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1.
Cell ; 177(5): 1293-1307.e16, 2019 05 16.
Article in English | MEDLINE | ID: mdl-31031008

ABSTRACT

The perioculomotor (pIII) region of the midbrain was postulated as a sleep-regulating center in the 1890s but largely neglected in subsequent studies. Using activity-dependent labeling and gene expression profiling, we identified pIII neurons that promote non-rapid eye movement (NREM) sleep. Optrode recording showed that pIII glutamatergic neurons expressing calcitonin gene-related peptide alpha (CALCA) are NREM-sleep active; optogenetic and chemogenetic activation/inactivation showed that they strongly promote NREM sleep. Within the pIII region, CALCA neurons form reciprocal connections with another population of glutamatergic neurons that express the peptide cholecystokinin (CCK). Activation of CCK neurons also promoted NREM sleep. Both CALCA and CCK neurons project rostrally to the preoptic hypothalamus, whereas CALCA neurons also project caudally to the posterior ventromedial medulla. Activation of each projection increased NREM sleep. Together, these findings point to the pIII region as an excitatory sleep center where different subsets of glutamatergic neurons promote NREM sleep through both local reciprocal connections and long-range projections.


Subject(s)
Hypothalamus/metabolism , Mesencephalon/metabolism , Neurons/metabolism , Sleep Stages/physiology , Animals , Cholecystokinin/metabolism , Hypothalamus/cytology , Mesencephalon/cytology , Mice , Mice, Transgenic , Neurons/cytology , Optogenetics
2.
Nature ; 590(7844): 115-121, 2021 02.
Article in English | MEDLINE | ID: mdl-33299180

ABSTRACT

Behavioural experiences activate the FOS transcription factor in sparse populations of neurons that are critical for encoding and recalling specific events1-3. However, there is limited understanding of the mechanisms by which experience drives circuit reorganization to establish a network of Fos-activated cells. It is also not known whether FOS is required in this process beyond serving as a marker of recent neural activity and, if so, which of its many gene targets underlie circuit reorganization. Here we demonstrate that when mice engage in spatial exploration of novel environments, perisomatic inhibition of Fos-activated hippocampal CA1 pyramidal neurons by parvalbumin-expressing interneurons is enhanced, whereas perisomatic inhibition by cholecystokinin-expressing interneurons is weakened. This bidirectional modulation of inhibition is abolished when the function of the FOS transcription factor complex is disrupted. Single-cell RNA-sequencing, ribosome-associated mRNA profiling and chromatin analyses, combined with electrophysiology, reveal that FOS activates the transcription of Scg2, a gene that encodes multiple distinct neuropeptides, to coordinate these changes in inhibition. As parvalbumin- and cholecystokinin-expressing interneurons mediate distinct features of pyramidal cell activity4-6, the SCG2-dependent reorganization of inhibitory synaptic input might be predicted to affect network function in vivo. Consistent with this prediction, hippocampal gamma rhythms and pyramidal cell coupling to theta phase are significantly altered in the absence of Scg2. These findings reveal an instructive role for FOS and SCG2 in establishing a network of Fos-activated neurons via the rewiring of local inhibition to form a selectively modulated state. The opposing plasticity mechanisms acting on distinct inhibitory pathways may support the consolidation of memories over time.


Subject(s)
Nerve Net/cytology , Nerve Net/physiology , Neural Inhibition , Neuronal Plasticity/physiology , Proto-Oncogene Proteins c-fos/metabolism , Animals , CA1 Region, Hippocampal/metabolism , Cholecystokinin/metabolism , Exploratory Behavior/physiology , Female , Gamma Rhythm , Interneurons/metabolism , Male , Memory Consolidation , Mice , Parvalbumins/metabolism , Pyramidal Cells/metabolism , Secretogranin II/genetics , Secretogranin II/metabolism , Spatial Navigation/physiology , Theta Rhythm
3.
Proc Natl Acad Sci U S A ; 121(35): e2406928121, 2024 Aug 27.
Article in English | MEDLINE | ID: mdl-39178233

ABSTRACT

Autism spectrum disorders (ASD) can be caused by environmental factors. These factors act early in the development of the nervous system and induce stereotyped repetitive behaviors and diminished social interactions, among other outcomes. Little is known about how these behaviors are produced. In pregnant women, delivery of valproic acid (VPA) (to control seizure activity or stabilize mood) or immune activation by a virus increases the incidence of ASD in offspring. We found that either VPA or Poly Inosine:Cytosine (which mimics a viral infection), administered at mouse embryonic day 12.5, induced a neurotransmitter switch from GABA to glutamate in PV- and CCK-expressing interneurons in the medial prefrontal cortex by postnatal day 10. The switch was present for only a brief period during early postnatal development, observed in male and female mice at postnatal day 21 and reversed in both males and females by postnatal day 30. At postnatal day 90, male mice exhibited stereotyped repetitive behaviors and diminished social interaction while female mice exhibited only stereotyped repetitive behavior. Transfecting GAD1 in PV- and CCK-expressing interneurons at postnatal day 10, to reintroduce GABA expression, overrode the switch and prevented expression of autistic-like behavior. These findings point to an important role of neurotransmitter switching in mediating the environmental causes of autism.


Subject(s)
Valproic Acid , gamma-Aminobutyric Acid , Animals , Female , Mice , Male , Pregnancy , Valproic Acid/toxicity , gamma-Aminobutyric Acid/metabolism , Interneurons/metabolism , Animals, Newborn , Behavior, Animal , Prenatal Exposure Delayed Effects/metabolism , Prenatal Exposure Delayed Effects/pathology , Glutamate Decarboxylase/metabolism , Glutamate Decarboxylase/genetics , Autistic Disorder/etiology , Autistic Disorder/metabolism , Glutamic Acid/metabolism , Neurotransmitter Agents/metabolism , Poly I-C , Prefrontal Cortex/metabolism , Autism Spectrum Disorder/metabolism , Autism Spectrum Disorder/etiology , Autism Spectrum Disorder/pathology , Cholecystokinin/metabolism , Parvalbumins/metabolism , Mice, Inbred C57BL , Stereotyped Behavior/drug effects
4.
J Neurosci ; 44(23)2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38697841

ABSTRACT

Interneurons in the medial prefrontal cortex (PFC) regulate local neural activity to influence cognitive, motivated, and emotional behaviors. Parvalbumin-expressing (PV+) interneurons are the primary mediators of thalamus-evoked feed-forward inhibition across the mouse cortex, including the anterior cingulate cortex, where they are engaged by inputs from the mediodorsal (MD) thalamus. In contrast, in the adjacent prelimbic (PL) cortex, we find that PV+ interneurons are scarce in the principal thalamorecipient layer 3 (L3), suggesting distinct mechanisms of inhibition. To identify the interneurons that mediate MD-evoked inhibition in PL, we combine slice physiology, optogenetics, and intersectional genetic tools in mice of both sexes. We find interneurons expressing cholecystokinin (CCK+) are abundant in L3 of PL, with cells exhibiting fast-spiking (fs) or non-fast-spiking (nfs) properties. MD inputs make stronger connections onto fs-CCK+ interneurons, driving them to fire more readily than nearby L3 pyramidal cells and other interneurons. CCK+ interneurons in turn make inhibitory, perisomatic connections onto L3 pyramidal cells, where they exhibit cannabinoid 1 receptor (CB1R) mediated modulation. Moreover, MD-evoked feed-forward inhibition, but not direct excitation, is also sensitive to CB1R modulation. Our findings indicate that CCK+ interneurons contribute to MD-evoked inhibition in PL, revealing a mechanism by which cannabinoids can modulate MD-PFC communication.


Subject(s)
Cholecystokinin , Interneurons , Neural Inhibition , Prefrontal Cortex , Animals , Interneurons/physiology , Cholecystokinin/metabolism , Prefrontal Cortex/physiology , Mice , Male , Female , Neural Inhibition/physiology , Thalamus/physiology , Mice, Inbred C57BL , Parvalbumins/metabolism , Mice, Transgenic , Neural Pathways/physiology , Optogenetics
5.
J Neurosci ; 44(17)2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38438258

ABSTRACT

Acetylcholine (ACh) is released from basal forebrain cholinergic neurons in response to salient stimuli and engages brain states supporting attention and memory. These high ACh states are associated with theta oscillations, which synchronize neuronal ensembles. Theta oscillations in the basolateral amygdala (BLA) in both humans and rodents have been shown to underlie emotional memory, yet their mechanism remains unclear. Here, using brain slice electrophysiology in male and female mice, we show large ACh stimuli evoke prolonged theta oscillations in BLA local field potentials that depend upon M3 muscarinic receptor activation of cholecystokinin (CCK) interneurons (INs) without the need for external glutamate signaling. Somatostatin (SOM) INs inhibit CCK INs and are themselves inhibited by ACh, providing a functional SOM→CCK IN circuit connection gating BLA theta. Parvalbumin (PV) INs, which can drive BLA oscillations in baseline states, are not involved in the generation of ACh-induced theta, highlighting that ACh induces a cellular switch in the control of BLA oscillatory activity and establishes an internally BLA-driven theta oscillation through CCK INs. Theta activity is more readily evoked in BLA over the cortex or hippocampus, suggesting preferential activation of the BLA during high ACh states. These data reveal a SOM→CCK IN circuit in the BLA that gates internal theta oscillations and suggest a mechanism by which salient stimuli acting through ACh switch the BLA into a network state enabling emotional memory.


Subject(s)
Acetylcholine , Cholecystokinin , Mice, Inbred C57BL , Theta Rhythm , Theta Rhythm/drug effects , Theta Rhythm/physiology , Animals , Male , Mice , Female , Acetylcholine/pharmacology , Acetylcholine/metabolism , Cholecystokinin/pharmacology , Cholecystokinin/metabolism , Interneurons/physiology , Interneurons/drug effects , Somatostatin/metabolism , Somatostatin/pharmacology , Amygdala/physiology , Amygdala/drug effects , Basolateral Nuclear Complex/physiology , Basolateral Nuclear Complex/drug effects , Nerve Net/physiology , Nerve Net/drug effects , Receptor, Muscarinic M3/physiology , Receptor, Muscarinic M3/metabolism , Parvalbumins/metabolism
6.
Front Neuroendocrinol ; 73: 101122, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38346453

ABSTRACT

Cholecystokinin (CCK) is a neuropeptide modulating digestion, glucose levels, neurotransmitters and memory. Recent studies suggest that CCK exhibits neuroprotective effects in Alzheimer's disease (AD) and Parkinson's disease (PD). Thus, we review the physiological function and therapeutic potential of CCK. The neuropeptide facilitates hippocampal glutamate release and gates GABAergic basket cell activity, which improves declarative memory acquisition, but inhibits consolidation. Cortical CCK alters recognition memory and enhances audio-visual processing. By stimulating CCK-1 receptors (CCK-1Rs), sulphated CCK-8 elicits dopamine release in the substantia nigra and striatum. In the mesolimbic pathway, CCK release is triggered by dopamine and terminates reward responses via CCK-2Rs. Importantly, activation of hippocampal and nigral CCK-2Rs is neuroprotective by evoking AMPK activation, expression of mitochondrial fusion modulators and autophagy. Other benefits include vagus nerve/CCK-1R-mediated expression of brain-derived neurotrophic factor, intestinal protection and suppression of inflammation. We also discuss caveats and the therapeutic combination of CCK with other peptide hormones.


Subject(s)
Alzheimer Disease , Cholecystokinin , Parkinson Disease , Humans , Alzheimer Disease/drug therapy , Alzheimer Disease/metabolism , Cholecystokinin/metabolism , Parkinson Disease/drug therapy , Parkinson Disease/metabolism , Animals , Neurotransmitter Agents/metabolism , Neurotransmitter Agents/pharmacology , Neuroprotective Agents/pharmacology , Neuroprotective Agents/therapeutic use
7.
J Physiol ; 602(14): 3519-3543, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38837412

ABSTRACT

In mammals, odour information within the olfactory bulb (OB) is processed by complex neural circuits before being ultimately represented in the action potential activity of mitral/tufted cells (M/Ts). Cholecystokinin-expressing (CCK+) superficial tufted cells (sTCs) are a subset of tufted cells that potentially contribute to olfactory processing in the OB by orchestrating M/T activity. However, the exact role of CCK+ sTCs in modulating odour processing and olfactory function in vivo is largely unknown. Here, we demonstrate that manipulating CCK+ sTCs can generate perception and induce place avoidance. Optogenetic activation/inactivation of CCK+ sTCs exerted strong but differing effects on spontaneous and odour-evoked M/T firing. Furthermore, inactivation of CCK+ sTCs disrupted M/T odour encoding and impaired olfactory detection and odour discrimination. These results establish the role of CCK+ sTCs in odour representation and olfactory behaviours. KEY POINTS: Mice could perceive the activity of CCK+ sTCs and show place avoidance to CCK+ sTC inactivation. Optical activation of CCK+ sTCs increased the percentage of cells with odour response but reduced the odour-evoked response in M/Ts in awake mice. Optical inactivation of CCK+ sTCs greatly decreased spontaneous firing and odour-evoked response in M/Ts. Inactivation of CCK+ sTCs impairs the odour decoding performance of M/Ts and disrupts odour detection and discrimination behaviours in mice. These results indicate that CCK+ sTCs participate in modulating the odour representation and maintaining normal olfactory-related behaviours.


Subject(s)
Cholecystokinin , Olfactory Bulb , Animals , Female , Male , Mice , Cholecystokinin/metabolism , Mice, Inbred C57BL , Mice, Transgenic , Neurons/physiology , Odorants , Olfactory Bulb/physiology , Olfactory Perception/physiology , Optogenetics , Smell/physiology
8.
J Physiol ; 602(6): 1065-1083, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38389307

ABSTRACT

Type 1 diabetes is a disease of the endocrine pancreas; however, it also affects exocrine function. Although most studies have examined the effects of diabetes on acinar cells, much less is known regarding ductal cells, despite their important protective function in the pancreas. Therefore, we investigated the effect of diabetes on ductal function. Diabetes was induced in wild-type and cystic fibrosis transmembrane conductance regulator (CFTR) knockout mice following an i.p. administration of streptozotocin. Pancreatic ductal fluid and HCO3 - secretion were determined using fluid secretion measurements and fluorescence microscopy, respectively. The expression of ion transporters was measured by real-time PCR and immunohistochemistry. Transmission electron microscopy was used for the morphological characterization of the pancreas. Serum secretin and cholecystokinin levels were measured by an enzyme-linked immunosorbent assay. Ductal fluid and HCO3 - secretion, CFTR activity, and the expression of CFTR, Na+ /H+ exchanger-1, anoctamine-1 and aquaporin-1 were significantly elevated in diabetic mice. Acute or chronic glucose treatment did not affect HCO3 - secretion, but increased alkalizing transporter activity. Inhibition of CFTR significantly reduced HCO3 - secretion in both normal and diabetic mice. Serum levels of secretin and cholecystokinin were unchanged, but the expression of secretin receptors significantly increased in diabetic mice. Diabetes increases fluid and HCO3 - secretion in pancreatic ductal cells, which is associated with the increased function of ion and water transporters, particularly CFTR. KEY POINTS: There is a lively interaction between the exocrine and endocrine pancreas not only under physiological conditions, but also under pathophysiological conditions The most common disease affecting the endocrine part is type-1 diabetes mellitus (T1DM), which is often associated with pancreatic exocrine insufficiency Compared with acinar cells, there is considerably less information regarding the effect of diabetes on pancreatic ductal epithelial cells, despite the fact that the large amount of fluid and HCO3 - produced by ductal cells is essential for maintaining normal pancreatic functions Ductal fluid and HCO3 - secretion increase in T1DM, in which increased cystic fibrosis transmembrane conductance regulator activation plays a central role. We have identified a novel interaction between T1DM and ductal cells. Presumably, the increased ductal secretion represents a defence mechanism in the prevention of diabetes, but further studies are needed to clarify this issue.


Subject(s)
Diabetes Mellitus, Experimental , Diabetes Mellitus, Type 1 , Animals , Mice , Bicarbonates/metabolism , Cholecystokinin/metabolism , Cystic Fibrosis Transmembrane Conductance Regulator/genetics , Cystic Fibrosis Transmembrane Conductance Regulator/metabolism , Diabetes Mellitus, Experimental/metabolism , Diabetes Mellitus, Type 1/metabolism , Pancreatic Ducts/metabolism , Secretin/metabolism
9.
Physiol Rev ; 97(1): 411-463, 2017 01.
Article in English | MEDLINE | ID: mdl-28003328

ABSTRACT

The efficacy of Roux-en-Y gastric-bypass (RYGB) and other bariatric surgeries in the management of obesity and type 2 diabetes mellitus and novel developments in gastrointestinal (GI) endocrinology have renewed interest in the roles of GI hormones in the control of eating, meal-related glycemia, and obesity. Here we review the nutrient-sensing mechanisms that control the secretion of four of these hormones, ghrelin, cholecystokinin (CCK), glucagon-like peptide-1 (GLP-1), and peptide tyrosine tyrosine [PYY(3-36)], and their contributions to the controls of GI motor function, food intake, and meal-related increases in glycemia in healthy-weight and obese persons, as well as in RYGB patients. Their physiological roles as classical endocrine and as locally acting signals are discussed. Gastric emptying, the detection of specific digestive products by small intestinal enteroendocrine cells, and synergistic interactions among different GI loci all contribute to the secretion of ghrelin, CCK, GLP-1, and PYY(3-36). While CCK has been fully established as an endogenous endocrine control of eating in healthy-weight persons, the roles of all four hormones in eating in obese persons and following RYGB are uncertain. Similarly, only GLP-1 clearly contributes to the endocrine control of meal-related glycemia. It is likely that local signaling is involved in these hormones' actions, but methods to determine the physiological status of local signaling effects are lacking. Further research and fresh approaches are required to better understand ghrelin, CCK, GLP-1, and PYY(3-36) physiology; their roles in obesity and bariatric surgery; and their therapeutic potentials.


Subject(s)
Cholecystokinin/metabolism , Gastric Bypass , Ghrelin/metabolism , Glucagon-Like Peptide 1/metabolism , Peptide Fragments/metabolism , Peptide YY/metabolism , Blood Glucose/metabolism , Eating/physiology , Humans , Obesity/metabolism
10.
Am J Physiol Gastrointest Liver Physiol ; 326(3): G291-G309, 2024 Mar 01.
Article in English | MEDLINE | ID: mdl-38252699

ABSTRACT

Hepatocellular carcinoma (HCC) is the fastest-growing cause of cancer-related deaths worldwide. Chronic inflammation and fibrosis are the greatest risk factors for the development of HCC. Although the cell of origin for HCC is uncertain, many theories believe this cancer may arise from liver progenitor cells or stem cells. Here, we describe the activation of hepatic stem cells that overexpress the cholecystokinin-B receptor (CCK-BR) after liver injury with either a DDC diet (0.1% 3, 5-diethoxy-carbonyl 1,4-dihydrocollidine) or a NASH-inducing CDE diet (choline-deficient ethionine) in murine models. Pharmacologic blockade of the CCK-BR with a receptor antagonist proglumide or knockout of the CCK-BR in genetically engineered mice during the injury diet reduces the expression of hepatic stem cells and prevents the formation of three-dimensional tumorspheres in culture. RNA sequencing of livers from DDC-fed mice treated with proglumide or DDC-fed CCK-BR knockout mice showed downregulation of differentially expressed genes involved in cell proliferation and oncogenesis and upregulation of tumor suppressor genes compared with controls. Inhibition of the CCK-BR decreases hepatic transaminases, fibrosis, cytokine expression, and alters the hepatic immune cell signature rendering the liver microenvironment less oncogenic. Furthermore, proglumide hastened recovery after liver injury by reversing fibrosis and improving markers of synthetic function. Proglumide is an older drug that is orally bioavailable and being repurposed for liver conditions. These findings support a promising therapeutic intervention applicable to patients to prevent the development of HCC and decrease hepatic fibrosis.NEW & NOTEWORTHY This investigation identified a novel pathway involving the activation of hepatic stem cells and liver oncogenesis. Receptor blockade or genetic disruption of the cholecystokinin-B receptor (CCK-BR) signaling pathway decreased the activation and proliferation of hepatic stem cells after liver injury without eliminating the regenerative capacity of healthy hepatocytes.


Subject(s)
Carcinoma, Hepatocellular , Liver Neoplasms , Humans , Mice , Animals , Receptor, Cholecystokinin B/genetics , Receptor, Cholecystokinin B/metabolism , Carcinoma, Hepatocellular/pathology , Proglumide/pharmacology , Liver Neoplasms/metabolism , Liver/metabolism , Fibrosis , Stem Cells/metabolism , Carcinogenesis/metabolism , Cell Transformation, Neoplastic/metabolism , Cholecystokinin/metabolism , Tumor Microenvironment
11.
PLoS Biol ; 19(6): e3001295, 2021 06.
Article in English | MEDLINE | ID: mdl-34086670

ABSTRACT

G protein-coupled receptors (GPCRs) are critical regulators of cellular function acting via heterotrimeric G proteins as their primary transducers with individual GPCRs capable of pleiotropic coupling to multiple G proteins. Structural features governing G protein selectivity and promiscuity are currently unclear. Here, we used cryo-electron microscopy (cryo-EM) to determine structures of the cholecystokinin (CCK) type 1 receptor (CCK1R) bound to the CCK peptide agonist, CCK-8 and 2 distinct transducer proteins, its primary transducer Gq, and the more weakly coupled Gs. As seen with other Gq/11-GPCR complexes, the Gq-α5 helix (αH5) bound to a relatively narrow pocket in the CCK1R core. Surprisingly, the backbone of the CCK1R and volume of the G protein binding pocket were essentially equivalent when Gs was bound, with the Gs αH5 displaying a conformation that arises from "unwinding" of the far carboxyl-terminal residues, compared to canonically Gs coupled receptors. Thus, integrated changes in the conformations of both the receptor and G protein are likely to play critical roles in the promiscuous coupling of individual GPCRs.


Subject(s)
GTP-Binding Protein alpha Subunits, Gq-G11/metabolism , GTP-Binding Protein alpha Subunits, Gs/metabolism , Receptors, Cholecystokinin/chemistry , Receptors, Cholecystokinin/metabolism , Cholecystokinin/metabolism , Cholesterol/metabolism , GTP-Binding Protein alpha Subunits, Gq-G11/chemistry , GTP-Binding Protein alpha Subunits, Gq-G11/ultrastructure , GTP-Binding Protein alpha Subunits, Gs/chemistry , GTP-Binding Protein alpha Subunits, Gs/ultrastructure , HEK293 Cells , Humans , Models, Molecular , Protein Binding , Receptors, Cholecystokinin/ultrastructure , Signal Transduction
12.
J Nat Prod ; 87(8): 2021-2033, 2024 Aug 23.
Article in English | MEDLINE | ID: mdl-39126694

ABSTRACT

Bitter taste receptors, also known as taste 2 receptors (T2R), are expressed throughout the body and are involved in regulating different physiological processes. T2R expression in the intestinal tract regulates orexigenic and anorexigenic peptide secretion, thus becoming potential a potential target for controlling food intake and the prevalence of obesity and overweight. The present study aims to investigate the implication of hop bitter compounds such as α-acids, ß-acids, and xanthohumol in the secretion of anorexigenic hormones and T2R expression in intestinal STC-1 cells. The tested bitter compounds induced the secretion of the anorexigenic hormones glucagon-like peptide 1 and cholecystokinin concurrently with a selective increase of murine Tas2r expression. Xanthohumol and α-acids selectively increase Tas2r138 and Tas2r130-Tas2r138 expression, respectively, in STC-1 cells, while ß-acids increased the expression of all bitter receptors studied, including Tas2r119, Tas2r105, Tas2r138, Tas2r120, and Tas2r130. Increased intracellular calcium levels confirmed this activity. As all investigated bitter molecules increased Tas2r138 expression, computational studies were performed on Tas2r138 and its human orthologue T2R38 for the first time. Molecular docking experiments showed that all molecules might be able to bind both bitter receptors, providing an excellent basis for applying hop bitter molecules as lead compounds to further design gastrointestinal-permeable T2R agonists.


Subject(s)
Humulus , Molecular Docking Simulation , Receptors, G-Protein-Coupled , Humulus/chemistry , Receptors, G-Protein-Coupled/metabolism , Animals , Mice , Humans , Propiophenones/pharmacology , Propiophenones/chemistry , Flavonoids/pharmacology , Flavonoids/chemistry , Glucagon-Like Peptide 1/metabolism , Cholecystokinin/metabolism , Cholecystokinin/chemistry , Cell Line , Gastrointestinal Tract/metabolism , Molecular Structure
13.
Nature ; 561(7724): 547-550, 2018 09.
Article in English | MEDLINE | ID: mdl-30209395

ABSTRACT

Current models of somatosensory perception emphasize transmission from primary sensory neurons to the spinal cord and on to the brain1-4. Mental influence on perception is largely assumed to occur locally within the brain. Here we investigate whether sensory inflow through the spinal cord undergoes direct top-down control by the cortex. Although the corticospinal tract (CST) is traditionally viewed as a primary motor pathway5, a subset of corticospinal neurons (CSNs) originating in the primary and secondary somatosensory cortex directly innervate the spinal dorsal horn via CST axons. Either reduction in somatosensory CSN activity or transection of the CST in mice selectively impairs behavioural responses to light touch without altering responses to noxious stimuli. Moreover, such CSN manipulation greatly attenuates tactile allodynia in a model of peripheral neuropathic pain. Tactile stimulation activates somatosensory CSNs, and their corticospinal projections facilitate light-touch-evoked activity of cholecystokinin interneurons in the deep dorsal horn. This touch-driven feed-forward spinal-cortical-spinal sensitization loop is important for the recruitment of spinal nociceptive neurons under tactile allodynia. These results reveal direct cortical modulation of normal and pathological tactile sensory processing in the spinal cord and open up opportunities for new treatments for neuropathic pain.


Subject(s)
Neural Pathways/physiopathology , Neuralgia/physiopathology , Pyramidal Tracts/physiopathology , Touch/physiology , Animals , Axons , Cholecystokinin/metabolism , Female , Hindlimb/physiopathology , Hyperalgesia/pathology , Hyperalgesia/physiopathology , Interneurons/metabolism , Male , Mice , Neuralgia/pathology , Nociception/physiology , Pyramidal Tracts/pathology , Somatosensory Cortex/pathology , Somatosensory Cortex/physiopathology , Spinal Cord Dorsal Horn/pathology , Spinal Cord Dorsal Horn/physiopathology
14.
Acta Pharmacol Sin ; 45(9): 1821-1831, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38702501

ABSTRACT

Enteroendocrine cells (EECs) and vagal afferent neurons constitute functional sensory units of the gut, which have been implicated in bottom-up modulation of brain functions. Sodium oligomannate (GV-971) has been shown to improve cognitive functions in murine models of Alzheimer's disease (AD) and recently approved for the treatment of AD patients in China. In this study, we explored whether activation of the EECs-vagal afferent pathways was involved in the therapeutic effects of GV-971. We found that an enteroendocrine cell line RIN-14B displayed spontaneous calcium oscillations due to TRPA1-mediated calcium entry; perfusion of GV-971 (50, 100 mg/L) concentration-dependently enhanced the calcium oscillations in EECs. In ex vivo murine jejunum preparation, intraluminal infusion of GV-971 (500 mg/L) significantly increased the spontaneous and distension-induced discharge rate of the vagal afferent nerves. In wild-type mice, administration of GV-971 (100 mg· kg-1 ·d-1, i.g. for 7 days) significantly elevated serum serotonin and CCK levels and increased jejunal afferent nerve activity. In 7-month-old APP/PS1 mice, administration of GV-971 for 12 weeks significantly increased jejunal afferent nerve activity and improved the cognitive deficits in behavioral tests. Sweet taste receptor inhibitor Lactisole (0.5 mM) and the TRPA1 channel blocker HC-030031 (10 µM) negated the effects of GV-971 on calcium oscillations in RIN-14B cells as well as on jejunal afferent nerve activity. In APP/PS1 mice, co-administration of Lactisole (30 mg ·kg-1 ·d-1, i.g. for 12 weeks) attenuated the effects of GV-971 on serum serotonin and CCK levels, vagal afferent firing, and cognitive behaviors. We conclude that GV-971 activates sweet taste receptors and TRPA1, either directly or indirectly, to enhance calcium entry in enteroendocrine cells, resulting in increased CCK and 5-HT release and consequent increase of vagal afferent activity. GV-971 might activate the EECs-vagal afferent pathways to modulate cognitive functions.


Subject(s)
Enteroendocrine Cells , Jejunum , TRPA1 Cation Channel , Vagus Nerve , Animals , Male , Mice , Afferent Pathways/drug effects , Alzheimer Disease/drug therapy , Alzheimer Disease/metabolism , Amyloid beta-Protein Precursor/genetics , Calcium Signaling/drug effects , Cell Line , Cholecystokinin/metabolism , Disease Models, Animal , Enteroendocrine Cells/metabolism , Enteroendocrine Cells/drug effects , Jejunum/drug effects , Jejunum/metabolism , Jejunum/innervation , Mice, Inbred C57BL , Mice, Transgenic , Presenilin-1/genetics , Serotonin/metabolism , TRPA1 Cation Channel/metabolism , Vagus Nerve/drug effects , Vagus Nerve/metabolism
15.
Proc Natl Acad Sci U S A ; 118(10)2021 03 09.
Article in English | MEDLINE | ID: mdl-33658359

ABSTRACT

The central nucleus of the inferior colliculus (ICC) integrates information about different features of sound and then distributes this information to thalamocortical circuits. However, the lack of clear definitions of circuit elements in the ICC has limited our understanding of the nature of these circuit transformations. Here, we combine virus-based genetic access with electrophysiological and optogenetic approaches to identify a large family of excitatory, cholecystokinin-expressing thalamic projection neurons in the ICC of the Mongolian gerbil. We show that these neurons form a distinct cell type, displaying uniform morphology and intrinsic firing features, and provide powerful, spatially restricted excitation exclusively to the ventral auditory thalamus. In vivo, these neurons consistently exhibit V-shaped receptive field properties but strikingly diverse temporal responses to sound. Our results indicate that temporal response diversity is maintained within this population of otherwise uniform cells in the ICC and then relayed to cortex through spatially restricted thalamic subdomains.


Subject(s)
Auditory Pathways/metabolism , Cholecystokinin/metabolism , Evoked Potentials, Auditory , Mesencephalon/metabolism , Neurons/metabolism , Thalamus/metabolism , Animals , Female , Gerbillinae , Male
16.
PLoS Genet ; 17(8): e1009724, 2021 08.
Article in English | MEDLINE | ID: mdl-34398892

ABSTRACT

Feeding is essential for animal survival and reproduction and is regulated by both internal states and external stimuli. However, little is known about how internal states influence the perception of external sensory cues that regulate feeding behavior. Here, we investigated the neuronal and molecular mechanisms behind nutritional state-mediated regulation of gustatory perception in control of feeding behavior in the brown planthopper and Drosophila. We found that feeding increases the expression of the cholecystokinin-like peptide, sulfakinin (SK), and the activity of a set of SK-expressing neurons. Starvation elevates the transcription of the sugar receptor Gr64f and SK negatively regulates the expression of Gr64f in both insects. Interestingly, we found that one of the two known SK receptors, CCKLR-17D3, is expressed by some of Gr64f-expressing neurons in the proboscis and proleg tarsi. Thus, we have identified SK as a neuropeptide signal in a neuronal circuitry that responds to food intake, and regulates feeding behavior by diminishing gustatory receptor gene expression and activity of sweet sensing GRNs. Our findings demonstrate one nutritional state-dependent pathway that modulates sweet perception and thereby feeding behavior, but our experiments cannot exclude further parallel pathways. Importantly, we show that the underlying mechanisms are conserved in the two distantly related insect species.


Subject(s)
Feeding Behavior/physiology , Taste Perception/genetics , Animals , Brain/metabolism , Carbohydrate Metabolism/physiology , Carbohydrates/physiology , Cholecystokinin/metabolism , Drosophila melanogaster/genetics , Drosophila melanogaster/physiology , Feeding Behavior/psychology , Gene Expression/genetics , Gene Expression Regulation/genetics , Hemiptera/genetics , Hemiptera/physiology , Neurons/metabolism , Neuropeptides/metabolism , Receptors, Cell Surface/genetics , Starvation/metabolism , Sugars/metabolism , Taste/physiology , Taste Perception/physiology
17.
Article in English | MEDLINE | ID: mdl-38703991

ABSTRACT

The pond loach (Misgurnus anguillicaudatus) is an important aquaculture freshwater species, used as an ornamental fish, food source for humans and angling bait. Pond loaches are resistant to fasting and extreme environmental conditions, including temperature and low oxygen levels. Little is known about how these factors affect the feeding physiology and the endocrine regulation of feeding of loaches. In this study, we examined the effects of fasting, as well as increased temperature and decreased oxygen levels on food intake and transcript levels of appetite regulators. Fasted fish had lower blood glucose levels, and lower expression levels of intestine CCK and PYY, and brain CART1, but had higher levels of brain orexin and ghrelin than fed fish. Fish held at 30 °C had higher food intake, glucose levels, and mRNA levels of intestine CCK and PYY, and brain CART2, but lower brain orexin levels than fish at 20 °C. Fish held at low oxygen levels had a lower food intake, higher intestine CCKa and ghrelin, and brain orexin, CART2 and ghrelin mRNA expression levels than fish held at high O2 levels. Our results suggest that fasting and high temperatures increase the expression of orexigenic and anorexigenic factors respectively, whereas the increase in expression of both orexigenic and anorexigenic factors in low O2 environments might not be related to their role in feeding, but possibly to protection from tissue damage. The results of our study might shed new light on how pond loaches are able to cope with extreme environmental conditions such as low food availability, extreme temperatures and hypoxia.


Subject(s)
Cypriniformes , Fasting , Ghrelin , Animals , Fasting/physiology , Cypriniformes/physiology , Cypriniformes/genetics , Cypriniformes/metabolism , Ghrelin/metabolism , Orexins/metabolism , Brain/metabolism , Brain/physiology , Cholecystokinin/metabolism , Appetite Regulation/physiology , Nerve Tissue Proteins/metabolism , Nerve Tissue Proteins/genetics , Blood Glucose/metabolism , Oxygen/metabolism , Peptide YY/metabolism , Peptide YY/blood , Eating/physiology , Temperature , Feeding Behavior/physiology
18.
Reprod Domest Anim ; 59(5): e14586, 2024 May.
Article in English | MEDLINE | ID: mdl-38757644

ABSTRACT

The current study aimed to explore the molecular mechanism by which the cholecystokinin (CCK)-mediated CCKAR and CCKBR, as well as the molecular mechanisms of CCK-mediated insulin signalling pathway, regulate oestrogen in the granulosa cells. Also, the expression of CCK in ovaries, uterus, hypothalamus and pituitary gland was investigated in Camelus bactrianus. Ovaries, uterus, hypothalamus and pituitary gland were collected from six, three before ovulation (control) and three after ovulation, slaughtered Camelus bactrianus. Ovulation was induced by IM injection of seminal plasma before slaughtering in the ovulated group. The results showed that there were differences in the transcription and protein levels of CCK in various tissues before and after ovulation (p < .05, p < .01). After transfection with p-IRES2-EGFP-CCK, the mRNA and protein levels of CCK, CCKAR, CCKBR and ER in follicular granulosa cells were significantly upregulated (p < .05, p < .01), and the content of E2 was significantly upregulated (p < .01); On the contrary, after transfection with si-CCK, the mRNA and protein levels of CCK, CCKAR, CCKBR and ER in follicular granulosa cells were significantly downregulated (p < .05, p < .01), and the content of E2 was significantly downregulated (p < .01). Regulating CCK can affect the mRNA levels of INS, INSR, IGF and IGF-R. In summary, regulating the expression level of CCK can activate insulin-related signalling pathways by CCKR, thereby regulating the steroidogenic activity of granulosa cells.


Subject(s)
Cholecystokinin , Granulosa Cells , Insulin , Signal Transduction , Animals , Female , Granulosa Cells/metabolism , Cholecystokinin/metabolism , Cholecystokinin/genetics , Insulin/metabolism , Ovulation , Uterus/metabolism , Ovary/metabolism , Pituitary Gland/metabolism , Hypothalamus/metabolism , RNA, Messenger/metabolism , RNA, Messenger/genetics
19.
Int J Mol Sci ; 25(12)2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38928178

ABSTRACT

Physiology and behavior are structured temporally to anticipate daily cycles of light and dark, ensuring fitness and survival. Neuromodulatory systems in the brain-including those involving serotonin and dopamine-exhibit daily oscillations in neural activity and help shape circadian rhythms. Disrupted neuromodulation can cause circadian abnormalities that are thought to underlie several neuropsychiatric disorders, including bipolar mania and schizophrenia, for which a mechanistic understanding is still lacking. Here, we show that genetically depleting serotonin in Tph2 knockout mice promotes manic-like behaviors and disrupts daily oscillations of the dopamine biosynthetic enzyme tyrosine hydroxylase (TH) in midbrain dopaminergic nuclei. Specifically, while TH mRNA and protein levels in the Substantia Nigra (SN) and Ventral Tegmental Area (VTA) of wild-type mice doubled between the light and dark phase, TH levels were high throughout the day in Tph2 knockout mice, suggesting a hyperdopaminergic state. Analysis of TH expression in striatal terminal fields also showed blunted rhythms. Additionally, we found low abundance and blunted rhythmicity of the neuropeptide cholecystokinin (Cck) in the VTA of knockout mice, a neuropeptide whose downregulation has been implicated in manic-like states in both rodents and humans. Altogether, our results point to a previously unappreciated serotonergic control of circadian dopamine signaling and propose serotonergic dysfunction as an upstream mechanism underlying dopaminergic deregulation and ultimately maladaptive behaviors.


Subject(s)
Circadian Rhythm , Dopamine , Mice, Knockout , Serotonin , Tryptophan Hydroxylase , Tyrosine 3-Monooxygenase , Ventral Tegmental Area , Animals , Serotonin/metabolism , Mice , Circadian Rhythm/physiology , Dopamine/metabolism , Tyrosine 3-Monooxygenase/metabolism , Tyrosine 3-Monooxygenase/genetics , Tryptophan Hydroxylase/genetics , Tryptophan Hydroxylase/metabolism , Tryptophan Hydroxylase/deficiency , Ventral Tegmental Area/metabolism , Cholecystokinin/metabolism , Cholecystokinin/genetics , Dopaminergic Neurons/metabolism , Male , Substantia Nigra/metabolism , Mice, Inbred C57BL , Bipolar Disorder/metabolism , Bipolar Disorder/genetics
20.
J Sci Food Agric ; 104(1): 295-302, 2024 Jan 15.
Article in English | MEDLINE | ID: mdl-37563097

ABSTRACT

BACKGROUND: Wheat protein intake leads to improved appetite control. However, the active components causing appetite in wheat have not been fully clarified. Gut cholecystokinin (CCK) plays a vital role in appetite control. This study aimed to investigate the ability of wheat protein digest (WPD) to stimulate CCK secretion and clarify the active components and target of action. RESULTS: WPD was prepared by a simulated gastrointestinal digestion model. WPD treatment with a concentration of 5 mg mL-1 significantly stimulated CCK secretion in enteroendocrine STC-1 cells (P < 0.05). Furthermore, oral gavage with WPD in mice significantly increased plasma CCK level at 60 min (P < 0.01). Preparative C18 column separation was used to isolate peptide fractions associated with CCK secretion and peptide sequences were identified by liquid chromatography-tandem mass spectrometry. A new CCK-releasing peptide, RYIVPL, that potently stimulated CCK secretion was successfully identified. After pretreatment with a specific calcium-sensing receptor (CaSR) antagonist, NPS 2143, CCK secretion induced by WPD or RYIVPL was greatly suppressed, suggesting that CaSR was involved in WPD- or RYIVPL-induced CCK secretion. CONCLUSION: The present study demonstrated that WPD has an ability to stimulate CCK secretion in vitro and in vivo, and determined that peptide RYIVPL in WPD could stimulate CCK secretion through CaSR. © 2023 Society of Chemical Industry.


Subject(s)
Cholecystokinin , Triticum , Mice , Animals , Cholecystokinin/metabolism , Triticum/metabolism , Cell Line , Peptides/pharmacology , Receptors, Calcium-Sensing/metabolism , Digestion
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