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1.
Annu Rev Immunol ; 39: 369-393, 2021 04 26.
Article in English | MEDLINE | ID: mdl-33561366

ABSTRACT

Classically, skin was considered a mere structural barrier protecting organisms from a diversity of environmental insults. In recent decades, the cutaneous immune system has become recognized as a complex immunologic barrier involved in both antimicrobial immunity and homeostatic processes like wound healing. To sense a variety of chemical, mechanical, and thermal stimuli, the skin harbors one of the most sophisticated sensory networks in the body. However, recent studies suggest that the cutaneous nervous system is highly integrated with the immune system to encode specific sensations into evolutionarily conserved protective behaviors. In addition to directly sensing pathogens, neurons employ novel neuroimmune mechanisms to provide host immunity. Therefore, given that sensation underlies various physiologies through increasingly complex reflex arcs, a much more dynamic picture is emerging of the skin as a truly systemic organ with highly coordinated physical, immunologic, and neural functions in barrier immunology.


Subject(s)
Immune System , Neuroimmunomodulation , Animals , Humans , Nervous System
2.
Cell ; 187(1): 44-61.e17, 2024 01 04.
Article in English | MEDLINE | ID: mdl-38134932

ABSTRACT

Cytokines employ downstream Janus kinases (JAKs) to promote chronic inflammatory diseases. JAK1-dependent type 2 cytokines drive allergic inflammation, and patients with JAK1 gain-of-function (GoF) variants develop atopic dermatitis (AD) and asthma. To explore tissue-specific functions, we inserted a human JAK1 GoF variant (JAK1GoF) into mice and observed the development of spontaneous AD-like skin disease but unexpected resistance to lung inflammation when JAK1GoF expression was restricted to the stroma. We identified a previously unrecognized role for JAK1 in vagal sensory neurons in suppressing airway inflammation. Additionally, expression of Calcb/CGRPß was dependent on JAK1 in the vagus nerve, and CGRPß suppressed group 2 innate lymphoid cell function and allergic airway inflammation. Our findings reveal evolutionarily conserved but distinct functions of JAK1 in sensory neurons across tissues. This biology raises the possibility that therapeutic JAK inhibitors may be further optimized for tissue-specific efficacy to enhance precision medicine in the future.


Subject(s)
Dermatitis, Atopic , Immunity, Innate , Lung , Sensory Receptor Cells , Animals , Humans , Mice , Cytokines , Dermatitis, Atopic/immunology , Inflammation , Lung/immunology , Lymphocytes , Sensory Receptor Cells/enzymology
3.
Cell ; 184(24): 5854-5868.e20, 2021 11 24.
Article in English | MEDLINE | ID: mdl-34822783

ABSTRACT

Jellyfish are radially symmetric organisms without a brain that arose more than 500 million years ago. They achieve organismal behaviors through coordinated interactions between autonomously functioning body parts. Jellyfish neurons have been studied electrophysiologically, but not at the systems level. We introduce Clytia hemisphaerica as a transparent, genetically tractable jellyfish model for systems and evolutionary neuroscience. We generate stable F1 transgenic lines for cell-type-specific conditional ablation and whole-organism GCaMP imaging. Using these tools and computational analyses, we find that an apparently diffuse network of RFamide-expressing umbrellar neurons is functionally subdivided into a series of spatially localized subassemblies whose synchronous activation controls directional food transfer from the tentacles to the mouth. These data reveal an unanticipated degree of structured neural organization in this species. Clytia affords a platform for systems-level studies of neural function, behavior, and evolution within a clade of marine organisms with growing ecological and economic importance.


Subject(s)
Biological Evolution , Hydrozoa/genetics , Models, Animal , Neurosciences , Animals , Animals, Genetically Modified , Behavior, Animal , Feeding Behavior , Gene Targeting , Hydrozoa/physiology , Models, Biological , Nerve Net/physiology , Neurons/metabolism , Neuropeptides/metabolism
4.
Cell ; 184(14): 3762-3773.e10, 2021 07 08.
Article in English | MEDLINE | ID: mdl-34133943

ABSTRACT

Sneezing is a vital respiratory reflex frequently associated with allergic rhinitis and viral respiratory infections. However, its neural circuit remains largely unknown. A sneeze-evoking region was discovered in both cat and human brainstems, corresponding anatomically to the central recipient zone of nasal sensory neurons. Therefore, we hypothesized that a neuronal population postsynaptic to nasal sensory neurons mediates sneezing in this region. By screening major presynaptic neurotransmitters/neuropeptides released by nasal sensory neurons, we found that neuromedin B (NMB) peptide is essential for signaling sneezing. Ablation of NMB-sensitive postsynaptic neurons in the sneeze-evoking region or deficiency in NMB receptor abolished the sneezing reflex. Remarkably, NMB-sensitive neurons further project to the caudal ventral respiratory group (cVRG). Chemical activation of NMB-sensitive neurons elicits action potentials in cVRG neurons and leads to sneezing behavior. Our study delineates a peptidergic pathway mediating sneezing, providing molecular insights into the sneezing reflex arc.


Subject(s)
Brain Stem/physiopathology , Neuropeptides/metabolism , Nose/physiopathology , Reflex/physiology , Sneezing/physiology , Animals , Disease Models, Animal , Hypersensitivity/physiopathology , Male , Mice, Inbred C57BL , Neurokinin B/analogs & derivatives , Neurokinin B/metabolism , Neurons/metabolism , RNA, Small Interfering/metabolism , Sensory Receptor Cells/physiology , TRPV Cation Channels/metabolism , Video Recording
5.
Cell ; 184(22): 5622-5634.e25, 2021 10 28.
Article in English | MEDLINE | ID: mdl-34610277

ABSTRACT

Disinhibitory neurons throughout the mammalian cortex are powerful enhancers of circuit excitability and plasticity. The differential expression of neuropeptide receptors in disinhibitory, inhibitory, and excitatory neurons suggests that each circuit motif may be controlled by distinct neuropeptidergic systems. Here, we reveal that a bombesin-like neuropeptide, gastrin-releasing peptide (GRP), recruits disinhibitory cortical microcircuits through selective targeting and activation of vasoactive intestinal peptide (VIP)-expressing cells. Using a genetically encoded GRP sensor, optogenetic anterograde stimulation, and trans-synaptic tracing, we reveal that GRP regulates VIP cells most likely via extrasynaptic diffusion from several local and long-range sources. In vivo photometry and CRISPR-Cas9-mediated knockout of the GRP receptor (GRPR) in auditory cortex indicate that VIP cells are strongly recruited by novel sounds and aversive shocks, and GRP-GRPR signaling enhances auditory fear memories. Our data establish peptidergic recruitment of selective disinhibitory cortical microcircuits as a mechanism to regulate fear memories.


Subject(s)
Auditory Cortex/metabolism , Bombesin/metabolism , Fear/physiology , Memory/physiology , Nerve Net/metabolism , Amino Acid Sequence , Animals , Calcium/metabolism , Calcium Signaling , Conditioning, Classical , Gastrin-Releasing Peptide/chemistry , Gastrin-Releasing Peptide/metabolism , Gene Expression Regulation , Genes, Immediate-Early , HEK293 Cells , Humans , Intracellular Space/metabolism , Male , Mice, Inbred C57BL , Receptors, Bombesin/metabolism , Sound , Vasoactive Intestinal Peptide/metabolism
6.
Cell ; 178(3): 653-671.e19, 2019 07 25.
Article in English | MEDLINE | ID: mdl-31348890

ABSTRACT

Nociceptin and its receptor are widely distributed throughout the brain in regions associated with reward behavior, yet how and when they act is unknown. Here, we dissected the role of a nociceptin peptide circuit in reward seeking. We generated a prepronociceptin (Pnoc)-Cre mouse line that revealed a unique subpopulation of paranigral ventral tegmental area (pnVTA) neurons enriched in prepronociceptin. Fiber photometry recordings during progressive ratio operant behavior revealed pnVTAPnoc neurons become most active when mice stop seeking natural rewards. Selective pnVTAPnoc neuron ablation, inhibition, and conditional VTA nociceptin receptor (NOPR) deletion increased operant responding, revealing that the pnVTAPnoc nucleus and VTA NOPR signaling are necessary for regulating reward motivation. Additionally, optogenetic and chemogenetic activation of this pnVTAPnoc nucleus caused avoidance and decreased motivation for rewards. These findings provide insight into neuromodulatory circuits that regulate motivated behaviors through identification of a previously unknown neuropeptide-containing pnVTA nucleus that limits motivation for rewards.


Subject(s)
Motivation/drug effects , Opioid Peptides/pharmacology , Reward , Ventral Tegmental Area/metabolism , Action Potentials , Animals , Behavior, Animal/drug effects , Female , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Neurons/physiology , Patch-Clamp Techniques , Protein Precursors/genetics , Receptors, Opioid/agonists , Receptors, Opioid/deficiency , Receptors, Opioid/genetics , Nociceptin Receptor , Nociceptin
7.
Cell ; 176(4): 687-701.e5, 2019 02 07.
Article in English | MEDLINE | ID: mdl-30735632

ABSTRACT

Female Aedes aegypti mosquitoes bite humans to obtain blood to develop their eggs. Remarkably, their strong attraction to humans is suppressed for days after the blood meal by an unknown mechanism. We investigated a role for neuropeptide Y (NPY)-related signaling in long-term behavioral suppression and discovered that drugs targeting human NPY receptors modulate mosquito host-seeking. In a screen of all 49 predicted Ae. aegypti peptide receptors, we identified NPY-like receptor 7 (NPYLR7) as the sole target of these drugs. To obtain small-molecule agonists selective for NPYLR7, we performed a high-throughput cell-based assay of 265,211 compounds and isolated six highly selective NPYLR7 agonists that inhibit mosquito attraction to humans. NPYLR7 CRISPR-Cas9 null mutants are defective in behavioral suppression and resistant to these drugs. Finally, we show that these drugs can inhibit biting and blood-feeding on a live host, suggesting a novel approach to control infectious disease transmission by controlling mosquito behavior. VIDEO ABSTRACT.


Subject(s)
Host-Seeking Behavior/drug effects , Mosquito Vectors/drug effects , Receptors, Neuropeptide Y/agonists , Aedes/metabolism , Animals , Feeding Behavior/drug effects , Female , HEK293 Cells , Humans , Insect Bites and Stings , Receptors, Neuropeptide Y/metabolism , Small Molecule Libraries/analysis
8.
Immunity ; 57(2): 333-348.e6, 2024 Feb 13.
Article in English | MEDLINE | ID: mdl-38295799

ABSTRACT

The notion that neutrophils exist as a homogeneous population is being replaced with the knowledge that neutrophils adopt different functional states. Neutrophils can have a pro-inflammatory phenotype or an anti-inflammatory state, but how these states are regulated remains unclear. Here, we demonstrated that the neutrophil-expressed G-protein-coupled receptor (GPCR) Mrgpra1 is a negative regulator of neutrophil bactericidal functions. Mrgpra1-mediated signaling was driven by its ligand, neuropeptide FF (NPFF), which dictated the balance between pro- and anti-inflammatory programming. Specifically, the Mrgpra1-NPFF axis counter-regulated interferon (IFN) γ-mediated neutrophil polarization during acute lung infection by favoring an alternative-like polarization, suggesting that it may act to balance overzealous neutrophilic responses. Distinct, cross-regulated populations of neutrophils were the primary source of NPFF and IFNγ during infection. As a subset of neutrophils at steady state expressed NPFF, these findings could have broad implications in various infectious and inflammatory diseases. Therefore, a neutrophil-intrinsic pathway determines their cellular fate, function, and magnitude of infection.


Subject(s)
Bacterial Infections , Neuropeptides , Humans , Receptors, Neuropeptide/metabolism , Neutrophils/metabolism , Receptors, G-Protein-Coupled/genetics , Receptors, G-Protein-Coupled/metabolism , Anti-Inflammatory Agents
9.
Cell ; 173(1): 140-152.e15, 2018 03 22.
Article in English | MEDLINE | ID: mdl-29570993

ABSTRACT

Hunger and pain are two competing signals that individuals must resolve to ensure survival. However, the neural processes that prioritize conflicting survival needs are poorly understood. We discovered that hunger attenuates behavioral responses and affective properties of inflammatory pain without altering acute nociceptive responses. This effect is centrally controlled, as activity in hunger-sensitive agouti-related protein (AgRP)-expressing neurons abrogates inflammatory pain. Systematic analysis of AgRP projection subpopulations revealed that the neural processing of hunger and inflammatory pain converge in the hindbrain parabrachial nucleus (PBN). Strikingly, activity in AgRP → PBN neurons blocked the behavioral response to inflammatory pain as effectively as hunger or analgesics. The anti-nociceptive effect of hunger is mediated by neuropeptide Y (NPY) signaling in the PBN. By investigating the intersection between hunger and pain, we have identified a neural circuit that mediates competing survival needs and uncovered NPY Y1 receptor signaling in the PBN as a target for pain suppression.


Subject(s)
Neurons/metabolism , Pain/pathology , Agouti-Related Protein/genetics , Agouti-Related Protein/metabolism , Analgesics, Opioid/pharmacology , Animals , Anti-Inflammatory Agents, Non-Steroidal/pharmacology , Behavior, Animal/drug effects , Diet , Feeding Behavior/drug effects , Formaldehyde/toxicity , Glutamate Decarboxylase/metabolism , Locomotion/drug effects , Mice , Mice, Inbred C57BL , Morphine/pharmacology , Neurons/drug effects , Pain/etiology , Pain/metabolism , Parabrachial Nucleus/drug effects , Parabrachial Nucleus/metabolism , Receptors, Neuropeptide Y/metabolism , Signal Transduction
10.
Immunity ; 56(7): 1515-1532.e9, 2023 07 11.
Article in English | MEDLINE | ID: mdl-37437538

ABSTRACT

The nervous system is critical for intestinal homeostasis and function, but questions remain regarding its impact on gut immune defense. By screening the major neurotransmitters of C. elegans, we found that γ-aminobutyric acid (GABA) deficiency enhanced susceptibility to pathogenic Pseudomonas aeruginosa PA14 infection. GABAergic signaling between enteric neurons and intestinal smooth muscle promoted gut defense in a PMK-1/p38-dependent, but IIS/DAF-16- and DBL-1/TGF-ß-independent, pathway. Transcriptomic profiling revealed that the neuropeptide, FLP-6, acted downstream of enteric GABAergic signaling. Further data determined that FLP-6 was expressed and secreted by intestinal smooth muscle cells and functioned as a paracrine molecule on the intestinal epithelium. FLP-6 suppressed the transcription factors ZIP-10 and KLF-1 that worked in parallel and converged to the PMK-1/p38 pathway in the intestinal epithelia for innate immunity and gut defense. Collectively, these findings uncover an enteric neuron-muscle-epithelium axis that may be evolutionarily conserved in higher organisms.


Subject(s)
Caenorhabditis elegans , Neurons , Animals , Muscle, Smooth , Signal Transduction , Immunity, Innate
11.
Physiol Rev ; 103(2): 1565-1644, 2023 04 01.
Article in English | MEDLINE | ID: mdl-36454715

ABSTRACT

Calcitonin gene-related peptide (CGRP) is a neuropeptide with diverse physiological functions. Its two isoforms (α and ß) are widely expressed throughout the body in sensory neurons as well as in other cell types, such as motor neurons and neuroendocrine cells. CGRP acts via at least two G protein-coupled receptors that form unusual complexes with receptor activity-modifying proteins. These are the CGRP receptor and the AMY1 receptor; in rodents, additional receptors come into play. Although CGRP is known to produce many effects, the precise molecular identity of the receptor(s) that mediates CGRP effects is seldom clear. Despite the many enigmas still in CGRP biology, therapeutics that target the CGRP axis to treat or prevent migraine are a bench-to-bedside success story. This review provides a contextual background on the regulation and sites of CGRP expression and CGRP receptor pharmacology. The physiological actions of CGRP in the nervous system are discussed, along with updates on CGRP actions in the cardiovascular, pulmonary, gastrointestinal, immune, hematopoietic, and reproductive systems and metabolic effects of CGRP in muscle and adipose tissues. We cover how CGRP in these systems is associated with disease states, most notably migraine. In this context, we discuss how CGRP actions in both the peripheral and central nervous systems provide a basis for therapeutic targeting of CGRP in migraine. Finally, we highlight potentially fertile ground for the development of additional therapeutics and combinatorial strategies that could be designed to modulate CGRP signaling for migraine and other diseases.


Subject(s)
Calcitonin Gene-Related Peptide , Migraine Disorders , Humans , Calcitonin Gene-Related Peptide/metabolism , Calcitonin Gene-Related Peptide/therapeutic use , Receptors, Calcitonin Gene-Related Peptide/metabolism , Migraine Disorders/drug therapy , Migraine Disorders/metabolism , Central Nervous System/metabolism , Motor Neurons
12.
Annu Rev Neurosci ; 42: 1-26, 2019 07 08.
Article in English | MEDLINE | ID: mdl-30735460

ABSTRACT

Peripheral endocrine output relies on either direct or feed-forward multi-order command from the hypothalamus. Efficient coding of endocrine responses is made possible by the many neuronal cell types that coexist in intercalated hypothalamic nuclei and communicate through extensive synaptic connectivity. Although general anatomical and neurochemical features of hypothalamic neurons were described during the past decades, they have yet to be reconciled with recently discovered molecular classifiers and neurogenetic function determination. By interrogating magnocellular as well as parvocellular dopamine, GABA, glutamate, and phenotypically mixed neurons, we integrate available information at the molecular, cellular, network, and endocrine output levels to propose a framework for the comprehensive classification of hypothalamic neurons. Simultaneously, we single out putative neuronal subclasses for which future research can fill in existing gaps of knowledge to rationalize cellular diversity through function-determinant molecular marks in the hypothalamus.


Subject(s)
Hypothalamus/cytology , Neurons/classification , Animals , Connectome , Humans , Hypothalamic Hormones/analysis , Nerve Net/ultrastructure , Neurons/cytology , Neurons/metabolism , Neurotransmitter Agents/analysis , Peptide Hormones/analysis , Single-Cell Analysis
13.
Immunity ; 49(1): 93-106.e7, 2018 07 17.
Article in English | MEDLINE | ID: mdl-29958804

ABSTRACT

There is a growing body of research on the neural control of immunity and inflammation. However, it is not known whether the nervous system can regulate the production of inflammatory myeloid cells from hematopoietic progenitor cells in disease conditions. Myeloid cell numbers in diabetic patients were strongly correlated with plasma concentrations of norepinephrine, suggesting the role of sympathetic neuronal activation in myeloid cell production. The spleens of diabetic patients and mice contained higher numbers of tyrosine hydroxylase (TH)-expressing leukocytes that produced catecholamines. Granulocyte macrophage progenitors (GMPs) expressed the ß2 adrenergic receptor, a target of catecholamines. Ablation of splenic sympathetic neuronal signaling using surgical, chemical, and genetic approaches diminished GMP proliferation and myeloid cell development. Finally, mice lacking TH-producing leukocytes had reduced GMP proliferation, resulting in diminished myelopoiesis. Taken together, our study demonstrates that catecholamines produced by leukocytes and sympathetic nerve termini promote GMP proliferation and myeloid cell development.


Subject(s)
Diabetes Mellitus/physiopathology , Granulocyte-Macrophage Progenitor Cells/cytology , Granulocyte-Macrophage Progenitor Cells/metabolism , Myelopoiesis , Neuroimmunomodulation , Sympathetic Nervous System/metabolism , Adrenergic beta-2 Receptor Antagonists/pharmacology , Animals , Cell Proliferation/drug effects , Diabetes Mellitus/blood , Disease Models, Animal , Female , Humans , Leukocytes/enzymology , Leukocytes/metabolism , Male , Mice , Myeloid Cells/cytology , Myelopoiesis/drug effects , Neuroimmunomodulation/drug effects , Norepinephrine/blood , Signal Transduction/drug effects , Spleen/cytology , Spleen/innervation , Spleen/metabolism , Sympathetic Nervous System/drug effects
14.
Proc Natl Acad Sci U S A ; 121(30): e2319958121, 2024 Jul 23.
Article in English | MEDLINE | ID: mdl-39008673

ABSTRACT

Neuropeptides (NPs) and their cognate receptors are critical effectors of diverse physiological processes and behaviors. We recently reported of a noncanonical function of the Drosophila Glucose-6-Phosphatase (G6P) gene in a subset of neurosecretory cells in the central nervous system that governs systemic glucose homeostasis in food-deprived flies. Here, we show that G6P-expressing neurons define six groups of NP-secreting cells, four in the brain and two in the thoracic ganglion. Using the glucose homeostasis phenotype as a screening tool, we find that neurons located in the thoracic ganglion expressing FMRFamide NPs (FMRFaG6P neurons) are necessary and sufficient to maintain systemic glucose homeostasis in starved flies. We further show that G6P is essential in FMRFaG6P neurons for attaining a prominent Golgi apparatus and secreting NPs efficiently. Finally, we establish that G6P-dependent FMRFa signaling is essential for the build-up of glycogen stores in the jump muscle which expresses the receptor for FMRFamides. We propose a general model in which the main role of G6P is to counteract glycolysis in peptidergic neurons for the purpose of optimizing the intracellular environment best suited for the expansion of the Golgi apparatus, boosting release of NPs and enhancing signaling to respective target tissues expressing cognate receptors.


Subject(s)
Drosophila melanogaster , FMRFamide , Glucose-6-Phosphatase , Glycogen , Neurons , Neuropeptides , Signal Transduction , Animals , Drosophila melanogaster/metabolism , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , FMRFamide/metabolism , Glucose/metabolism , Glucose-6-Phosphatase/metabolism , Glucose-6-Phosphatase/genetics , Glycogen/metabolism , Golgi Apparatus/metabolism , Homeostasis , Muscles/metabolism , Neurons/metabolism , Neuropeptides/metabolism , Neuropeptides/genetics
15.
Proc Natl Acad Sci U S A ; 121(11): e2308067121, 2024 Mar 12.
Article in English | MEDLINE | ID: mdl-38442160

ABSTRACT

Circadian clocks impose daily periodicities to behavior, physiology, and metabolism. This control is mediated by a central clock and by peripheral clocks, which are synchronized to provide the organism with a unified time through mechanisms that are not fully understood. Here, we characterized in Drosophila the cellular and molecular mechanisms involved in coupling the central clock and the peripheral clock located in the prothoracic gland (PG), which together control the circadian rhythm of emergence of adult flies. The time signal from central clock neurons is transmitted via small neuropeptide F (sNPF) to neurons that produce the neuropeptide Prothoracicotropic Hormone (PTTH), which is then translated into daily oscillations of Ca2+ concentration and PTTH levels. PTTH signaling is required at the end of metamorphosis and transmits time information to the PG through changes in the expression of the PTTH receptor tyrosine kinase (RTK), TORSO, and of ERK phosphorylation, a key component of PTTH transduction. In addition to PTTH, we demonstrate that signaling mediated by other RTKs contributes to the rhythmicity of emergence. Interestingly, the ligand to one of these receptors (Pvf2) plays an autocrine role in the PG, which may explain why both central brain and PG clocks are required for the circadian gating of emergence. Our findings show that the coupling between the central and the PG clock is unexpectedly complex and involves several RTKs that act in concert and could serve as a paradigm to understand how circadian clocks are coordinated.


Subject(s)
Blood Group Antigens , Circadian Clocks , Animals , Circadian Clocks/genetics , Drosophila , Signal Transduction , Receptor Protein-Tyrosine Kinases/genetics , Phosphorylation , Vascular Endothelial Growth Factors
16.
Proc Natl Acad Sci U S A ; 121(41): e2409097121, 2024 Oct 08.
Article in English | MEDLINE | ID: mdl-39365813

ABSTRACT

The only known peptide-gated ion channels-FaNaCs/WaNaCs and HyNaCs-belong to different clades of the DEG/ENaC family. FaNaCs are activated by the short neuropeptide FMRFamide, and HyNaCs by Hydra RFamides, which are not evolutionarily related to FMRFamide. The FMRFamide-binding site in FaNaCs was recently identified in a cleft atop the large extracellular domain. However, this cleft is not conserved in HyNaCs. Here, we combined molecular modeling and site-directed mutagenesis and identified a putative binding pocket for Hydra-RFamides in the extracellular domain of the heterotrimeric HyNaC2/3/5. This pocket localizes to only one of the three subunit interfaces, indicating that this trimeric ion channel binds a single peptide ligand. We engineered an unnatural amino acid at the putative binding pocket entrance, which allowed covalent tethering of Hydra RFamide to the channel, thereby trapping the channel in an open conformation. The identified pocket localizes to the same region as the acidic pocket of acid-sensing ion channels (ASICs), which binds peptide ligands. The pocket in HyNaCs is less acidic, and both electrostatic and hydrophobic interactions contribute to peptide binding. Collectively, our results reveal a conserved ligand-binding pocket in HyNaCs and ASICs and indicate independent evolution of peptide-binding cavities in the two subgroups of peptide-gated ion channels.


Subject(s)
Acid Sensing Ion Channels , Animals , Binding Sites , Acid Sensing Ion Channels/metabolism , Acid Sensing Ion Channels/genetics , Acid Sensing Ion Channels/chemistry , Hydra/metabolism , Hydra/genetics , Peptides/metabolism , Peptides/chemistry , Models, Molecular , FMRFamide/metabolism , Protein Binding , Amino Acid Sequence , Sea Anemones/metabolism , Sea Anemones/genetics , Mutagenesis, Site-Directed , Neuropeptides/metabolism , Neuropeptides/genetics , Neuropeptides/chemistry
17.
Proc Natl Acad Sci U S A ; 120(15): e2221493120, 2023 04 11.
Article in English | MEDLINE | ID: mdl-37011192

ABSTRACT

Food intake is regulated by internal state. This function is mediated by hormones and neuropeptides, which are best characterized in popular model species. However, the evolutionary origins of such feeding-regulating neuropeptides are poorly understood. We used the jellyfish Cladonema to address this question. Our combined transcriptomic, behavioral, and anatomical approaches identified GLWamide as a feeding-suppressing peptide that selectively inhibits tentacle contraction in this jellyfish. In the fruit fly Drosophila, myoinhibitory peptide (MIP) is a related satiety peptide. Surprisingly, we found that GLWamide and MIP were fully interchangeable in these evolutionarily distant species for feeding suppression. Our results suggest that the satiety signaling systems of diverse animals share an ancient origin.


Subject(s)
Cnidaria , Neuropeptides , Scyphozoa , Animals , Appetite , Neuropeptides/genetics , Neuropeptides/chemistry , Peptides , Drosophila/physiology
18.
Proc Natl Acad Sci U S A ; 120(3): e2117547120, 2023 01 17.
Article in English | MEDLINE | ID: mdl-36623187

ABSTRACT

Social disturbance in interpersonal relationships is the primary source of stress in humans. Spexin (SPX, SPX1a in cichlid), an evolutionarily conserved neuropeptide with diverse physiological functions, is up-regulated in the brain during chronic social defeat stress in teleost. On the other hand, repeated exposure to social stress can lead to dysregulation of the monoaminergic system and increase the vulnerability of developing depression. Since dysfunction of the serotonin (5-hydroxytryptamine, 5-HT) system is associated with social stress and the pathophysiology of depression, the present study investigated the regulatory relationship between the central 5-HT system and SPX1a in the male teleost, Nile tilapia (Oreochromis niloticus). To identify stress factors that regulate SPX1a gene expression, cortisol, dexamethasone (DEX), and 5-HT were used to treat tilapia brain primary cultures. Our study shows cortisol and DEX treatment had no effect on SPX1a gene expression, but SPX1a gene expression was down-regulated following 5-HT treatment. Anatomical localization showed a close association between 5-HT immunoreactive projections and SPX1a neurons in the semicircular torus. In addition, 5-HT receptors (5-HT2B) were expressed in SPX1a neurons. SPX1a immunoreactive neurons and SPX1a gene expression were significantly increased in socially defeated tilapia. On the other hand, citalopram (antidepressant, 5-HT antagonist) treatment to socially defeated tilapia normalized SPX1a gene expression to control levels. Taken together, the present study shows that 5-HT is an upstream regulator of SPX1a and that the inhibited 5-HT activates SPX1a during social defeat.


Subject(s)
Peptide Hormones , Serotonin , Social Defeat , Tilapia , Animals , Male , Brain/metabolism , Hydrocortisone/pharmacology , Hydrocortisone/metabolism , Serotonin/metabolism , Tilapia/genetics , Peptide Hormones/metabolism
19.
Proc Natl Acad Sci U S A ; 120(7): e2213682120, 2023 02 14.
Article in English | MEDLINE | ID: mdl-36745816

ABSTRACT

Oxytocin (OT) is a prominent regulator of many aspects of mammalian social behavior and stored in large dense-cored vesicles (LDCVs) in hypothalamic neurons. It is released in response to activity-dependent Ca2+ influx, but is also dependent on Ca2+ release from intracellular stores, which primes LDCVs for exocytosis. Despite its importance, critical aspects of the Ca2+-dependent mechanisms of its secretion remain to be identified. Here we show that lysosomes surround dendritic LDCVs, and that the direct activation of endolysosomal two-pore channels (TPCs) provides the critical Ca2+ signals to prime OT release by increasing the releasable LDCV pool without directly stimulating exocytosis. We observed a dramatic reduction in plasma OT levels in TPC knockout mice, and impaired secretion of OT from the hypothalamus demonstrating the importance of priming of neuropeptide vesicles for activity-dependent release. Furthermore, we show that activation of type 1 metabotropic glutamate receptors sustains somatodendritic OT release by recruiting TPCs. The priming effect could be mimicked by a direct application of nicotinic acid adenine dinucleotide phosphate, the endogenous messenger regulating TPCs, or a selective TPC2 agonist, TPC2-A1-N, or blocked by the antagonist Ned-19. Mice lacking TPCs exhibit impaired maternal and social behavior, which is restored by direct OT administration. This study demonstrates an unexpected role for lysosomes and TPCs in controlling neuropeptide secretion, and in regulating social behavior.


Subject(s)
Calcium Channels , Oxytocin , Mice , Animals , Calcium Channels/metabolism , Oxytocin/metabolism , Calcium/metabolism , Mice, Knockout , Lysosomes/metabolism , NADP/metabolism , Calcium Signaling/physiology , Mammals/metabolism
20.
Proc Natl Acad Sci U S A ; 120(31): e2222095120, 2023 08.
Article in English | MEDLINE | ID: mdl-37487094

ABSTRACT

The locus coeruleus (LC) is a small nucleus in the pons from which ascending and descending projections innervate major parts of the central nervous system. Its major transmitter is norepinephrine (NE). This system is evolutionarily conserved, including in humans, and its functions are associated with wakefulness and related to disorders, such as depression. Here, we performed single-cell ribonucleic acid-sequencing (RNA-seq) to subdivide neurons in the LC (24 clusters in total) into 3 NE, 17 glutamate, and 5 γ-aminobutyric acid (GABA) subtypes, and to chart their neuropeptide, cotransmitter, and receptor profiles. We found that NE neurons expressed at least 19 neuropeptide transcripts, notably galanin (Gal) but not Npy, and >30 neuropeptide receptors. Among the galanin receptors, Galr1 was expressed in ~19% of NE neurons, as was also confirmed by in situ hybridization. Unexpectedly, Galr1 was highly expressed in GABA neurons surrounding the NE ensemble. Patch-clamp electrophysiology and cell-type-specific Ca2+-imaging using GCaMP6s revealed that a GalR1 agonist inhibits up to ~35% of NE neurons. This effect is direct and does not rely on feed-forward GABA inhibition. Our results define a role for the galanin system in NE functions, and a conceptual framework for the action of many other peptides and their receptors.


Subject(s)
Galanin , Peptide Hormones , Humans , Animals , Mice , Locus Coeruleus , Neurons , Glutamic Acid , Norepinephrine
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