motilidade Gastrointestinal , Trato Gastrointestinal/citologia , Trato Gastrointestinal/microbiologia , Macrófagos/metabolismo , Animais , Proteína Morfogenética Óssea 2/metabolismo , Receptores de Proteínas Morfogenéticas Ósseas Tipo II/metabolismo , Trato Gastrointestinal/inervação , Trato Gastrointestinal/fisiologia , Técnicas In Vitro , Fator Estimulador de Colônias de Macrófagos , Camundongos , Neurônios/metabolismo , Peristaltismo , Receptor de Fator Estimulador de Colônias de Macrófagos/metabolismo , Transdução de Sinais
4.
Cell ; 158(2): 263-276, 2014 Jul 17.
Artigo em Inglês | MEDLINE | ID: mdl-24998929

RESUMO

Autism spectrum disorder (ASD) is a heterogeneous disease in which efforts to define subtypes behaviorally have met with limited success. Hypothesizing that genetically based subtype identification may prove more productive, we resequenced the ASD-associated gene CHD8 in 3,730 children with developmental delay or ASD. We identified a total of 15 independent mutations; no truncating events were identified in 8,792 controls, including 2,289 unaffected siblings. In addition to a high likelihood of an ASD diagnosis among patients bearing CHD8 mutations, characteristics enriched in this group included macrocephaly, distinct faces, and gastrointestinal complaints. chd8 disruption in zebrafish recapitulates features of the human phenotype, including increased head size as a result of expansion of the forebrain/midbrain and impairment of gastrointestinal motility due to a reduction in postmitotic enteric neurons. Our findings indicate that CHD8 disruptions define a distinct ASD subtype and reveal unexpected comorbidities between brain development and enteric innervation.


Assuntos
Transtornos Globais do Desenvolvimento Infantil/genética , Transtornos Globais do Desenvolvimento Infantil/fisiopatologia , Proteínas de Ligação a DNA/genética , Fatores de Transcrição/genética , Adolescente , Sequência de Aminoácidos , Animais , Encéfalo/crescimento & desenvolvimento , Encéfalo/patologia , Criança , Transtornos Globais do Desenvolvimento Infantil/classificação , Transtornos Globais do Desenvolvimento Infantil/patologia , Pré-Escolar , Proteínas de Ligação a DNA/metabolismo , Feminino , Trato Gastrointestinal/inervação , Trato Gastrointestinal/fisiopatologia , Humanos , Macaca mulatta , Masculino , Megalencefalia/patologia , Dados de Sequência Molecular , Mutação , Alinhamento de Sequência , Fatores de Transcrição/metabolismo , Peixe-Zebra , Proteínas de Peixe-Zebra/genética , Proteínas de Peixe-Zebra/metabolismo
5.
Nature ; 606(7912): 94-101, 2022 06.
Artigo em Inglês | MEDLINE | ID: mdl-35650358

RESUMO

Neurotransmitters play essential roles in regulating neural circuit dynamics both in the central nervous system as well as at the peripheral, including the gastrointestinal tract1-3. Their real-time monitoring will offer critical information for understanding neural function and diagnosing disease1-3. However, bioelectronic tools to monitor the dynamics of neurotransmitters in vivo, especially in the enteric nervous systems, are underdeveloped. This is mainly owing to the limited availability of biosensing tools that are capable of examining soft, complex and actively moving organs. Here we introduce a tissue-mimicking, stretchable, neurochemical biological interface termed NeuroString, which is prepared by laser patterning of a metal-complexed polyimide into an interconnected graphene/nanoparticle network embedded in an elastomer. NeuroString sensors allow chronic in vivo real-time, multichannel and multiplexed monoamine sensing in the brain of behaving mouse, as well as measuring serotonin dynamics in the gut without undesired stimulations and perturbing peristaltic movements. The described elastic and conformable biosensing interface has broad potential for studying the impact of neurotransmitters on gut microbes, brain-gut communication and may ultimately be extended to biomolecular sensing in other soft organs across the body.


Assuntos
Encéfalo , Sistema Nervoso Entérico , Trato Gastrointestinal , Neurotransmissores , Animais , Técnicas Biossensoriais , Encéfalo/metabolismo , Eixo Encéfalo-Intestino , Elastômeros , Sistema Nervoso Entérico/metabolismo , Trato Gastrointestinal/inervação , Trato Gastrointestinal/fisiologia , Grafite , Lasers , Camundongos , Nanopartículas , Neurotransmissores/análise , Serotonina/análise
6.
Development ; 150(8)2023 04 15.
Artigo em Inglês | MEDLINE | ID: mdl-37039233

RESUMO

The gastrointestinal tract is innervated by an intrinsic neuronal network, known as the enteric nervous system (ENS), and by extrinsic axons arising from peripheral ganglia. The nerve of Remak (NoR) is an avian-specific sacral neural crest-derived ganglionated structure that extends from the cloaca to the proximal midgut and, similar to the pelvic plexus, provides extrinsic innervation to the distal intestine. The molecular mechanisms controlling extrinsic nerve fiber growth into the gut is unknown. In vertebrates, CXCR4, a cell-surface receptor for the CXCL12 chemokine, regulates migration of neural crest cells and axon pathfinding. We have employed chimeric tissue recombinations and organ culture assays to study the role of CXCR4 and CXCL12 molecules in the development of colorectal innervation. CXCR4 is specifically expressed in nerve fibers arising from the NoR and pelvic plexus, while CXCL12 is localized to the hindgut mesenchyme and enteric ganglia. Overexpression of CXCL12 results in significantly enhanced axonal projections to the gut from the NoR, while CXCR4 inhibition disrupts nerve fiber extension, supporting a previously unreported role for CXCR4 and CXCL12 signaling in extrinsic innervation of the colorectum.


Assuntos
Sistema Nervoso Entérico , Trato Gastrointestinal , Animais , Trato Gastrointestinal/inervação , Colo , Neurônios/fisiologia , Transdução de Sinais , Crista Neural
7.
Nature ; 568(7750): 98-102, 2019 04.
Artigo em Inglês | MEDLINE | ID: mdl-30918408

RESUMO

Satiation is the process by which eating and drinking reduce appetite. For thirst, oropharyngeal cues have a critical role in driving satiation by reporting to the brain the volume of fluid that has been ingested1-12. By contrast, the mechanisms that relay the osmolarity of ingested fluids remain poorly understood. Here we show that the water and salt content of the gastrointestinal tract are precisely measured and then rapidly communicated to the brain to control drinking behaviour in mice. We demonstrate that this osmosensory signal is necessary and sufficient for satiation during normal drinking, involves the vagus nerve and is transmitted to key forebrain neurons that control thirst and vasopressin secretion. Using microendoscopic imaging, we show that individual neurons compute homeostatic need by integrating this gastrointestinal osmosensory information with oropharyngeal and blood-borne signals. These findings reveal how the fluid homeostasis system monitors the osmolarity of ingested fluids to dynamically control drinking behaviour.


Assuntos
Encéfalo/fisiologia , Ingestão de Líquidos/fisiologia , Trato Gastrointestinal/fisiologia , Neurônios/fisiologia , Saciação/fisiologia , Sede/fisiologia , Animais , Encéfalo/citologia , Feminino , Neurônios GABAérgicos/metabolismo , Trato Gastrointestinal/inervação , Glutamatos/metabolismo , Masculino , Camundongos , Orofaringe/inervação , Orofaringe/fisiologia , Concentração Osmolar , Prosencéfalo/metabolismo , Nervo Vago/fisiologia , Vasopressinas/metabolismo
8.
Development ; 148(3)2021 02 08.
Artigo em Inglês | MEDLINE | ID: mdl-33558316

RESUMO

During embryonic development, the gut is innervated by intrinsic (enteric) and extrinsic nerves. Focusing on mammalian ENS development, in this Review we highlight how important the different compartments of this innervation are to assure proper gut function. We specifically address the three-dimensional architecture of the innervation, paying special attention to the differences in development along the longitudinal and circumferential axes of the gut. We review recent information about the formation of both intrinsic innervation, which is fairly well-known, as well as the establishment of the extrinsic innervation, which, despite its importance in gut-brain signaling, has received much less attention. We further discuss how external microbial and nutritional cues or neuroimmune interactions may influence development of gut innervation. Finally, we provide summary tables, describing the location and function of several well-known molecules, along with some newer factors that have more recently been implicated in the development of gut innervation.


Assuntos
Desenvolvimento Embrionário/fisiologia , Sistema Nervoso Entérico/embriologia , Sistema Nervoso Entérico/crescimento & desenvolvimento , Trato Gastrointestinal/inervação , Animais , Encéfalo/fisiologia , Humanos , Neurônios/fisiologia , Organogênese/fisiologia , Transdução de Sinais
9.
Development ; 148(21)2021 11 01.
Artigo em Inglês | MEDLINE | ID: mdl-34758081

RESUMO

The developmental programs that build and sustain animal forms also encode the capacity to sense and adapt to the microbial world within which they evolved. This is abundantly apparent in the development of the digestive tract, which typically harbors the densest microbial communities of the body. Here, we review studies in human, mouse, zebrafish and Drosophila that are revealing how the microbiota impacts the development of the gut and its communication with the nervous system, highlighting important implications for human and animal health.


Assuntos
Eixo Encéfalo-Intestino/fisiologia , Microbioma Gastrointestinal/fisiologia , Trato Gastrointestinal/crescimento & desenvolvimento , Animais , Linhagem da Célula , Sistema Nervoso Entérico/citologia , Sistema Nervoso Entérico/crescimento & desenvolvimento , Sistema Nervoso Entérico/fisiologia , Motilidade Gastrointestinal , Trato Gastrointestinal/inervação , Trato Gastrointestinal/microbiologia , Humanos , Mucosa Intestinal/citologia , Mucosa Intestinal/crescimento & desenvolvimento , Neurônios/citologia , Neurônios/fisiologia
10.
Nat Rev Neurosci ; 19(9): 552-565, 2018 09.
Artigo em Inglês | MEDLINE | ID: mdl-30046054

RESUMO

The gastrointestinal tract contains its own set of intrinsic neuroglial circuits - the enteric nervous system (ENS) - which detects and responds to diverse signals from the environment. Here, we address recent advances in the understanding of ENS development, including how neural-crest-derived progenitors migrate into and colonize the bowel, the formation of ganglionated plexuses and the molecular mechanisms of enteric neuronal and glial diversification. Modern lineage tracing and transcription-profiling technologies have produced observations that simultaneously challenge and affirm long-held beliefs about ENS development. We review many genetic and environmental factors that can alter ENS development and exert long-lasting effects on gastrointestinal function, and discuss how developmental defects in the ENS might account for some of the large burden of digestive disease.


Assuntos
Sistema Nervoso Entérico/embriologia , Trato Gastrointestinal/embriologia , Neurônios/fisiologia , Animais , Diferenciação Celular , Trato Gastrointestinal/inervação , Humanos , Crista Neural/embriologia , Neurogênese
11.
Nature ; 549(7671): 282-286, 2017 09 14.
Artigo em Inglês | MEDLINE | ID: mdl-28869965

RESUMO

The type 2 cytokines interleukin (IL)-4, IL-5, IL-9 and IL-13 have important roles in stimulating innate and adaptive immune responses that are required for resistance to helminth infection, promotion of allergic inflammation, metabolic homeostasis and tissue repair. Group 2 innate lymphoid cells (ILC2s) produce type 2 cytokines, and although advances have been made in understanding the cytokine milieu that promotes ILC2 responses, how ILC2 responses are regulated by other stimuli remains poorly understood. Here we demonstrate that ILC2s in the mouse gastrointestinal tract co-localize with cholinergic neurons that express the neuropeptide neuromedin U (NMU). In contrast to other haematopoietic cells, ILC2s selectively express the NMU receptor 1 (NMUR1). In vitro stimulation of ILC2s with NMU induced rapid cell activation, proliferation, and secretion of the type 2 cytokines IL-5, IL-9 and IL-13 that was dependent on cell-intrinsic expression of NMUR1 and Gαq protein. In vivo administration of NMU triggered potent type 2 cytokine responses characterized by ILC2 activation, proliferation and eosinophil recruitment that was associated with accelerated expulsion of the gastrointestinal nematode Nippostrongylus brasiliensis or induction of lung inflammation. Conversely, worm burden was higher in Nmur1-/- mice than in control mice. Furthermore, use of gene-deficient mice and adoptive cell transfer experiments revealed that ILC2s were necessary and sufficient to mount NMU-elicited type 2 cytokine responses. Together, these data indicate that the NMU-NMUR1 neuronal signalling circuit provides a selective mechanism through which the enteric nervous system and innate immune system integrate to promote rapid type 2 cytokine responses that can induce anti-microbial, inflammatory and tissue-protective type 2 responses at mucosal sites.


Assuntos
Citocinas/imunologia , Imunidade Inata , Inflamação/imunologia , Linfócitos/imunologia , Neuropeptídeos/metabolismo , Transferência Adotiva , Animais , Neurônios Colinérgicos/efeitos dos fármacos , Neurônios Colinérgicos/metabolismo , Citocinas/metabolismo , Eosinófilos/citologia , Eosinófilos/efeitos dos fármacos , Eosinófilos/imunologia , Feminino , Subunidades alfa Gq-G11 de Proteínas de Ligação ao GTP/metabolismo , Trato Gastrointestinal/citologia , Trato Gastrointestinal/imunologia , Trato Gastrointestinal/inervação , Imunidade Inata/efeitos dos fármacos , Inflamação/induzido quimicamente , Inflamação/patologia , Interleucina-13/imunologia , Interleucina-13/metabolismo , Interleucina-5/imunologia , Interleucina-5/metabolismo , Interleucina-9/imunologia , Interleucina-9/metabolismo , Linfócitos/citologia , Linfócitos/efeitos dos fármacos , Masculino , Camundongos , Neuropeptídeos/farmacologia , Nippostrongylus/imunologia , Pneumonia/induzido quimicamente , Pneumonia/imunologia , Pneumonia/patologia , Receptores de Neurotransmissores/deficiência , Receptores de Neurotransmissores/genética , Receptores de Neurotransmissores/metabolismo , Transdução de Sinais/efeitos dos fármacos
12.
Eur J Immunol ; 51(9): 2120-2136, 2021 09.
Artigo em Inglês | MEDLINE | ID: mdl-34242413

RESUMO

Fundamental asymmetries between the host and its microbiome in enzymatic activities and nutrient storage capabilities have promoted mutualistic adaptations on both sides. As a result, the enteric immune system has evolved so as not to cause a zero-sum sterilization of non-self, but rather achieve a non-zero-sum self-reinforcing cooperation with its evolutionary partner the microbiome. In this review, we attempt to integrate the accumulated knowledge of immune-microbiome interactions into an evolutionary framework and trace the pattern of positive immune-microbiome feedback loops across epithelial, enteric nervous system, innate, and adaptive immune circuits. Indeed, the immune system requires commensal signals for its development and function, and reciprocally protects the microbiome from nutrient shortage and pathogen outgrowth. In turn, a healthy microbiome is the result of immune system curatorship as well as microbial ecology. The paradigms of host-microbiome asymmetry and the cooperative nature of their interactions identified in the gut are applicable across all tissues influenced by microbial activities. Incorporation of immune system influences into models of microbiome ecology will be a step forward toward defining what constitutes a healthy human microbiome and guide discoveries of novel host-microbiome mutualistic adaptations that may be harnessed for the promotion of human health.


Assuntos
Sistema Nervoso Entérico/fisiologia , Microbioma Gastrointestinal/imunologia , Trato Gastrointestinal/imunologia , Trato Gastrointestinal/microbiologia , Imunidade Adaptativa/imunologia , Trato Gastrointestinal/inervação , Trato Gastrointestinal/fisiologia , Humanos , Imunidade Inata/imunologia , Simbiose/imunologia
13.
PLoS Comput Biol ; 17(12): e1009644, 2021 12.
Artigo em Inglês | MEDLINE | ID: mdl-34871315

RESUMO

Peristalsis, the coordinated contraction-relaxation of the muscles of the stomach is important for normal gastric motility and is impaired in motility disorders. Coordinated electrical depolarizations that originate and propagate within a network of interconnected layers of interstitial cells of Cajal (ICC) and smooth muscle (SM) cells of the stomach wall as a slow-wave, underly peristalsis. Normally, the gastric slow-wave oscillates with a single period and uniform rostrocaudal lag, exhibiting network entrainment. Understanding of the integrative role of neurotransmission and intercellular coupling in the propagation of an entrained gastric slow-wave, important for understanding motility disorders, however, remains incomplete. Using a computational framework constituted of a novel gastric motility network (GMN) model we address the hypothesis that engaging biological oscillators (i.e., ICCs) by constitutive gap junction coupling mechanisms and enteric neural innervation activated signals can confer a robust entrained gastric slow-wave. We demonstrate that while a decreasing enteric neural innervation gradient that modulates the intracellular IP3 concentration in the ICCs can guide the aboral slow-wave propagation essential for peristalsis, engaging ICCs by recruiting the exchange of second messengers (inositol trisphosphate (IP3) and Ca2+) ensures a robust entrained longitudinal slow-wave, even in the presence of biological variability in electrical coupling strengths. Our GMN with the distinct intercellular coupling in conjunction with the intracellular feedback pathways and a rostrocaudal enteric neural innervation gradient allows gastric slow waves to oscillate with a moderate range of frequencies and to propagate with a broad range of velocities, thus preventing decoupling observed in motility disorders. Overall, the findings provide a mechanistic explanation for the emergence of decoupled slow waves associated with motility impairments of the stomach, offer directions for future experiments and theoretical work, and can potentially aid in the design of new interventional pharmacological and neuromodulation device treatments for addressing gastric motility disorders.


Assuntos
Relógios Biológicos/fisiologia , Trato Gastrointestinal , Músculo Liso , Peristaltismo/fisiologia , Sistemas do Segundo Mensageiro/fisiologia , Animais , Cálcio/metabolismo , Biologia Computacional , Sinapses Elétricas/fisiologia , Trato Gastrointestinal/inervação , Trato Gastrointestinal/fisiologia , Humanos , Inositol 1,4,5-Trifosfato/metabolismo , Células Intersticiais de Cajal/fisiologia , Potenciais da Membrana/fisiologia , Modelos Biológicos , Contração Muscular/fisiologia , Músculo Liso/inervação , Músculo Liso/fisiologia
14.
Adv Exp Med Biol ; 1383: 71-79, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-36587147

RESUMO

The gastrointestinal tract operates in a highly dynamic environment. The gut is typically exposed to continually changing and highly convoluted luminal compositions comprising not only ingested content but also a multitude of resident microbes and microbial factors. It is therefore critical that the gut is capable of distinguishing between nutritious components from noxious substances. This is facilitated by specialized cellular sensory machinery that are in place in the intestinal epithelium and the ENS. However, the specific chemosensory processes and enteric neuronal pathways that enable the gut to discern and respond appropriately to different chemicals remain unclear. A major hurdle in studying the neural processing of luminal information has been the complex spatial organization of the mucosal structures and their innervation along the radial axis. Much of our current knowledge of enteric neuronal responses to luminal stimuli stems from studies that used semi-dissected guinea pig small intestine preparations with the mucosa and submucosa removed in one-half in order to record electrical activity from exposed myenteric neurons or in the circular muscle. Building on this, we ultimately strive to work towards integrated systems with all the gut layers intact. With advanced microscopy techniques including multiphoton intravital imaging, together with transgenic technologies utilizing cell-type specific activity-dependent reporters, we stand in good stead for studying the ENS in more intact preparations and even in live animals. In this chapter, we highlight recent contributions to the knowledge of sensory gut innervation by the developing and mature ENS. We also revisit established work examining the functional connectivity between the myenteric and submucosal plexus, and discuss the methodologies that can help advance our understanding of the enteric circuitry and signaling along the mucosa-serosa axis.


Assuntos
Sistema Nervoso Entérico , Animais , Cobaias , Sistema Nervoso Entérico/metabolismo , Trato Gastrointestinal/inervação , Intestino Delgado , Neurônios/metabolismo , Transdução de Sinais
15.
J Neurosci ; 40(35): 6691-6708, 2020 08 26.
Artigo em Inglês | MEDLINE | ID: mdl-32690615

RESUMO

Precise extrinsic afferent (visceral sensory) and efferent (sympathetic and parasympathetic) innervation of the gut is fundamental for gut-brain cross talk. Owing to the limitation of intrinsic markers to distinctively visualize the three classes of extrinsic axons, which intimately associate within the gut mesentery, detailed information on the development of extrinsic gut-innervating axons remains relatively sparse. Here, we mapped extrinsic innervation of the gut and explored the relationships among various types of extrinsic axons during embryonic development in mice. Visualization with characterized intrinsic markers revealed that visceral sensory, sympathetic, and parasympathetic axons arise from different anatomic locations, project in close association via the gut mesentery, and form distinctive innervation patterns within the gut from embryonic day (E)10.5 to E16.5. Genetic ablation of visceral sensory trajectories results in the erratic extension of both sympathetic and parasympathetic axons, implicating that afferent axons provide an axonal scaffold to route efferent axons. Coculture assay further confirmed the attractive effect of sensory axons on sympathetic axons. Taken together, our study provides key information regarding the development of extrinsic gut-innervating axons occurring through heterotypic axonal interactions and provides an anatomic basis to uncover neural circuit assembly in the gut-brain axis (GBA).SIGNIFICANCE STATEMENT Understanding the development of extrinsic innervation of the gut is essential to unravel the bidirectional neural communication between the brain and the gut. Here, with characterized intrinsic markers targeting vagal sensory, spinal sensory, sympathetic, and parasympathetic axons, respectively, we comprehensively traced the spatiotemporal development of extrinsic axons to the gut during embryonic development in mice. Moreover, in line with the somatic nervous system, pretarget sorting via heterotypic axonal interactions is revealed to play critical roles in patterning extrinsic efferent trajectories to the gut. These findings provide basic anatomic information to explore the mechanisms underlying the process of assembling neural circuitry in the gut-brain axis (GBA).


Assuntos
Sistema Nervoso Autônomo/embriologia , Trato Gastrointestinal/inervação , Animais , Sistema Nervoso Autônomo/fisiologia , Axônios/fisiologia , Encéfalo/embriologia , Encéfalo/fisiologia , Trato Gastrointestinal/embriologia , Mesentério/embriologia , Mesentério/inervação , Camundongos , Morfogênese , Técnicas de Rastreamento Neuroanatômico
16.
Am J Physiol Gastrointest Liver Physiol ; 321(5): G576-G587, 2021 11 01.
Artigo em Inglês | MEDLINE | ID: mdl-34643086

RESUMO

The gastrointestinal tract has its own "brain," the enteric nervous system or ENS, that executes routine housekeeping functions of digestion. The dorsal vagal complex in the central nervous system (CNS) brainstem, however, organizes vagovagal reflexes and establishes interconnections between the entire neuroaxis of the CNS and the gut. Thus, the dorsal vagal complex links the "CNS brain" to the "ENS brain." This brain-gut connectome provides reflex adjustments that optimize digestion and assimilation of nutrients and fluid. Vagovagal circuitry also generates the plasticity and adaptability needed to maintain homeostasis to coordinate among organs and to react to environmental situations. Arguably, this dynamic flexibility provided by the vagal circuitry may, in some circumstances, lead to or complicate maladaptive disorders.


Assuntos
Encéfalo/fisiologia , Sistema Nervoso Entérico/fisiologia , Trato Gastrointestinal/inervação , Reflexo , Nervo Vago/fisiologia , Animais , Humanos , Plasticidade Neuronal
17.
J Clin Rheumatol ; 27(1): 11-17, 2021 Jan 01.
Artigo em Inglês | MEDLINE | ID: mdl-31524844

RESUMO

BACKGROUND/OBJECTIVES: We hypothesized that emotional distress in systemic sclerosis (SSc) patients with moderate to severe gastrointestinal (GI) dysfunction is associated with dysautonomia. We sought to determine (1) the clinical characteristics associated with emotional distress in SSc, (2) the odds of having dysautonomia in those with emotional distress, and (3) whether GI dysautonomia, as measured by the Survey of Autonomic Symptoms (SAS), correlates with GI dysautonomia on the Composite Autonomic Symptom Score-31 (COMPASS-31). METHODS: Clinical and demographic features from our prospective cohort study were compared among SSc patients with and without GI-associated emotional distress (University of California at Los Angeles Scleroderma Clinical Trial Consortium Gastrointestinal Tract 2.0 well-being subscale >0.5 or ≤0.5) in cross-sectional analysis. Covariates/confounders independently associated with emotional distress were used to construct multivariable logistic regression models. The COMPASS-31 and SAS GI subdomains were compared with Spearman correlation. RESULTS: Forty-six patients with SSc were enrolled in the study. In univariate analyses, age (odds ratio [OR], 1.06; p = 0.026), severity of GI dysautonomia (COMPASS-31: OR, 1.41; p = 0.003), anti-centromere (A/B) antibodies (OR, 3.60; p = 0.044), and anti-PM-Scl (75/100) antibodies (OR, 0.15; p = 0.035) were associated with emotional distress. In the adjusted model, those with more severe GI dysautonomia remained more likely to have emotional distress (OR, 1.85; p = 0.026); those with anti-PM-Scl (75/100) antibodies were less likely to have emotional distress (OR, 0.03; p = 0.031). The SAS and COMPASS-31 GI subdomains moderately correlated (ρ = 0.68, p < 0.001). CONCLUSIONS: In SSc, increased symptom burden related to GI dysautonomia is associated with emotional distress. Multidisciplinary approaches addressing both the physical and emotional needs of the SSc patient may be warranted to optimize patient care.


Assuntos
Doenças do Sistema Nervoso Autônomo , Gastroenteropatias , Angústia Psicológica , Escleroderma Sistêmico , Autoanticorpos/sangue , Sistema Nervoso Autônomo/fisiopatologia , Doenças do Sistema Nervoso Autônomo/diagnóstico , Doenças do Sistema Nervoso Autônomo/etiologia , Doenças do Sistema Nervoso Autônomo/fisiopatologia , Exorribonucleases/imunologia , Complexo Multienzimático de Ribonucleases do Exossomo/imunologia , Feminino , Gastroenteropatias/diagnóstico , Gastroenteropatias/etiologia , Gastroenteropatias/psicologia , Trato Gastrointestinal/inervação , Humanos , Masculino , Pessoa de Meia-Idade , Projetos de Pesquisa , Escleroderma Sistêmico/sangue , Escleroderma Sistêmico/epidemiologia , Escleroderma Sistêmico/fisiopatologia , Escleroderma Sistêmico/psicologia , Índice de Gravidade de Doença , Avaliação de Sintomas/métodos , Estados Unidos/epidemiologia
18.
Infect Immun ; 88(9)2020 08 19.
Artigo em Inglês | MEDLINE | ID: mdl-32341116

RESUMO

The orchestration of host immune responses to enteric bacterial pathogens is a complex process involving the integration of numerous signals, including from the nervous system. Despite the recent progress in understanding the contribution of neuroimmune interactions in the regulation of inflammation, the mechanisms and effects of this communication during enteric bacterial infection are only beginning to be characterized. As part of this neuroimmune communication, neurons specialized to detect painful or otherwise noxious stimuli can respond to bacterial pathogens. Highlighting the complexity of these systems, the immunological consequences of sensory neuron activation can be either host adaptive or maladaptive, depending on the pathogen and organ system. These are but one of many types of neuroimmune circuits, with the vagus nerve and sympathetic innervation of numerous organs now known to modulate immune cell function and therefore dictate immunological outcomes during health and disease. Here, we review the evidence for neuroimmune communication in response to bacterial pathogens, and then discuss the consequences to host morbidity and mortality during infection of the gastrointestinal tract.


Assuntos
Sistema Nervoso Entérico/imunologia , Infecções por Enterobacteriaceae/imunologia , Microbioma Gastrointestinal/imunologia , Trato Gastrointestinal/imunologia , Neuroimunomodulação/genética , Células Receptoras Sensoriais/imunologia , Animais , Peptídeo Relacionado com Gene de Calcitonina/genética , Peptídeo Relacionado com Gene de Calcitonina/imunologia , Citrobacter/crescimento & desenvolvimento , Citrobacter/imunologia , Sistema Nervoso Entérico/microbiologia , Infecções por Enterobacteriaceae/genética , Infecções por Enterobacteriaceae/microbiologia , Infecções por Enterobacteriaceae/patologia , Trato Gastrointestinal/inervação , Trato Gastrointestinal/microbiologia , Regulação da Expressão Gênica/imunologia , Interações Hospedeiro-Patógeno/genética , Interações Hospedeiro-Patógeno/imunologia , Humanos , Moléculas com Motivos Associados a Patógenos/imunologia , Moléculas com Motivos Associados a Patógenos/metabolismo , Células Receptoras Sensoriais/microbiologia , Canal de Cátion TRPA1/genética , Canal de Cátion TRPA1/imunologia , Canais de Cátion TRPV/genética , Canais de Cátion TRPV/imunologia , Receptores Toll-Like/genética , Receptores Toll-Like/imunologia
19.
Am J Physiol Gastrointest Liver Physiol ; 319(3): G391-G399, 2020 09 01.
Artigo em Inglês | MEDLINE | ID: mdl-32755304

RESUMO

Neurogastroenterology refers to the study of the extrinsic and intrinsic nervous system circuits controlling the gastrointestinal (GI) tract. Over the past 5-10 yr there has been an explosion in novel methodologies, technologies and approaches that offer great promise to advance our understanding of the basic mechanisms underlying GI function in health and disease. This review focuses on the use of optogenetics combined with electrophysiology in the field of neurogastroenterology. We discuss how these technologies and tools are currently being used to explore the brain-gut axis and debate the future research potential and limitations of these techniques. Taken together, we consider that the use of these technologies will enable researchers to answer important questions in neurogastroenterology through fundamental research. The answers to those questions will shorten the path from basic discovery to new treatments for patient populations with disorders of the brain-gut axis affecting the GI tract such as irritable bowel syndrome (IBS), functional dyspepsia, achalasia, and delayed gastric emptying.


Assuntos
Gastroenterologia/métodos , Trato Gastrointestinal/inervação , Trato Gastrointestinal/fisiologia , Neurologia/métodos , Optogenética/métodos , Animais , Sistema Nervoso Entérico , Gastroenterologia/tendências , Humanos , Síndrome do Intestino Irritável/fisiopatologia , Vias Neurais/fisiologia , Neurologia/tendências
20.
Am J Physiol Gastrointest Liver Physiol ; 318(6): G1034-G1041, 2020 06 01.
Artigo em Inglês | MEDLINE | ID: mdl-32308040

RESUMO

Visceral hypersensitivity of the lower gastrointestinal tract, defined as an increased response to colorectal distension, frequently prompts episodes of debilitating abdominal pain in irritable bowel syndrome (IBS). Although the pathophysiology of IBS is not yet fully elucidated, it is well known that stress is a major risk factor for development and acts as a trigger of pain sensation. Stress modulates both immune responses as well as the gut microbiota and vice versa. Additionally, either microbes themselves or through involvement of the immune system, activate or sensitize afferent nociceptors. In this paper, we review current knowledge on the influence of stress along the gut-brain-microbiota axis and exemplify relevant neuroimmune cross talk mechanisms in visceral hypersensitivity, working toward understanding how gut microbiota-neuroimmune cross talk contributes to visceral pain sensation in IBS patients.


Assuntos
Microbioma Gastrointestinal , Trato Gastrointestinal/inervação , Trato Gastrointestinal/microbiologia , Estresse Psicológico , Humanos , Síndrome do Intestino Irritável/microbiologia , Síndrome do Intestino Irritável/patologia , Dor
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