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1.
bioRxiv ; 2024 Jan 11.
Article in English | MEDLINE | ID: mdl-38260314

ABSTRACT

Background: Mechanosensation is an important trigger of physiological processes in the gastrointestinal tract. Aberrant responses to mechanical input are associated with digestive disorders, including visceral hypersensitivity. Transient Receptor Potential Vanilloid 4 (TRPV4) is a mechanosensory ion channel with proposed roles in visceral afferent signaling, intestinal inflammation, and gut motility. While TRPV4 is a potential therapeutic target for digestive disease, current mechanistic understanding of how TRPV4 may influence gut function is limited by inconsistent reports of TRPV4 expression and distribution. Methods: In this study we profiled functional expression of TRPV4 using Ca2+ imaging of wholemount preparations of the mouse, monkey, and human intestine in combination with immunofluorescent labeling for established cellular markers. The involvement of TRPV4 in colonic motility was assessed in vitro using videomapping and contraction assays. Results: The TRPV4 agonist GSK1016790A evoked Ca2+ signaling in muscularis macrophages, enteric glia, and endothelial cells. TRPV4 specificity was confirmed using TRPV4 KO mouse tissue or antagonist pre-treatment. Calcium responses were not detected in other cell types required for neuromuscular signaling including enteric neurons, interstitial cells of Cajal, PDGFRα+ cells, and intestinal smooth muscle. TRPV4 activation led to rapid Ca2+ responses by a subpopulation of glial cells, followed by sustained Ca2+ signaling throughout the enteric glial network. Propagation of these waves was suppressed by inhibition of gap junctions or Ca2+ release from intracellular stores. Coordinated glial signaling in response to GSK1016790A was also disrupted in acute TNBS colitis. The involvement of TRPV4 in the initiation and propagation of colonic motility patterns was examined in vitro. Conclusions: We reveal a previously unappreciated role for TRPV4 in the initiation of distension-evoked colonic motility. These observations provide new insights into the functional role of TRPV4 activation in the gut, with important implications for how TRPV4 may influence critical processes including inflammatory signaling and motility.

2.
Am J Physiol Gastrointest Liver Physiol ; 322(1): G66-G78, 2022 01 01.
Article in English | MEDLINE | ID: mdl-34755545

ABSTRACT

Allosteric modulators (AMs) are molecules that can fine-tune signaling by G protein-coupled receptors (GPCRs). Although they are a promising therapeutic approach for treating a range of disorders, allosteric modulation of GPCRs in the context of the enteric nervous system (ENS) and digestive dysfunction remains largely unexplored. This study examined allosteric modulation of the delta opioid receptor (DOR) in the ENS and assessed the suitability of DOR AMs for the treatment of irritable bowel syndrome (IBS) symptoms using mouse models. The effects of the positive allosteric modulator (PAM) of DOR, BMS-986187, on neurogenic contractions of the mouse colon and on DOR internalization in enteric neurons were quantified. The ability of BMS-986187 to influence colonic motility was assessed both in vitro and in vivo. BMS-986187 displayed DOR-selective PAM-agonist activity and orthosteric agonist probe dependence in the mouse colon. BMS-986187 augmented the inhibitory effects of DOR agonists on neurogenic contractions and enhanced reflex-evoked DOR internalization in myenteric neurons. BMS-986187 significantly increased DOR endocytosis in myenteric neurons in response to the weakly internalizing agonist ARM390. BMS-986187 reduced the generation of complex motor patterns in the isolated intact colon. BMS-986187 reduced fecal output and diarrhea onset in the novel environment stress and castor oil models of IBS symptoms, respectively. DOR PAMs enhance DOR-mediated signaling in the ENS and have potential benefit for the treatment of dysmotility. This study provides proof of concept to support the use of GPCR AMs for the treatment of gastrointestinal motility disorders.NEW & NOTEWORTHY This study assesses the use of positive allosteric modulation as a pharmacological approach to enhance opioid receptor signaling in the enteric nervous system. We demonstrate that selective modulation of endogenous delta opioid receptor signaling can suppress colonic motility without causing constipation. We propose that allosteric modulation of opioid receptor signaling may be a therapeutic strategy to normalize gastrointestinal motility in conditions such as irritable bowel syndrome.


Subject(s)
Enteric Nervous System/drug effects , Gastrointestinal Motility/drug effects , Receptors, Opioid, delta/drug effects , Xanthones/pharmacology , Analgesics, Opioid/pharmacology , Benzamides/pharmacology , Colon/drug effects , Enteric Nervous System/physiopathology , Gastrointestinal Motility/physiology , Humans , Receptors, Opioid/drug effects , Receptors, Opioid, delta/agonists , Receptors, Opioid, mu/agonists , Receptors, Opioid, mu/drug effects , Signal Transduction/drug effects
3.
Proc Natl Acad Sci U S A ; 117(26): 15281-15292, 2020 06 30.
Article in English | MEDLINE | ID: mdl-32546520

ABSTRACT

Whether G protein-coupled receptors signal from endosomes to control important pathophysiological processes and are therapeutic targets is uncertain. We report that opioids from the inflamed colon activate δ-opioid receptors (DOPr) in endosomes of nociceptors. Biopsy samples of inflamed colonic mucosa from patients and mice with colitis released opioids that activated DOPr on nociceptors to cause a sustained decrease in excitability. DOPr agonists inhibited mechanically sensitive colonic nociceptors. DOPr endocytosis and endosomal signaling by protein kinase C (PKC) and extracellular signal-regulated kinase (ERK) pathways mediated the sustained inhibitory actions of endogenous opioids and DOPr agonists. DOPr agonists stimulated the recruitment of Gαi/o and ß-arrestin1/2 to endosomes. Analysis of compartmentalized signaling revealed a requirement of DOPr endocytosis for activation of PKC at the plasma membrane and in the cytosol and ERK in the nucleus. We explored a nanoparticle delivery strategy to evaluate whether endosomal DOPr might be a therapeutic target for pain. The DOPr agonist DADLE was coupled to a liposome shell for targeting DOPr-positive nociceptors and incorporated into a mesoporous silica core for release in the acidic and reducing endosomal environment. Nanoparticles activated DOPr at the plasma membrane, were preferentially endocytosed by DOPr-expressing cells, and were delivered to DOPr-positive early endosomes. Nanoparticles caused a long-lasting activation of DOPr in endosomes, which provided sustained inhibition of nociceptor excitability and relief from inflammatory pain. Conversely, nanoparticles containing a DOPr antagonist abolished the sustained inhibitory effects of DADLE. Thus, DOPr in endosomes is an endogenous mechanism and a therapeutic target for relief from chronic inflammatory pain.


Subject(s)
Enkephalin, Leucine-2-Alanine/pharmacology , Inflammation/complications , Pain/drug therapy , Pain/metabolism , Receptors, Opioid, delta/agonists , Animals , Colon/innervation , Enkephalin, Leucine-2-Alanine/administration & dosage , HEK293 Cells , Humans , Mice , Nanoparticles/administration & dosage , Neurons , Nociceptors/metabolism , Receptors, Opioid, delta/metabolism , Signal Transduction/drug effects , Signal Transduction/physiology
4.
Cell Mol Gastroenterol Hepatol ; 9(3): 465-483, 2020.
Article in English | MEDLINE | ID: mdl-31759144

ABSTRACT

BACKGROUND & AIMS: Functional interactions between the mu opioid receptor (MOR) and delta opioid receptor (DOR) represent a potential target for novel analgesics and may drive the effects of the clinically approved drug eluxadoline for the treatment of diarrhea-predominant irritable bowel syndrome. Although the enteric nervous system (ENS) is a likely site of action, the coexpression and potential interaction between MOR and DOR in the ENS are largely undefined. In the present study, we have characterized the distribution of MOR in the mouse ENS and examined MOR-DOR interactions by using pharmacologic and cell biology techniques. METHODS: MOR and DOR expression was defined by using MORmCherry and MORmCherry-DOR-eGFP knockin mice. MOR-DOR interactions were assessed by using DOR-eGFP internalization assays and by pharmacologic analysis of neurogenic contractions of the colon. RESULTS: Although MOR was expressed by approximately half of all myenteric neurons, MOR-positive submucosal neurons were rarely observed. There was extensive overlap between MOR and DOR in both excitatory and inhibitory pathways involved in the coordination of intestinal motility. MOR and DOR can functionally interact, as shown through heterologous desensitization of MOR-dependent responses by DOR agonists. Functional evidence suggests that MOR and DOR may not exist as heteromers in the ENS. Pharmacologic studies show no evidence of cooperativity between MOR and DOR. DOR internalizes independently of MOR in myenteric neurons, and MOR-evoked contractions are unaffected by the sequestration of DOR. CONCLUSIONS: Collectively, these findings demonstrate that although MOR and DOR are coexpressed in the ENS and functionally interact, they are unlikely to exist as heteromers under physiological conditions.


Subject(s)
Analgesics, Opioid/pharmacology , Colon/metabolism , Enteric Nervous System/metabolism , Receptors, Opioid, delta/metabolism , Receptors, Opioid, mu/metabolism , Animals , Benzamides/pharmacology , CHO Cells , Cricetulus , Enteric Nervous System/drug effects , Gastrointestinal Motility/drug effects , Gastrointestinal Motility/physiology , Gene Knock-In Techniques , Genes, Reporter/genetics , Green Fluorescent Proteins/genetics , Humans , Luminescent Proteins/genetics , Mice , Morphine/pharmacology , Piperazines/pharmacology , Piperidines/pharmacology , Protein Multimerization/physiology , Receptors, Opioid, delta/agonists , Receptors, Opioid, delta/genetics , Receptors, Opioid, mu/agonists , Receptors, Opioid, mu/genetics , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Red Fluorescent Protein
5.
Am J Physiol Gastrointest Liver Physiol ; 317(2): G79-G89, 2019 08 01.
Article in English | MEDLINE | ID: mdl-31091149

ABSTRACT

Endocytosis is a major mechanism through which cellular signaling by G protein-coupled receptors (GPCRs) is terminated. However, recent studies demonstrate that GPCRs are internalized in an active state and continue to signal from within endosomes, resulting in effects on cellular function that are distinct to those arising at the cell surface. Endocytosis inhibitors are commonly used to define the importance of GPCR internalization for physiological and pathophysiological processes. Here, we provide the first detailed examination of the effects of these inhibitors on neurogenic contractions of gastrointestinal smooth muscle, a key preliminary step to evaluate the importance of GPCR endocytosis for gut function. Inhibitors of clathrin-mediated endocytosis (Pitstop2, PS2) or G protein-coupled receptor kinase-2/3-dependent phosphorylation (Takeda compound 101, Cmpd101), significantly reduced GPCR internalization. However, they also attenuated cholinergic contractions through different mechanisms. PS2 abolished contractile responses by colonic muscle to SNC80 and morphine, which strongly and weakly internalize δ-opioid and µ-opioid receptors, respectively. PS2 did not affect the increased myogenic contractile activity following removal of an inhibitory neural influence (tetrodotoxin) but suppressed electrically evoked neurogenic contractions. Ca2+ signaling by myenteric neurons in response to exogenous ATP was unaffected by PS2, suggesting inhibitory actions on neurotransmitter release rather than neurotransmission. In contrast, Cmpd101 attenuated contractions to the cholinergic agonist carbachol, indicating direct effects on smooth muscle. We conclude that, although PS2 and Cmpd101 are effective blockers of GPCR endocytosis in enteric neurons, these inhibitors are unsuitable for the study of neurally mediated gut function due to their inhibitory effects on neuromuscular transmission and smooth muscle contractility.NEW & NOTEWORTHY Internalization of activated G protein-coupled receptors is a major determinant of the type and duration of subsequent downstream signaling events. Inhibitors of endocytosis effectively block opioid receptor internalization in enteric neurons. The clathrin-dependent endocytosis inhibitor Pitstop2 blocks effects of opioids on neurogenic contractions of the colon in an internalization-independent manner. These inhibitors also significantly impact cholinergic neuromuscular transmission. We conclude that these tools are unsuitable for examination of the contribution of neuronal G protein-coupled receptor endocytosis to gastrointestinal motility.


Subject(s)
Benzamides/pharmacology , Clathrin/metabolism , Colon , Endocytosis , Muscle, Smooth , Pyridines/pharmacology , Receptors, Opioid, delta/metabolism , Sulfonamides/pharmacology , Thiazolidines/pharmacology , Triazoles/pharmacology , Analgesics, Opioid/pharmacology , Animals , Colon/metabolism , Colon/pathology , Colon/physiopathology , Endocytosis/drug effects , Endocytosis/physiology , Endosomes/metabolism , Enteric Nervous System/metabolism , Gastrointestinal Motility/physiology , Mice , Muscle, Smooth/metabolism , Muscle, Smooth/pathology , Muscle, Smooth/physiopathology , Phosphorylation/drug effects , Receptors, G-Protein-Coupled/metabolism , Receptors, Opioid, mu/metabolism , Signal Transduction , Synaptic Transmission/drug effects , Synaptic Transmission/physiology
6.
Cell Mol Life Sci ; 76(15): 3033-3050, 2019 Aug.
Article in English | MEDLINE | ID: mdl-30904952

ABSTRACT

The use of opioid analgesics is severely limited due to the development of intractable constipation, mediated through activation of mu opioid receptors (MOR) expressed by enteric neurons. The related delta opioid receptor (DOR) is an emerging therapeutic target for chronic pain, depression and anxiety. Whether DOR agonists also promote sustained inhibition of colonic transit is unknown. This study examined acute and chronic tolerance to SNC80 and ARM390, which were full and partial DOR agonists in neural pathways controlling colonic motility, respectively. Excitatory pathways developed acute and chronic tolerance to SNC80, whereas only chronic tolerance developed in inhibitory pathways. Both pathways remained functional after acute or chronic ARM390 exposure. Propagating colonic motor patterns were significantly reduced after acute or chronic SNC80 treatment, but not by ARM390 pre-treatment. These findings demonstrate that SNC80 has a prolonged inhibitory effect on propagating colonic motility. ARM390 had no effect on motor patterns and thus may have fewer gastrointestinal side-effects.


Subject(s)
Analgesics, Opioid/pharmacology , Colon/drug effects , Drug Tolerance , Receptors, Opioid, delta/metabolism , Animals , Benzamides/pharmacology , Colon/physiology , Electric Stimulation , Mice , Mice, Inbred C57BL , Microscopy, Confocal , Muscle Contraction/drug effects , Neurons/metabolism , Piperazines/pharmacology , Receptors, Opioid, delta/agonists , Receptors, Opioid, mu/agonists , Receptors, Opioid, mu/metabolism
7.
Am J Physiol Gastrointest Liver Physiol ; 315(4): G544-G559, 2018 10 01.
Article in English | MEDLINE | ID: mdl-29927325

ABSTRACT

Endogenous opioids activate opioid receptors (ORs) in the enteric nervous system to control intestinal motility and secretion. The µ-OR mediates the deleterious side effects of opioid analgesics, including constipation, respiratory depression, and addiction. Although the δ-OR (DOR) is a promising target for analgesia, the function and regulation of DOR in the colon are poorly understood. This study provides evidence that endogenous opioids activate DOR in myenteric neurons that may regulate colonic motility. The DOR agonists DADLE, deltorphin II, and SNC80 inhibited electrically evoked contractions and induced neurogenic contractions in the mouse colon. Electrical, chemical, and mechanical stimulation of the colon evoked the release of endogenous opioids, which stimulated endocytosis of DOR in the soma and proximal neurites of myenteric neurons of transgenic mice expressing DOR fused to enhanced green fluorescent protein. In contrast, DOR was not internalized in nerve fibers within the circular muscle. Administration of dextran sulfate sodium induced acute colitis, which was accompanied by DOR endocytosis and an increased density of DOR-positive nerve fibers within the circular muscle. The potency with which SNC80 inhibited neurogenic contractions was significantly enhanced in the inflamed colon. This study demonstrates that DOR-expressing neurons in the mouse colon can be activated by exogenous and endogenous opioids. Activated DOR traffics to endosomes and inhibits neurogenic motility of the colon. DOR signaling is enhanced during intestinal inflammation. This study demonstrates functional expression of DOR by myenteric neurons and supports the therapeutic targeting of DOR in the enteric nervous system. NEW & NOTEWORTHY DOR is activated during physiologically relevant reflex stimulation. Agonist-evoked DOR endocytosis is spatially and temporally regulated. A significant proportion of DOR is internalized in myenteric neurons during inflammation. The relative proportion of all myenteric neurons that expressed DOR and the overlap with the nNOS-positive population are increased in inflammation. DOR-specific innervation of the circular muscle is increased in inflammation, and this is consistent with enhanced responsiveness to the DOR agonist SNC80.


Subject(s)
Colitis, Ulcerative/metabolism , Colon/metabolism , Enteric Nervous System/metabolism , Gastrointestinal Motility , Receptors, Opioid, delta/metabolism , Animals , Benzamides/pharmacology , Colon/physiology , Colon/physiopathology , Endocytosis , Enkephalin, Leucine-2-Alanine/metabolism , Enteric Nervous System/physiology , Enteric Nervous System/physiopathology , Female , Male , Mice , Mice, Inbred C57BL , Muscle Contraction , Oligopeptides/metabolism , Piperazines/pharmacology , Receptors, Opioid, delta/agonists , Receptors, Opioid, delta/genetics
8.
J Mol Endocrinol ; 60(3): 213-224, 2018 04.
Article in English | MEDLINE | ID: mdl-29535183

ABSTRACT

Insulin-like peptide 5 (INSL5) is a newly discovered gut hormone expressed in colonic enteroendocrine L-cells but little is known about its biological function. Here, we show using RT-qPCR and in situ hybridisation that Insl5 mRNA is highly expressed in the mouse colonic mucosa, colocalised with proglucagon immunoreactivity. In comparison, mRNA for RXFP4 (the cognate receptor for INSL5) is expressed in various mouse tissues, including the intestinal tract. We show that the human enteroendocrine L-cell model NCI-H716 cell line, and goblet-like colorectal cell lines SW1463 and LS513 endogenously express RXFP4. Stimulation of NCI-H716 cells with INSL5 produced phosphorylation of ERK1/2 (Thr202/Tyr204), AKT (Thr308 and Ser473) and S6RP (Ser235/236) and inhibited cAMP production but did not stimulate Ca2+ release. Acute INSL5 treatment had no effect on GLP-1 secretion mediated by carbachol or insulin, but modestly inhibited forskolin-stimulated GLP-1 secretion in NCI-H716 cells. However, chronic INSL5 pre-treatment (18 h) increased basal GLP-1 secretion and prevented the inhibitory effect of acute INSL5 administration. LS513 cells were found to be unresponsive to INSL5 despite expressing RXFP4 Another enteroendocrine L-cell model, mouse GLUTag cells did not express detectable levels of Rxfp4 and were unresponsive to INSL5. This study provides novel insights into possible autocrine/paracrine roles of INSL5 in the intestinal tract.


Subject(s)
Glucagon-Like Peptide 1/metabolism , Insulin/metabolism , Proteins/metabolism , Signal Transduction , Animals , Cell Line , Colon/metabolism , Cyclic AMP/biosynthesis , Gene Expression Profiling , Goblet Cells/metabolism , Humans , Insulin/genetics , Mice, Inbred C57BL , Phosphorylation , Proteins/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , Receptors, G-Protein-Coupled/genetics , Receptors, G-Protein-Coupled/metabolism , Receptors, Peptide/genetics , Receptors, Peptide/metabolism
9.
Am J Physiol Gastrointest Liver Physiol ; 311(2): G252-66, 2016 08 01.
Article in English | MEDLINE | ID: mdl-27365337

ABSTRACT

The µ-opioid receptor (MOR) is a major regulator of gastrointestinal motility and secretion and mediates opiate-induced bowel dysfunction. Although MOR is of physiological and therapeutic importance to gut function, the cellular and subcellular distribution and regulation of MOR within the enteric nervous system are largely undefined. Herein, we defined the neurochemical coding of MOR-expressing neurons in the guinea pig gut and examined the effects of opioids on MOR trafficking and regulation. MOR expression was restricted to subsets of enteric neurons. In the stomach MOR was mainly localized to nitrergic neurons (∼88%), with some overlap with neuropeptide Y (NPY) and no expression by cholinergic neurons. These neurons are likely to have inhibitory motor and secretomotor functions. MOR was restricted to noncholinergic secretomotor neurons (VIP-positive) of the ileum and distal colon submucosal plexus. MOR was mainly detected in nitrergic neurons of the colon (nitric oxide synthase positive, 87%), with some overlap with choline acetyltransferase (ChAT). No expression of MOR by intrinsic sensory neurons was detected. [d-Ala(2), MePhe(4), Gly(ol)(5)]enkephalin (DAMGO), morphiceptin, and loperamide induced MOR endocytosis in myenteric neurons. After stimulation with DAMGO and morphiceptin, MOR recycled, whereas MOR was retained within endosomes following loperamide treatment. Herkinorin or the δ-opioid receptor agonist [d-Ala(2), d-Leu(5)]enkephalin (DADLE) did not evoke MOR endocytosis. In summary, we have identified the neurochemical coding of MOR-positive enteric neurons and have demonstrated differential trafficking of MOR in these neurons in response to established and putative MOR agonists.


Subject(s)
Colon/innervation , Enteric Nervous System/metabolism , Ileum/innervation , Receptors, Opioid, mu/metabolism , Stomach/innervation , Analgesics, Opioid/pharmacology , Animals , Cholinergic Neurons/metabolism , Endocytosis , Endorphins/pharmacology , Enkephalin, Ala(2)-MePhe(4)-Gly(5)-/pharmacology , Enteric Nervous System/drug effects , Guinea Pigs , Loperamide/pharmacology , Male , Motor Neurons/metabolism , Nitrergic Neurons/metabolism , Protein Transport , Receptors, Opioid, mu/agonists
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