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1.
Biomed Res ; 45(3): 125-133, 2024.
Article in English | MEDLINE | ID: mdl-38839355

ABSTRACT

Clary sage essential oil (CSEO) is utilized in perfumery, aromatherapy, and skincare. Linalyl acetate (LA), a primary component of CSEO, possesses sedative, anxiolytic, and analgesic properties. However, the mechanism of its analgesic action is not clearly understood. Transient receptor potential ankyrin 1 (TRPA1) channel, a non-selective cation channel, is mainly expressed in sensory neurons and serves as a sensor of various irritants. In this study, we investigated the effects of LA on TRPA1 channel using heterologous expression system and isolated sensory neurons. To detect channel activity, we employed Ca2+ imaging and the whole-cell patch-clamp technique. The analgesic action of LA was measured in a pain-related behavioral mouse model. In cells that heterologously expressed TRPA1, LA diminished [Ca2+]i and current responses to allylisothiocyanate (AITC) and carvacrol: exogenous TRPA1 agonists, and the inhibitory effects were more pronounced for the former than for the latter. Moreover, LA suppressed [Ca2+] i and current responses to PGJ2: an endogenous TRPA1 agonist. Similar inhibitory actions were observed in native TRPA1 channels expressed in mouse sensory neurons. Furthermore, LA diminished PGJ2-induced nociceptive behaviors in mice. These findings suggest that analgesic effects of LA exert through inhibition of nociceptive TRPA1, making it a potential candidate for novel analgesic development.


Subject(s)
Analgesics , Monoterpenes , TRPA1 Cation Channel , Animals , TRPA1 Cation Channel/metabolism , TRPA1 Cation Channel/genetics , Mice , Analgesics/pharmacology , Monoterpenes/pharmacology , Humans , Male , Calcium/metabolism , Sensory Receptor Cells/metabolism , Sensory Receptor Cells/drug effects , HEK293 Cells , Disease Models, Animal , Pain/drug therapy , Pain/metabolism
2.
Cell Commun Signal ; 22(1): 307, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38831315

ABSTRACT

BACKGROUND: Interleukin 24 (IL-24) has been implicated in the nociceptive signaling. However, direct evidence and the precise molecular mechanism underlying IL-24's role in peripheral nociception remain unclear. METHODS: Using patch clamp recording, molecular biological analysis, immunofluorescence labeling, siRNA-mediated knockdown approach and behavior tests, we elucidated the effects of IL-24 on sensory neuronal excitability and peripheral pain sensitivity mediated by T-type Ca2+ channels (T-type channels). RESULTS: IL-24 enhances T-type channel currents (T-currents) in trigeminal ganglion (TG) neurons in a reversible and dose-dependent manner, primarily by activating the interleukin-22 receptor 1 (IL-22R1). Furthermore, we found that the IL-24-induced T-type channel response is mediated through tyrosine-protein kinase Lyn, but not its common downstream target JAK1. IL-24 application significantly activated protein kinase A; this effect was independent of cAMP and prevented by Lyn antagonism. Inhibition of PKA prevented the IL-24-induced T-current response, whereas inhibition of protein kinase C or MAPK kinases had no effect. Functionally, IL-24 increased TG neuronal excitability and enhanced pain sensitivity to mechanical stimuli in mice, both of which were suppressed by blocking T-type channels. In a trigeminal neuropathic pain model induced by chronic constriction injury of the infraorbital nerve, inhibiting IL-22R1 signaling alleviated mechanical allodynia, which was reversed by blocking T-type channels or knocking down Cav3.2. CONCLUSION: Our findings reveal that IL-24 enhances T-currents by stimulating IL-22R1 coupled to Lyn-dependent PKA signaling, leading to TG neuronal hyperexcitability and pain hypersensitivity. Understanding the mechanism of IL-24/IL-22R1 signaling in sensory neurons may pave the way for innovative therapeutic strategies in pain management.


Subject(s)
Calcium Channels, T-Type , Cyclic AMP-Dependent Protein Kinases , Receptors, Interleukin , Sensory Receptor Cells , Signal Transduction , Trigeminal Ganglion , src-Family Kinases , Animals , Calcium Channels, T-Type/metabolism , Calcium Channels, T-Type/genetics , src-Family Kinases/metabolism , Cyclic AMP-Dependent Protein Kinases/metabolism , Trigeminal Ganglion/metabolism , Male , Sensory Receptor Cells/metabolism , Sensory Receptor Cells/drug effects , Sensory Receptor Cells/physiology , Receptors, Interleukin/metabolism , Mice , Mice, Inbred C57BL , Interleukins/metabolism
3.
PLoS Comput Biol ; 20(5): e1012043, 2024 May.
Article in English | MEDLINE | ID: mdl-38739640

ABSTRACT

Sensory neurons reconstruct the world from action potentials (spikes) impinging on them. To effectively transfer information about the stimulus to the next processing level, a neuron needs to be able to adapt its working range to the properties of the stimulus. Here, we focus on the intrinsic neural properties that influence information transfer in cortical neurons and how tightly their properties need to be tuned to the stimulus statistics for them to be effective. We start by measuring the intrinsic information encoding properties of putative excitatory and inhibitory neurons in L2/3 of the mouse barrel cortex. Excitatory neurons show high thresholds and strong adaptation, making them fire sparsely and resulting in a strong compression of information, whereas inhibitory neurons that favour fast spiking transfer more information. Next, we turn to computational modelling and ask how two properties influence information transfer: 1) spike-frequency adaptation and 2) the shape of the IV-curve. We find that a subthreshold (but not threshold) adaptation, the 'h-current', and a properly tuned leak conductance can increase the information transfer of a neuron, whereas threshold adaptation can increase its working range. Finally, we verify the effect of the IV-curve slope in our experimental recordings and show that excitatory neurons form a more heterogeneous population than inhibitory neurons. These relationships between intrinsic neural features and neural coding that had not been quantified before will aid computational, theoretical and systems neuroscientists in understanding how neuronal populations can alter their coding properties, such as through the impact of neuromodulators. Why the variability of intrinsic properties of excitatory neurons is larger than that of inhibitory ones is an exciting question, for which future research is needed.


Subject(s)
Action Potentials , Adaptation, Physiological , Models, Neurological , Animals , Mice , Action Potentials/physiology , Adaptation, Physiological/physiology , Computational Biology , Computer Simulation , Neurons/physiology , Sensory Receptor Cells/physiology , Somatosensory Cortex/physiology
4.
J Comp Neurol ; 532(6): e25627, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38813969

ABSTRACT

During development, cell-intrinsic and cell-extrinsic factors play important roles in neuronal differentiation; however, the underlying mechanisms in nonmammalian species remain largely unknown. We here investigated the mechanisms responsible for the differentiation of sensory input neurons in the chick entopallium, which receives its primary visual input via the tectofugal pathway from the nucleus rotundus. The results obtained revealed that input neurons in the entopallium expressed Potassium Voltage-Gated Channel Subfamily H Member 5 (KCNH5/EAG2) mRNA from embryonic day (E) 11. On the other hand, the onset of protein expression was E20, which was 1 day before hatching. We confirm that entopallium input neurons in chicks were generated during early neurogenesis in the lateral and ventral ventricular zones. Notably, neurons derived from the lateral (LP) and ventral pallium (VP) exhibited a spatially distinct distribution along the rostro-caudal axis. We further demonstrated that the expression of EAG2 was directly regulated by input activity from thalamic axons. Collectively, the present results reveal that thalamic input activity is essential for specifying input neurons among LP- and VP-derived early-generated neurons in the developing chick entopallium.


Subject(s)
Neurogenesis , Thalamus , Animals , Chick Embryo , Neurogenesis/physiology , Thalamus/embryology , Thalamus/cytology , Thalamus/metabolism , Sensory Receptor Cells/physiology , Sensory Receptor Cells/metabolism , Sensory Receptor Cells/cytology , Chickens , Cell Differentiation/physiology , Gene Expression Regulation, Developmental/physiology
5.
Trends Immunol ; 45(5): 381-396, 2024 May.
Article in English | MEDLINE | ID: mdl-38697871

ABSTRACT

Recent studies have uncovered a new role for sensory neurons in influencing mammalian host immunity, challenging conventional notions of the nervous and immune systems as separate entities. In this review we delve into this groundbreaking paradigm of neuroimmunology and discuss recent scientific evidence for the impact of sensory neurons on host responses against a wide range of pathogens and diseases, encompassing microbial infections and cancers. These valuable insights enhance our understanding of the interactions between the nervous and immune systems, and also pave the way for developing candidate innovative therapeutic interventions in immune-mediated diseases highlighting the importance of this interdisciplinary research field.


Subject(s)
Sensory Receptor Cells , Humans , Animals , Sensory Receptor Cells/immunology , Sensory Receptor Cells/physiology , Neuroimmunomodulation , Immunity , Host-Pathogen Interactions/immunology , Neoplasms/immunology , Neoplasms/therapy
6.
Nat Commun ; 15(1): 4273, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38769103

ABSTRACT

Sex-specific traits and behaviors emerge during development by the acquisition of unique properties in the nervous system of each sex. However, the genetic events responsible for introducing these sex-specific features remain poorly understood. In this study, we create a comprehensive gene expression atlas of pure populations of hermaphrodites and males of the nematode Caenorhabditis elegans across development. We discover numerous differentially expressed genes, including neuronal gene families like transcription factors, neuropeptides, and G protein-coupled receptors. We identify INS-39, an insulin-like peptide, as a prominent male-biased gene expressed specifically in ciliated sensory neurons. We show that INS-39 serves as an early-stage male marker, facilitating the effective isolation of males in high-throughput experiments. Through complex and sex-specific regulation, ins-39 plays pleiotropic sexually dimorphic roles in various behaviors, while also playing a shared, dimorphic role in early life stress. This study offers a comparative sexual and developmental gene expression database for C. elegans. Furthermore, it highlights conserved genes that may underlie the sexually dimorphic manifestation of different human diseases.


Subject(s)
Caenorhabditis elegans Proteins , Caenorhabditis elegans , Gene Expression Regulation, Developmental , Gene Regulatory Networks , Sex Characteristics , Animals , Caenorhabditis elegans/genetics , Caenorhabditis elegans/growth & development , Caenorhabditis elegans/metabolism , Male , Female , Caenorhabditis elegans Proteins/genetics , Caenorhabditis elegans Proteins/metabolism , Neuropeptides/genetics , Neuropeptides/metabolism , Sensory Receptor Cells/metabolism , Transcription Factors/metabolism , Transcription Factors/genetics , Gene Expression Profiling
7.
J Histochem Cytochem ; 72(5): 275-287, 2024 05.
Article in English | MEDLINE | ID: mdl-38725415

ABSTRACT

The TRPA1 ion channel is a sensitive detector of reactive chemicals, found primarily on sensory neurons. The phenotype exhibited by mice lacking TRPA1 suggests its potential as a target for pharmacological intervention. Antibody-based detection for distribution analysis is a standard technique. In the case of TRPA1, however, there is no antibody with a plausible validation in knockout animals or functional studies, but many that have failed in this regard. To this end we employed the single molecule in situ hybridization technique RNAscope on sensory neurons immediately after detection of calcium responses to the TRPA1 agonist allyl isothiocyanate. There is a clearly positive correlation between TRPA1 calcium imaging and RNAscope detection (R = 0.43), although less than what might have been expected. Thus, the technique of choice should be carefully considered to suit the research question. The marginal correlation between TRPV1 RNAscope and the specific agonist capsaicin indicates that such validation is advisable for every RNAscope target. Given the recent description of a long-awaited TRPA1 reporter mouse, TRPA1 RNAscope detection might still have its use cases, for detection of RNA at particular sites, for example, defined structurally or by other molecular markers.


Subject(s)
Calcium , Isothiocyanates , TRPA1 Cation Channel , Animals , TRPA1 Cation Channel/metabolism , TRPA1 Cation Channel/genetics , Isothiocyanates/pharmacology , Mice , Calcium/metabolism , Transient Receptor Potential Channels/metabolism , Transient Receptor Potential Channels/genetics , Transient Receptor Potential Channels/agonists , Capsaicin/pharmacology , In Situ Hybridization , TRPV Cation Channels/metabolism , TRPV Cation Channels/genetics , TRPV Cation Channels/agonists , Sensory Receptor Cells/metabolism , Sensory Receptor Cells/drug effects , Mice, Inbred C57BL , Calcium Channels/metabolism , Calcium Channels/genetics , Male
8.
Sci Transl Med ; 16(746): eadk8198, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38718132

ABSTRACT

The phosphate modification of drugs is a common chemical strategy to increase solubility and allow for parenteral administration. Unfortunately, phosphate modifications often elicit treatment- or dose-limiting pruritus through an unknown mechanism. Using unbiased high-throughput drug screens, we identified the Mas-related G protein-coupled receptor X4 (MRGPRX4), a primate-specific, sensory neuron receptor previously implicated in itch, as a potential target for phosphate-modified compounds. Using both Gq-mediated calcium mobilization and G protein-independent GPCR assays, we found that phosphate-modified compounds potently activate MRGPRX4. Furthermore, a humanized mouse model expressing MRGPRX4 in sensory neurons exhibited robust phosphomonoester prodrug-evoked itch. To characterize and confirm this interaction, we further determined the structure of MRGPRX4 in complex with a phosphate-modified drug through single-particle cryo-electron microscopy (cryo-EM) and identified critical amino acid residues responsible for the binding of the phosphate group. Together, these findings explain how phosphorylated drugs can elicit treatment-limiting itch and identify MRGPRX4 as a potential therapeutic target to suppress itch and to guide future drug design.


Subject(s)
Disease Models, Animal , Pruritus , Receptors, G-Protein-Coupled , Animals , Pruritus/metabolism , Pruritus/chemically induced , Pruritus/pathology , Pruritus/drug therapy , Humans , Receptors, G-Protein-Coupled/metabolism , Mice , HEK293 Cells , Phosphorylation/drug effects , Phosphates/metabolism , Sensory Receptor Cells/metabolism , Sensory Receptor Cells/drug effects , Prodrugs/pharmacology , Cryoelectron Microscopy
9.
Genetics ; 227(2)2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38785371

ABSTRACT

Since the days of Ramón y Cajal, the vast diversity of neuronal and particularly dendrite morphology has been used to catalog neurons into different classes. Dendrite morphology varies greatly and reflects the different functions performed by different types of neurons. Significant progress has been made in our understanding of how dendrites form and the molecular factors and forces that shape these often elaborately sculpted structures. Here, we review work in the nematode Caenorhabditis elegans that has shed light on the developmental mechanisms that mediate dendrite morphogenesis with a focus on studies investigating ciliated sensory neurons and the highly elaborated dendritic trees of somatosensory neurons. These studies, which combine time-lapse imaging, genetics, and biochemistry, reveal an intricate network of factors that function both intrinsically in dendrites and extrinsically from surrounding tissues. Therefore, dendrite morphogenesis is the result of multiple tissue interactions, which ultimately determine the shape of dendritic arbors.


Subject(s)
Caenorhabditis elegans , Dendrites , Morphogenesis , Animals , Caenorhabditis elegans/genetics , Caenorhabditis elegans/growth & development , Caenorhabditis elegans/cytology , Dendrites/metabolism , Morphogenesis/genetics , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans Proteins/genetics , Sensory Receptor Cells/metabolism , Sensory Receptor Cells/cytology
10.
Immunity ; 57(4): 815-831, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38599172

ABSTRACT

The sensory nervous system possesses the ability to integrate exogenous threats and endogenous signals to mediate downstream effector functions. Sensory neurons have been shown to activate or suppress host defense and immunity against pathogens, depending on the tissue and disease state. Through this lens, pro- and anti-inflammatory neuroimmune effector functions can be interpreted as evolutionary adaptations by host or pathogen. Here, we discuss recent and impactful examples of neuroimmune circuitry that regulate tissue homeostasis, autoinflammation, and host defense. Apparently paradoxical or conflicting reports in the literature also highlight the complexity of neuroimmune interactions that may depend on tissue- and microbe-specific cues. These findings expand our understanding of the nuanced mechanisms and the greater context of sensory neurons in innate immunity.


Subject(s)
Immunity, Innate , Sensory Receptor Cells , Immunity, Innate/physiology , Neuroimmunomodulation/physiology , Homeostasis
11.
Stem Cell Res Ther ; 15(1): 99, 2024 Apr 05.
Article in English | MEDLINE | ID: mdl-38581069

ABSTRACT

BACKGROUND: Human induced pluripotent stem cell (iPSC)-derived peripheral sensory neurons present a valuable tool to model human diseases and are a source for applications in drug discovery and regenerative medicine. Clinically, peripheral sensory neuropathies can result in maladies ranging from a complete loss of pain to severe painful neuropathic disorders. Sensory neurons are located in the dorsal root ganglion and are comprised of functionally diverse neuronal types. Low efficiency, reproducibility concerns, variations arising due to genetic factors and time needed to generate functionally mature neuronal populations from iPSCs remain key challenges to study human nociception in vitro. Here, we report a detailed functional characterization of iPSC-derived sensory neurons with an accelerated differentiation protocol ("Anatomic" protocol) compared to the most commonly used small molecule approach ("Chambers" protocol). Anatomic's commercially available RealDRG™ were further characterized for both functional and expression phenotyping of key nociceptor markers. METHODS: Multiple iPSC clones derived from different reprogramming methods, genetics, age, and somatic cell sources were used to generate sensory neurons. Manual patch clamp was used to functionally characterize both control and patient-derived neurons. High throughput techniques were further used to demonstrate that RealDRGs™ derived from the Anatomic protocol are amenable to high throughput technologies for disease modelling. RESULTS: The Anatomic protocol rendered a purer culture without the use of mitomycin C to suppress non-neuronal outgrowth, while Chambers differentiations yielded a mix of cell types. Chambers protocol results in predominantly tonic firing when compared to Anatomic protocol. Patient-derived nociceptors displayed higher frequency firing compared to control subject with both, Chambers and Anatomic differentiation approaches, underlining their potential use for clinical phenotyping as a disease-in-a-dish model. RealDRG™ sensory neurons show heterogeneity of nociceptive markers indicating that the cells may be useful as a humanized model system for translational studies. CONCLUSIONS: We validated the efficiency of two differentiation protocols and their potential application for functional assessment and thus understanding the disease mechanisms from patients suffering from pain disorders. We propose that both differentiation methods can be further exploited for understanding mechanisms and development of novel treatments in pain disorders.


Subject(s)
Induced Pluripotent Stem Cells , Humans , Induced Pluripotent Stem Cells/metabolism , Reproducibility of Results , Sensory Receptor Cells/metabolism , Pain/metabolism , Cell Differentiation/physiology
12.
Genesis ; 62(2): e23597, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38590121

ABSTRACT

Sensory signals detected by olfactory sensory organs are critical regulators of animal behavior. An accessory olfactory organ, the vomeronasal organ, detects cues from other animals and plays a pivotal role in intra- and inter-species interactions in mice. However, how ethologically relevant cues control mouse behavior through approximately 350 vomeronasal sensory receptor proteins largely remains elusive. The type 2 vomeronasal receptor-A4 (V2R-A4) subfamily members have been repeatedly detected from vomeronasal sensory neurons responsive to predator cues, suggesting a potential role of this receptor subfamily as a sensor for predators. This review focuses on this intriguing subfamily, delving into its receptor functions and genetic characteristics.


Subject(s)
Olfactory Bulb , Vomeronasal Organ , Mice , Animals , Olfactory Bulb/physiology , Sensory Receptor Cells/metabolism , Vomeronasal Organ/metabolism
13.
J Comp Neurol ; 532(4): e25613, 2024 04.
Article in English | MEDLINE | ID: mdl-38625817

ABSTRACT

How the gastrointestinal tract communicates with the brain, via sensory nerves, is of significant interest for our understanding of human health and disease. Enterochromaffin (EC) cells in the gut mucosa release a variety of neurochemicals, including the largest quantity of 5-hydroxytryptamine (5-HT) in the body. How 5-HT and other substances released from EC cells activate sensory nerve endings in the gut wall remains a major unresolved mystery. We used in vivo anterograde tracing from nodose ganglia to determine the spatial relationship between 5-HT synthesizing and peptide-YY (PYY)-synthesizing EC cells and their proximity to vagal afferent nerve endings that project to the mucosa of mouse small intestine. The shortest mean distances between single 5-HT- and PYY-synthesizing EC cells and the nearest vagal afferent nerve endings in the mucosa were 33.1 ± 14.4 µm (n = 56; N = 6) and 70.3 ± 32.3 µm (n = 16; N = 6). No morphological evidence was found to suggest that 5-HT- or PYY-containing EC cells form close morphological associations with vagal afferents endings, or varicose axons of passage. The large distances between EC cells and vagal afferent endings are many hundreds of times greater than those known to underlie synaptic transmission in the nervous system (typically 10-15 nm). Taken together, the findings lead to the inescapable conclusion that communication between 5-HT-containing EC cells and vagal afferent nerve endings in the mucosa of the mouse small intestinal occurs in a paracrine fashion, via diffusion. New and Noteworthy None of the findings here are consistent with a view that close physical contacts occur between 5-HT-containing EC cells and vagal afferent nerve endings in mouse small intestine. Rather, the findings suggest that gut-brain communication between EC cells and vagal afferent endings occurs via passive diffusion. The morphological data presented do not support the view that EC cells are physically close enough to vagal afferent endings to communicate via fast synaptic transmission.


Subject(s)
Serotonin , Vagus Nerve , Mice , Humans , Animals , Vagus Nerve/physiology , Sensory Receptor Cells , Brain , Intestine, Small , Nerve Endings , Neurons, Afferent/physiology
14.
Cell Rep ; 43(4): 114014, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38568807

ABSTRACT

The transmembrane channel-like (TMC) protein family comprises eight members, with TMC1 and TMC2 being extensively studied. This study demonstrates substantial co-expression of TMC7 with the mechanosensitive channel Piezo2 in somatosensory neurons. Genetic deletion of TMC7 in primary sensory ganglia neurons in vivo enhances sensitivity in both physiological and pathological mechanosensory transduction. This deletion leads to an increase in proportion of rapidly adapting (RA) currents conducted by Piezo2 in dorsal root ganglion (DRG) neurons and accelerates RA deactivation kinetics. In HEK293 cells expressing both proteins, TMC7 significantly suppresses the current amplitudes of co-expressed Piezo2. Our findings reveal that TMC7 and Piezo2 exhibit physical interactions, and both proteins also physically interact with cytoskeletal ß-actin. We hypothesize that TMC7 functions as an inhibitory modulator of Piezo2 in DRG neurons, either through direct inhibition or by disrupting the transmission of mechanical forces from the cytoskeleton to the channel.


Subject(s)
Ganglia, Spinal , Ion Channels , Mechanotransduction, Cellular , Sensory Receptor Cells , Humans , Sensory Receptor Cells/metabolism , Animals , Ion Channels/metabolism , Ion Channels/genetics , Ganglia, Spinal/metabolism , HEK293 Cells , Mice , Membrane Proteins/metabolism , Membrane Proteins/genetics , Mice, Inbred C57BL , Actins/metabolism
15.
PLoS Pathog ; 20(4): e1011635, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38626267

ABSTRACT

Influenza A virus (IAV) is a common respiratory pathogen and a global cause of significant and often severe morbidity. Although inflammatory immune responses to IAV infections are well described, little is known about how neuroimmune processes contribute to IAV pathogenesis. In the present study, we employed surgical, genetic, and pharmacological approaches to manipulate pulmonary vagal sensory neuron innervation and activity in the lungs to explore potential crosstalk between pulmonary sensory neurons and immune processes. Intranasal inoculation of mice with H1N1 strains of IAV resulted in stereotypical antiviral lung inflammation and tissue pathology, changes in breathing, loss of body weight and other clinical signs of severe IAV disease. Unilateral cervical vagotomy and genetic ablation of pulmonary vagal sensory neurons had a moderate effect on the pulmonary inflammation induced by IAV infection, but significantly worsened clinical disease presentation. Inhibition of pulmonary vagal sensory neuron activity via inhalation of the charged sodium channel blocker, QX-314, resulted in a moderate decrease in lung pathology, but again this was accompanied by a paradoxical worsening of clinical signs. Notably, vagal sensory ganglia neuroinflammation was induced by IAV infection and this was significantly potentiated by QX-314 administration. This vagal ganglia hyperinflammation was characterized by alterations in IAV-induced host defense gene expression, increased neuropeptide gene and protein expression, and an increase in the number of inflammatory cells present within the ganglia. These data suggest that pulmonary vagal sensory neurons play a role in the regulation of the inflammatory process during IAV infection and suggest that vagal neuroinflammation may be an important contributor to IAV pathogenesis and clinical presentation. Targeting these pathways could offer therapeutic opportunities to treat IAV-induced morbidity and mortality.


Subject(s)
Influenza A Virus, H1N1 Subtype , Orthomyxoviridae Infections , Sensory Receptor Cells , Vagus Nerve , Animals , Mice , Vagus Nerve/virology , Vagus Nerve/pathology , Orthomyxoviridae Infections/virology , Orthomyxoviridae Infections/pathology , Orthomyxoviridae Infections/immunology , Sensory Receptor Cells/virology , Sensory Receptor Cells/pathology , Lung/virology , Lung/pathology , Mice, Inbred C57BL , Male , Female , Influenza, Human/virology
16.
Cell Rep ; 43(4): 114058, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38614084

ABSTRACT

Proteasomes are critical for peripheral nervous system (PNS) function. Here, we investigate mammalian PNS proteasomes and reveal the presence of the neuronal membrane proteasome (NMP). We show that specific inhibition of the NMP on distal nerve fibers innervating the mouse hind paw leads to reduction in mechanical and pain sensitivity. Through investigating PNS NMPs, we demonstrate their presence on the somata and proximal and distal axons of a subset of dorsal root ganglion (DRG) neurons. Single-cell RNA sequencing experiments reveal that the NMP-expressing DRGs are primarily MrgprA3+ and Cysltr2+. NMP inhibition in DRG cultures leads to cell-autonomous and non-cell-autonomous changes in Ca2+ signaling induced by KCl depolarization, αß-meATP, or the pruritogen histamine. Taken together, these data support a model whereby NMPs are expressed on a subset of somatosensory DRGs to modulate signaling between neurons of distinct sensory modalities and indicate the NMP as a potential target for controlling pain.


Subject(s)
Ganglia, Spinal , Proteasome Endopeptidase Complex , Sensory Receptor Cells , Animals , Sensory Receptor Cells/metabolism , Proteasome Endopeptidase Complex/metabolism , Ganglia, Spinal/metabolism , Mice , Mice, Inbred C57BL , Nociception , Male , Cell Membrane/metabolism , Calcium Signaling
17.
eNeuro ; 11(4)2024 Apr.
Article in English | MEDLINE | ID: mdl-38627062

ABSTRACT

Proprioception, the sense of limb and body position, is required to produce accurate and precise movements. Proprioceptive sensory neurons transmit muscle length and tension information to the spinal cord. The function of excitatory neurons in the intermediate spinal cord, which receive this proprioceptive information, remains poorly understood. Using genetic labeling strategies and patch-clamp techniques in acute spinal cord preparations in mice, we set out to uncover how two sets of spinal neurons, Clarke's column (CC) and Atoh1-lineage neurons, respond to electrical activity and how their inputs are organized. Both sets of neurons are located in close proximity in laminae V-VII of the thoracolumbar spinal cord and have been described to receive proprioceptive signals. We find that a majority of CC neurons have a tonic-firing type and express a distinctive hyperpolarization-activated current (Ih). Atoh1-lineage neurons, which cluster into two spatially distinct populations, are mostly a fading-firing type and display similar electrophysiological properties to each other, possibly due to their common developmental lineage. Finally, we find that CC neurons respond to stimulation of lumbar dorsal roots, consistent with prior knowledge that CC neurons receive hindlimb proprioceptive information. In contrast, using a combination of electrical stimulation, optogenetic stimulation, and transsynaptic rabies virus tracing, we find that Atoh1-lineage neurons receive heterogeneous, predominantly local thoracic inputs that include parvalbumin-lineage sensory afferents and local interneuron presynaptic inputs. Altogether, we find that CC and Atoh1-lineage neurons have distinct membrane properties and sensory input organization, representing different subcircuit modes of proprioceptive information processing.


Subject(s)
Proprioception , Spinal Cord , Animals , Proprioception/physiology , Spinal Cord/physiology , Spinal Cord/cytology , Basic Helix-Loop-Helix Transcription Factors/metabolism , Basic Helix-Loop-Helix Transcription Factors/genetics , Mice, Transgenic , Mice , Male , Female , Action Potentials/physiology , Sensory Receptor Cells/physiology , Patch-Clamp Techniques , Mice, Inbred C57BL , Thoracic Vertebrae
18.
Neuropharmacology ; 253: 109967, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38657946

ABSTRACT

Botulinum neurotoxin type A BoNT/A is used off-label as a third line therapy for neuropathic pain. However, the mechanism of action remains unclear. In recent years, the role of voltage-gated sodium channels (Nav) in neuropathic pain became evident and it was suggested that block of sodium channels by BoNT/A would contribute to its analgesic effect. We assessed sodium channel function in the presence of BoNT/A in heterologously expressed Nav1.7, Nav1.3, and the neuronal cell line ND7/23 by high throughput automated and manual patch-clamp. We used both the full protein and the isolated catalytic light chain LC/A for acute or long-term extracellular or intracellular exposure. To assess the toxin's effect in a human cellular system, we differentiated induced pluripotent stem cells (iPSC) into sensory neurons from a healthy control and a patient suffering from a hereditary neuropathic pain syndrome (inherited erythromelalgia) carrying the Nav1.7/p.Q875E-mutation and carried out multielectrode-array measurements. Both BoNT/A and the isolated catalytic light chain LC/A showed limited effects in heterologous expression systems and the neuronal cell line ND7/23. Spontaneous activity in iPSC derived sensory neurons remained unaltered upon BoNT/A exposure both in neurons from the healthy control and the mutation carrying patient. BoNT/A may not specifically be beneficial in pain syndromes linked to sodium channel variants. The favorable effects of BoNT/A in neuropathic pain are likely based on mechanisms other than sodium channel blockage and new approaches to understand BoNT/A's therapeutic effects are necessary.


Subject(s)
Botulinum Toxins, Type A , Induced Pluripotent Stem Cells , NAV1.7 Voltage-Gated Sodium Channel , Neuralgia , Humans , Neuralgia/drug therapy , Botulinum Toxins, Type A/pharmacology , Botulinum Toxins, Type A/therapeutic use , Induced Pluripotent Stem Cells/drug effects , NAV1.7 Voltage-Gated Sodium Channel/genetics , NAV1.7 Voltage-Gated Sodium Channel/metabolism , Analgesics/pharmacology , Animals , NAV1.3 Voltage-Gated Sodium Channel/genetics , Sensory Receptor Cells/drug effects , Sensory Receptor Cells/metabolism , HEK293 Cells , Cell Line
19.
Sci Rep ; 14(1): 9051, 2024 04 20.
Article in English | MEDLINE | ID: mdl-38643253

ABSTRACT

Neurons have the unique capacity to adapt output in response to changes in their environment. Within seconds, sensory nerve endings can become hypersensitive to stimuli in response to potentially damaging events. The underlying behavioral response is well studied, but several of the key signaling molecules that mediate sensory hypersensitivity remain unknown. We previously discovered that peripheral voltage-gated CaV2.2 channels in nerve endings in skin are essential for the rapid, transient increase in sensitivity to heat, but not to mechanical stimuli, that accompanies intradermal capsaicin. Here we report that the cytokine interleukin-1α (IL-1α), an alarmin, is necessary and sufficient to trigger rapid heat and mechanical hypersensitivity in skin. Of 20 cytokines screened, only IL-1α was consistently detected in hind paw interstitial fluid in response to intradermal capsaicin and, similar to behavioral sensitivity to heat, IL-1α levels were also dependent on peripheral CaV2.2 channel activity. Neutralizing IL-1α in skin significantly reduced capsaicin-induced changes in hind paw sensitivity to radiant heat and mechanical stimulation. Intradermal IL-1α enhances behavioral responses to stimuli and, in culture, IL-1α enhances the responsiveness of Trpv1-expressing sensory neurons. Together, our data suggest that IL-1α is the key cytokine that underlies rapid and reversible neuroinflammatory responses in skin.


Subject(s)
Hot Temperature , Interleukin-1alpha , Animals , Mice , Capsaicin/pharmacology , Interleukin-1alpha/metabolism , Sensory Receptor Cells , Skin , Calcium Channels, N-Type/metabolism
20.
Trends Immunol ; 45(5): 371-380, 2024 May.
Article in English | MEDLINE | ID: mdl-38653601

ABSTRACT

Peripheral sensory neurons recognize diverse noxious stimuli, including microbial products and allergens traditionally thought to be targets of the mammalian immune system. Activation of sensory neurons by these stimuli leads to pain and itch responses as well as the release of neuropeptides that interact with their cognate receptors expressed on immune cells, such as dendritic cells (DCs). Neuronal control of immune cell function through neuropeptide release not only affects local inflammatory responses but can impact adaptive immune responses through downstream effects on T cell priming. Numerous neuropeptide receptors are expressed by DCs but only a few have been characterized, presenting opportunities for further investigation of the pathways by which cutaneous neuroimmune interactions modulate host immunity.


Subject(s)
Sensory Receptor Cells , Skin , Humans , Animals , Sensory Receptor Cells/immunology , Sensory Receptor Cells/metabolism , Sensory Receptor Cells/physiology , Skin/immunology , Neuropeptides/metabolism , Neuropeptides/immunology , Dendritic Cells/immunology , Neuroimmunomodulation , Receptors, Neuropeptide/metabolism , Receptors, Neuropeptide/immunology
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