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1.
Nature ; 594(7861): 94-99, 2021 06.
Article in English | MEDLINE | ID: mdl-34012116

ABSTRACT

Inflammation is a defence response to tissue damage that requires tight regulation in order to prevent impaired healing. Tissue-resident macrophages have a key role in tissue repair1, but the precise molecular mechanisms that regulate the balance between inflammatory and pro-repair macrophage responses during healing remain poorly understood. Here we demonstrate a major role for sensory neurons in promoting the tissue-repair function of macrophages. In a sunburn-like model of skin damage in mice, the conditional ablation of sensory neurons expressing the Gαi-interacting protein (GINIP) results in defective tissue regeneration and in dermal fibrosis. Elucidation of the underlying molecular mechanisms revealed a crucial role for the neuropeptide TAFA4, which is produced in the skin by C-low threshold mechanoreceptors-a subset of GINIP+ neurons. TAFA4 modulates the inflammatory profile of macrophages directly in vitro. In vivo studies in Tafa4-deficient mice revealed that TAFA4 promotes the production of IL-10 by dermal macrophages after UV-induced skin damage. This TAFA4-IL-10 axis also ensures the survival and maintenance of IL-10+TIM4+ dermal macrophages, reducing skin inflammation and promoting tissue regeneration. These results reveal a neuroimmune regulatory pathway driven by the neuropeptide TAFA4 that promotes the anti-inflammatory functions of macrophages and prevents fibrosis after tissue damage, and could lead to new therapeutic perspectives for inflammatory diseases.


Subject(s)
Cytokines/metabolism , Macrophages/metabolism , Regeneration , Sensory Receptor Cells/metabolism , Wound Healing , Animals , Cell Survival , Cytokines/deficiency , Disease Models, Animal , Female , Fibrosis/etiology , Fibrosis/metabolism , Fibrosis/pathology , Fibrosis/prevention & control , Inflammation/etiology , Inflammation/metabolism , Inflammation/pathology , Inflammation/prevention & control , Interleukin-10/biosynthesis , Interleukin-10/metabolism , Macrophages/radiation effects , Membrane Proteins/metabolism , Mice , Mice, Inbred C57BL , Sensory Receptor Cells/radiation effects , Skin/pathology , Skin/radiation effects , Sunburn/complications , Sunburn/etiology , Sunburn/metabolism , Sunburn/pathology , Ultraviolet Rays/adverse effects
2.
Brain Behav Immun ; 119: 750-766, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38710336

ABSTRACT

Chronic pain is a heavily debilitating condition and a huge socio-economic burden, with no efficient treatment. Over the past decade, the gut microbiota has emerged as an important regulator of nervous system's health and disease states. Yet, its contribution to the pathogenesis of chronic somatic pain remains poorly documented. Here, we report that male but not female mice lacking Myosin1a (KO) raised under single genotype housing conditions (KO-SGH) are predisposed to develop chronic pain in response to a peripheral tissue injury. We further underscore the potential of MYO1A loss-of-function to alter the composition of the gut microbiota and uncover a functional connection between the vulnerability to chronic pain and the dysbiotic gut microbiota of KO-SGH males. As such, parental antibiotic treatment modifies gut microbiota composition and completely rescues the injury-induced pain chronicity in male KO-SGH offspring. Furthermore, in KO-SGH males, this dysbiosis is accompanied by a transcriptomic activation signature in the dorsal root ganglia (DRG) macrophage compartment, in response to tissue injury. We identify CD206+CD163- and CD206+CD163+ as the main subsets of DRG resident macrophages and show that both are long-lived and self-maintained and exhibit the capacity to monitor the vasculature. Consistently, in vivo depletion of DRG macrophages rescues KO-SGH males from injury-induced chronic pain underscoring a deleterious role for DRG macrophages in a Myo1a-loss-of function context. Together, our findings reveal gene-sex-microbiota interactions in determining the predisposition to injury-induced chronic pain and point-out DRG macrophages as potential effector cells.


Subject(s)
Chronic Pain , Dysbiosis , Ganglia, Spinal , Gastrointestinal Microbiome , Mice, Knockout , Myosin Type I , Animals , Female , Male , Mice , Chronic Pain/metabolism , Chronic Pain/microbiology , Dysbiosis/metabolism , Ganglia, Spinal/metabolism , Gastrointestinal Microbiome/physiology , Macrophages/metabolism , Mice, Inbred C57BL , Myosin Type I/metabolism
3.
Nat Immunol ; 10(1): 75-82, 2009 Jan.
Article in English | MEDLINE | ID: mdl-19029904

ABSTRACT

NKp46+CD3- natural killer lymphocytes isolated from blood, lymphoid organs, lung, liver and uterus can produce granule-dependent cytotoxicity and interferon-gamma. Here we identify in dermis, gut lamina propria and cryptopatches distinct populations of NKp46+CD3- cells with a diminished capacity to degranulate and produce interferon-gamma. In the gut, expression of the transcription factor RORgammat, which is involved in the development of lymphoid tissue-inducer cells, defined a previously unknown subset of NKp46+CD3- lymphocytes. Unlike RORgammat- lamina propria and dermis natural killer cells, gut RORgammat+NKp46+ cells produced interleukin 22. Our data show that lymphoid tissue-inducer cells and natural killer cells shared unanticipated similarities and emphasize the heterogeneity of NKp46+CD3- cells in innate immunity, lymphoid organization and local tissue repair.


Subject(s)
Dermis/immunology , Intestinal Mucosa/immunology , Natural Killer T-Cells/immunology , Receptors, Retinoic Acid/physiology , Receptors, Thyroid Hormone/physiology , Transcription Factors/physiology , Animals , CD3 Complex/metabolism , Cell Division , Humans , Interferon-gamma/biosynthesis , Interleukins/biosynthesis , Lymphocyte Activation/genetics , Mice , Mice, Inbred C57BL , Mice, Mutant Strains , Natural Cytotoxicity Triggering Receptor 1/immunology , Nuclear Receptor Subfamily 1, Group F, Member 3 , Peyer's Patches/immunology , Receptors, Retinoic Acid/genetics , Receptors, Thyroid Hormone/genetics , Transcription Factors/genetics , Interleukin-22
4.
EMBO J ; 30(14): 2934-47, 2011 Jun 17.
Article in English | MEDLINE | ID: mdl-21685873

ABSTRACT

The gut is a major barrier against microbes and encloses various innate lymphoid cells (ILCs), including two subsets expressing the natural cytotoxicity receptor NKp46. A subset of NKp46(+) cells expresses retinoic acid receptor-related orphan receptor γt (RORγt) and produces IL-22, like lymphoid tissue inducer (LTi) cells. Other NKp46(+) cells lack RORγt and produce IFN-γ, like conventional Natural Killer (cNK) cells. The identity, the regulation and the in vivo functions of gut NKp46(+) ILCs largely remain to be unravelled. Using pan-genomic profiling, we showed here that small intestine (SI) NKp46(+)RORγt(-) ILCs correspond to SI NK cells. Conversely, we identified a transcriptional programme conserved in fetal LTi cells and adult SI NKp46(+)RORγt(+) and NKp46(-)RORγt(+) ILCs. We also demonstrated that the IL-1ß/IL-1R1/MyD88 pathway, but not the commensal flora, drove IL-22 production by NKp46(+)RORγt(+) ILCs. Finally, oral Listeria monocytogenes infection induced IFN-γ production in SI NK and IL-22 production in NKp46(+)RORγt(+) ILCs, but only IFN-γ contributed to control bacteria dissemination. NKp46(+) ILC heterogeneity is thus associated with subset-specific transcriptional programmes and effector functions that govern their implication in gut innate immunity.


Subject(s)
Cell Lineage , Immunity, Innate , Lymphocytes/metabolism , Lymphocytes/microbiology , Natural Cytotoxicity Triggering Receptor 1/metabolism , Receptors, Retinoic Acid/metabolism , Animals , Female , Flow Cytometry , Intestine, Small/immunology , Intestine, Small/metabolism , Intestine, Small/microbiology , Listeria monocytogenes/isolation & purification , Listeriosis/metabolism , Listeriosis/microbiology , Lymphocytes/immunology , Mice , Mice, Inbred C57BL , Mice, Knockout , Myeloid Differentiation Factor 88/physiology , Natural Cytotoxicity Triggering Receptor 1/genetics , Receptors, Interleukin-1/physiology , Receptors, Retinoic Acid/genetics , Tissue Distribution , Retinoic Acid Receptor gamma
5.
Proc Natl Acad Sci U S A ; 108(45): 18324-9, 2011 Nov 08.
Article in English | MEDLINE | ID: mdl-22021440

ABSTRACT

NKp46 is a cell surface receptor expressed on natural killer (NK) cells, on a minute subset of T cells, and on a population of innate lymphoid cells that produce IL-22 and express the transcription factor retinoid-related orphan receptor (ROR)-γt, referred to as NK cell receptor (NKR)(+)ROR-γt(+) cells. Here we describe Nkp46(iCre) knock-in mice in which the gene encoding the improved Cre (iCre) recombinase was inserted into the Nkp46 locus. This mouse was used to noninvasively trace cells expressing NKp46 in vivo. Fate mapping experiments demonstrated the stable expression of NKp46 on NK cells and allowed a reappraisal of the sequential steps of NK cell maturation. NKp46 genetic tracing also showed that gut NKR(+)ROR-γt(+) and NK cells represent two distinct lineages. In addition, the genetic heterogeneity of liver NK cells was evidenced. Finally, Nkp46(iCre) mice also represent a unique mouse model of conditional mutagenesis specifically in NKp46(+) cells, paving the way for further developments in the biology of NKp46(+) NK, T, and NKR(+)ROR-γt(+) cells.


Subject(s)
Antigens, Ly/metabolism , Lymphoid Tissue/metabolism , Natural Cytotoxicity Triggering Receptor 1/metabolism , T-Lymphocytes/metabolism , Animals , Antigens, Ly/genetics , Cell Differentiation , Cell Lineage , Intestines/cytology , Liver/cytology , Lymphoid Tissue/cytology , Mice , Mice, Transgenic , Natural Cytotoxicity Triggering Receptor 1/genetics
6.
Trends Neurosci ; 46(8): 640-653, 2023 08.
Article in English | MEDLINE | ID: mdl-37277277

ABSTRACT

The nervous and immune systems have classically been studied as separate entities, but there is now mounting evidence for bidirectional communication between them in various organs, including the skin. The skin is an epithelial tissue with important sensory and immune functions. The skin is highly innervated with specialized subclasses of primary sensory neurons (PSNs) that can be in contact with skin-resident innate and adaptive immune cells. Neuroimmune crosstalk in the skin, through interactions of PSNs with the immune system, has been shown to regulate host cutaneous defense, inflammation, and tissue repair. Here, we review current knowledge about the cellular and molecular mechanisms involved in this crosstalk, as depicted via mouse model studies. We highlight the ways in which different immune challenges engage specialized subsets of PSNs to produce mediators acting on immune cell subsets and modulating their function.


Subject(s)
Immunity, Innate , Skin , Mice , Animals , Sensory Receptor Cells , Immune System , Inflammation , Adaptive Immunity
7.
Sci Rep ; 13(1): 9515, 2023 06 12.
Article in English | MEDLINE | ID: mdl-37308519

ABSTRACT

Mounting evidence shows sex-related differences in the experience of pain with women suffering more from chronic pain than men. Yet, our understanding of the biological basis underlying those differences remains incomplete. Using an adapted model of formalin-induced chemical/inflammatory pain, we report here that in contrast to male mice, females distinctly display two types of nocifensive responses to formalin, distinguishable by the duration of the interphase. Females in proestrus and in metestrus exhibited respectively a short-lasting and a long-lasting interphase, underscoring the influence of the estrus cycle on the duration of the interphase, rather than the transcriptional content of the dorsal horn of the spinal cord (DHSC). Additionally, deep RNA-sequencing of DHSC showed that formalin-evoked pain was accompanied by a male-preponderant enrichment in genes associated with the immune modulation of pain, revealing an unanticipated contribution of neutrophils. Taking advantage of the male-enriched transcript encoding the neutrophil associated protein Lipocalin 2 (Lcn2) and using flow cytometry, we confirmed that formalin triggered the recruitment of LCN2-expressing neutrophils in the pia mater of spinal meninges, preferentially in males. Our data consolidate the contribution of female estrus cycle to pain perception and provide evidence supporting a sex-specific immune regulation of formalin-evoked pain.


Subject(s)
Chronic Pain , Spinal Cord , Female , Male , Humans , Animals , Mice , Pain Perception , Oncogenes , Formaldehyde
8.
Curr Opin Immunol ; 77: 102212, 2022 08.
Article in English | MEDLINE | ID: mdl-35644113

ABSTRACT

With its unique structure and large numbers of immune cells, the skin is one of the body's first lines of defense against attacks from the environment. It is also innervated by a dense meshwork of primary sensory neurons, including nociceptive fibers specializing in the detection and transduction of harmful stimuli that can elicit pain. This tissue is, therefore, a key organ for studies of neuroimmune interactions and their impact on the host response to environmental challenges. Neuroimmune crosstalk in the skin is crucial for the regulation of inflammation, tissue repair, and host defense against pathogens. A better understanding of this regulation would facilitate the identification of new molecular targets for the treatment of skin diseases.


Subject(s)
Sensory Receptor Cells , Skin , Humans , Inflammation , Neuroimmunomodulation/physiology , Pain , Sensory Receptor Cells/physiology
9.
Cell Rep ; 40(1): 111034, 2022 07 05.
Article in English | MEDLINE | ID: mdl-35793632

ABSTRACT

Striatal cholinergic interneurons (CINs) respond to salient or reward prediction-related stimuli after conditioning with brief pauses in their activity, implicating them in learning and action selection. This pause is lost in animal models of Parkinson's disease. How this signal regulates the striatal network remains an open question. Here, we examine the impact of CIN firing inhibition on glutamatergic transmission between the cortex and the medium spiny neurons expressing dopamine D1 receptor (D1 MSNs). Brief interruption of CIN activity has no effect in control conditions, whereas it increases glutamatergic responses in D1 MSNs after dopamine denervation. This potentiation depends upon M4 muscarinic receptor and protein kinase A. Decreasing CIN firing by optogenetics/chemogenetics in vivo partially rescues long-term potentiation in MSNs and motor learning deficits in parkinsonian mice. Our findings demonstrate that the control exerted by CINs on corticostriatal transmission and striatal-dependent motor-skill learning depends on the integrity of dopaminergic inputs.


Subject(s)
Interneurons , Parkinsonian Disorders , Animals , Cholinergic Agents/metabolism , Corpus Striatum/metabolism , Dopamine/metabolism , Interneurons/metabolism , Mice , Neurons/metabolism , Parkinsonian Disorders/metabolism
10.
Sci Rep ; 11(1): 13691, 2021 07 01.
Article in English | MEDLINE | ID: mdl-34211067

ABSTRACT

Integrating -omics data with biological networks such as protein-protein interaction networks is a popular and useful approach to interpret expression changes of genes in changing conditions, and to identify relevant cellular pathways, active subnetworks or network communities. Yet, most -omics data integration tools are restricted to static networks and therefore cannot easily be used for analyzing time-series data. Determining regulations or exploring the network structure over time requires time-dependent networks which incorporate time as one component in their structure. Here, we present a method to project time-series data on sequential layers of a multilayer network, thus creating a temporal multilayer network (tMLN). We implemented this method as a Cytoscape app we named TimeNexus. TimeNexus allows to easily create, manage and visualize temporal multilayer networks starting from a combination of node and edge tables carrying the information on the temporal network structure. To allow further analysis of the tMLN, TimeNexus creates and passes on regular Cytoscape networks in form of static versions of the tMLN in three different ways: (i) over the entire set of layers, (ii) over two consecutive layers at a time, (iii) or on one single layer at a time. We combined TimeNexus with the Cytoscape apps PathLinker and AnatApp/ANAT to extract active subnetworks from tMLNs. To test the usability of our app, we applied TimeNexus together with PathLinker or ANAT on temporal expression data of the yeast cell cycle and were able to identify active subnetworks relevant for different cell cycle phases. We furthermore used TimeNexus on our own temporal expression data from a mouse pain assay inducing hindpaw inflammation and detected active subnetworks relevant for an inflammatory response to injury, including immune response, cell stress response and regulation of apoptosis. TimeNexus is freely available from the Cytoscape app store at https://apps.cytoscape.org/apps/TimeNexus .

11.
Cell Rep ; 37(4): 109884, 2021 10 26.
Article in English | MEDLINE | ID: mdl-34706225

ABSTRACT

Pain, whether acute or persistent, is a serious medical problem worldwide. However, its management remains unsatisfactory, and new analgesic molecules are required. We show here that TAFA4 reverses inflammatory, postoperative, and spared nerve injury (SNI)-induced mechanical hypersensitivity in male and female mice. TAFA4 requires functional low-density lipoprotein receptor-related proteins (LRPs) because their inhibition by RAP (receptor-associated protein) dose-dependently abolishes its antihypersensitive actions. SNI selectively decreases A-type K+ current (IA) in spinal lamina II outer excitatory interneurons (L-IIo ExINs) and induces a concomitant increase in IA and decrease in hyperpolarization-activated current (Ih) in lamina II inner inhibitory interneurons (L-IIi InhINs). Remarkably, SNI-induced ion current alterations in both IN subtypes were rescued by TAFA4 in an LRP-dependent manner. We provide insights into the mechanism by which TAFA4 reverses injury-induced mechanical hypersensitivity by restoring normal spinal neuron activity and highlight the considerable potential of TAFA4 as a treatment for injury-induced mechanical pain.


Subject(s)
Cytokines/metabolism , Hyperalgesia/metabolism , Pain/metabolism , Potassium/metabolism , Receptors, LDL/metabolism , Spinal Cord Dorsal Horn/metabolism , Animals , CHO Cells , Cricetulus , HEK293 Cells , Humans , Mice , RAW 264.7 Cells
12.
Cell Rep ; 30(3): 602-610.e6, 2020 01 21.
Article in English | MEDLINE | ID: mdl-31968239

ABSTRACT

C-LTMRs are known to convey affective aspects of touch and to modulate injury-induced pain in humans and mice. However, a role for these neurons in temperature sensation has been suggested, but not fully demonstrated. Here, we report that deletion of C-low-threshold mechanoreceptor (C-LTMR)-expressed bhlha9 causes impaired thermotaxis behavior and exacerbated formalin-evoked pain in male, but not female, mice. Positive modulators of GABAA receptors failed to relieve inflammatory formalin pain and failed to decrease the frequency of spontaneous excitatory post-synaptic currents (sEPSCs) selectively in bhlha9 knockout (KO) males. This could be explained by a drastic change in the GABA content of lamina II inner inhibitory interneurons contacting C-LTMR central terminals. Finally, C-LTMR-specific deep RNA sequencing revealed more genes differentially expressed in male than in female bhlha9 KO C-LTMRs. Our data consolidate the role of C-LTMRs in modulation of formalin pain and provide in vivo evidence of their role in the discriminative aspects of temperature sensation.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/deficiency , Pain/pathology , Sex Characteristics , Taxis Response , Animals , Basic Helix-Loop-Helix Transcription Factors/metabolism , Female , Formaldehyde , Ganglia, Spinal/pathology , Gene Expression Regulation , Interneurons/metabolism , Male , Mechanoreceptors/metabolism , Mice, Knockout , Spinal Cord/pathology , Synaptic Transmission , gamma-Aminobutyric Acid/metabolism
13.
Sci Rep ; 9(1): 3112, 2019 02 28.
Article in English | MEDLINE | ID: mdl-30816223

ABSTRACT

The T-type calcium channel, Cav3.2, is necessary for acute pain perception, as well as mechanical and cold allodynia in mice. Being found throughout sensory pathways, from excitatory primary afferent neurons up to pain matrix structures, it is a promising target for analgesics. In our study, Cav3.2 was detected in ~60% of the lamina II (LII) neurons of the spinal cord, a site for integration of sensory processing. It was co-expressed with Tlx3 and Pax2, markers of excitatory and inhibitory interneurons, as well as nNOS, calretinin, calbindin, PKCγ and not parvalbumin. Non-selective T-type channel blockers slowed the inhibitory but not the excitatory transmission in LII neurons. Furthermore, T-type channel blockers modified the intrinsic properties of LII neurons, abolishing low-threshold activated currents, rebound depolarizations, and blunting excitability. The recording of Cav3.2-positive LII neurons, after intraspinal injection of AAV-DJ-Cav3.2-mcherry, showed that their intrinsic properties resembled those of the global population. However, Cav3.2 ablation in the dorsal horn of Cav3.2GFP-Flox KI mice after intraspinal injection of AAV-DJ-Cav3.2-Cre-IRES-mcherry, had drastic effects. Indeed, it (1) blunted the likelihood of transient firing patterns; (2) blunted the likelihood and the amplitude of rebound depolarizations, (3) eliminated action potential pairing, and (4) remodeled the kinetics of the action potentials. In contrast, the properties of Cav3.2-positive neurons were only marginally modified in Cav3.1 knockout mice. Overall, in addition to their previously established roles in the superficial spinal cord and in primary afferent neurons, Cav3.2 channel appear to be necessary for specific, significant and multiple controls of LII neuron excitability.


Subject(s)
Calcium Channels, T-Type/metabolism , Neurons/cytology , Spinal Nerves/cytology , Action Potentials , Animals , Hyperalgesia/metabolism , Mice , Neurons/metabolism , Patch-Clamp Techniques , Spinal Nerves/metabolism , Synaptic Transmission
15.
Med Sci (Paris) ; 34(5): 432-438, 2018 May.
Article in French | MEDLINE | ID: mdl-29900846

ABSTRACT

Upon infection, our ability to eliminate pathogens depends mostly on our immune system. However, recent studies have shown that the nervous system plays a role in controlling infectious and inflammatory processes. Bidirectional functional interactions are established between the nervous and immune systems to protect tissue integrity. The skin is one of the first lines of defense against external threats and has a particularly well-developed neuroimmune system. Challenges to the skin activate neurons specialized in pain perception, which regulate immune cell functions and recruitment to tissues. We illustrate the importance of such neuroimmune regulation here, through the example of several skin diseases.


Subject(s)
Immunity/physiology , Neuroimmunomodulation/physiology , Pain/etiology , Skin Physiological Phenomena , Skin/immunology , Skin/innervation , Animals , Cell Communication/immunology , Humans , Immune System/physiopathology , Pain/immunology , Pain/physiopathology , Skin Physiological Phenomena/immunology
16.
Sci Rep ; 7: 43493, 2017 02 27.
Article in English | MEDLINE | ID: mdl-28240741

ABSTRACT

Primary sensory neurons are heterogeneous by myriad of molecular criteria. However, the functional significance of this remarkable heterogeneity is just emerging. We precedently described the GINIP+ neurons as a new subpopulation of non peptidergic C-fibers encompassing the free nerve ending cutaneous MRGPRD+ neurons and C-LTMRs. Using our recently generated ginip mouse model, we have been able to selectively ablate the GINIP+ neurons and assess their functional role in the somatosensation. We found that ablation of GINIP+ neurons affected neither the molecular contents nor the central projections of the spared neurons. GINIP-DTR mice exhibited impaired sensation to gentle mechanical stimuli applied to their hairy skin and had normal responses to noxious mechanical stimuli applied to their glabrous skin, under acute and injury-induced conditions. Importantly, loss of GINIP+ neurons significantly altered formalin-evoked first pain and drastically suppressed the second pain response. Given that MRGPRD+ neurons have been shown to be dispensable for formalin-evoked pain, our study suggest that C-LTMRs play a critical role in the modulation of formalin-evoked pain.


Subject(s)
Gene Expression , Intracellular Signaling Peptides and Proteins/genetics , Pain/etiology , Sensory Receptor Cells/metabolism , Animals , Biomarkers , Disease Models, Animal , Formaldehyde/adverse effects , Ganglia, Spinal/drug effects , Ganglia, Spinal/metabolism , Ganglia, Spinal/physiopathology , Gene Knockdown Techniques , Genotype , Male , Mice , Mice, Knockout , Organ Specificity/genetics , Pain/metabolism , Pain/physiopathology , Physical Stimulation , Sensory Thresholds , Temperature
17.
Genom Data ; 5: 132-5, 2015 Sep.
Article in English | MEDLINE | ID: mdl-26484241

ABSTRACT

The skin is the largest sensory organ that is densely innervated by highly specialized sensory neurons allowing the detection of a wide range of stimulations including light touch, temperature, itch and pain. Our knowledge of the sets of genes instructing the functional specialization of sensory neurons is just emerging. In a previous study, we have identified a new Gαi inhibitory interacting protein (GINIP) that marks two distinct subsets of skin-innervating sensory neurons conveying noxious and pleasant touch: the MRGPRD-expressing C-fibers specialized in noxious touch and the TH(+)/TAFA4(+)/V-GLUT3(+) C-Low Threshold MechanoReceptors (C-LTMRs), part of neurons processing pleasant touch. In the recent study published by Reynders et al. (2015), we took advantage of GINIP(mCherry) mouse model in combination with Isolectin B4 (IB4) cell surface labeling and fluorescence activated cell sorting (FACS). We successfully purified MRGPRD(+), C-LTMRs and a heterogeneous population of sensory neurons and subjected their RNA contents RNA-deep sequencing (RNA-seq). The subsequent RNA-seq experiment led to the generation of unique sets of data representative of pure transcriptome profiles of each subset. As a result of this pioneering approach, we established the combinatorial expression of the sets of genes that could dictate the functional specializations of MRGPRD(+) neurons and C-LTMRs. Herein we provide details regarding the experimental design, the quality controls and statistical analysis of the data deposited at Gene Expression Omnibus under the accession number GSE64091.

18.
Cell Rep ; 10(6): 1007-1019, 2015 Feb 17.
Article in English | MEDLINE | ID: mdl-25683706

ABSTRACT

Cutaneous C-unmyelinated MRGPRD+ free nerve endings and C-LTMRs innervating hair follicles convey two opposite aspects of touch sensation: a sensation of pain and a sensation of pleasant touch. The molecular mechanisms underlying these diametrically opposite functions are unknown. Here, we used a mouse model that genetically marks C-LTMRs and MRGPRD+ neurons in combination with fluorescent cell surface labeling, flow cytometry, and RNA deep-sequencing technology (RNA-seq). Cluster analysis of RNA-seq profiles of the purified neuronal subsets revealed 486 and 549 genes differentially expressed in MRGPRD-expressing neurons and C-LTMRs, respectively. We validated 48 MRGPD- and 68 C-LTMRs-enriched genes using a triple-staining approach, and the Cav3.3 channel, found to be exclusively expressed in C-LTMRs, was validated using electrophysiology. Our study greatly expands the molecular characterization of C-LTMRs and suggests that this particular population of neurons shares some molecular features with Aß and Aδ low-threshold mechanoreceptors.

19.
PLoS One ; 9(6): e99828, 2014.
Article in English | MEDLINE | ID: mdl-24925072

ABSTRACT

The discovery of heat-sensitive Transient Receptor Potential Vanilloid ion channels (ThermoTRPVs) greatly advanced our molecular understanding of acute and injury-evoked heat temperature sensation. ThermoTRPV channels are activated by partially overlapping temperatures ranging from warm to supra-threshold noxious heat. TRPV1 is activated by noxious heat temperature whereas TRPV3 can be activated by warm as well as noxious heat temperatures. Loss-of-function studies in single TRPV1 and TRPV3 knock-out mice have shown that heat temperature sensation is not completely abolished suggesting functional redundancies among these two channels and highlighting the need of a detailed analysis of TRPV1::TRPV3 double knock-out mice (V1V3dKO) which is hampered by the close proximity of the loci expressing the two channels. Here we describe the generation of a novel mouse model in which trpv1 and trpv3 genes have been inactivated using bacterial artificial chromosome (BAC)-based homologous recombination in embryonic stem cells. In these mice, using classical thermosensory tests such hot plate, tail flick and the thermotaxis gradient paradigms, we confirm that TRPV1 is the master channel for sensing noxious heat temperatures and identify a cooperative role of TRPV1 and TRPV3 for sensing a well-defined window of acute moderate heat temperature. Using the dynamic hot plate assay, we unravel an intriguing and unexpected pronounced escape behavior in TRPV1 knock-out mice that was attenuated in the V1V3dKO. Together, and in agreement with the temperature activation overlap between TRPV1 and TRPV3 channels, our data provide in vivo evidence of a cooperative role between skin-derived TRPV3 and primary sensory neurons-enriched TRPV1 in modulation of moderate and noxious heat temperature sensation and suggest that other mechanisms are required for heat temperature sensation.


Subject(s)
Hot Temperature , Somatosensory Disorders/genetics , TRPV Cation Channels/genetics , Thermosensing/genetics , Animals , Avoidance Learning , Behavior, Animal , Female , Mice , Mice, Inbred C57BL , Mice, Knockout , Skin/metabolism , Somatosensory Disorders/metabolism , Somatosensory Disorders/pathology , TRPV Cation Channels/metabolism
20.
Cell Rep ; 5(2): 378-88, 2013 Oct 31.
Article in English | MEDLINE | ID: mdl-24139797

ABSTRACT

C-low-threshold mechanoreceptors (C-LTMRs) are unique among C-unmyelinated primary sensory neurons. These neurons convey two opposite aspects of touch sensation: a sensation of pleasantness, and a sensation of injury-induced mechanical pain. Here, we show that TAFA4 is a specific marker of C-LTMRs. Genetic labeling in combination with electrophysiological recordings show that TAFA4+ neurons have intrinsic properties of mechano-nociceptors. TAFA4-null mice exhibit enhanced mechanical and chemical hypersensitivity following inflammation and nerve injury as well as increased excitability of spinal cord lamina IIi neurons, which could be reversed by intrathecal or bath application of recombinant TAFA4 protein. In wild-type C57/Bl6 mice, intrathecal administration of TAFA4 strongly reversed carrageenan-induced mechanical hypersensitivity, suggesting a potent analgesic role of TAFA4 in pain relief. Our data provide insights into how C-LTMR-derived TAFA4 modulates neuronal excitability and controls the threshold of somatic sensation.


Subject(s)
Cytokines/metabolism , Nociceptors/metabolism , Pain/physiopathology , Stress, Mechanical , Animals , Carrageenan/toxicity , Cytokines/genetics , Cytokines/pharmacology , Mice , Mice, Inbred C57BL , Mice, Knockout , Neurons, Afferent/drug effects , Neurons, Afferent/physiology , Pain/metabolism , Pain Threshold/drug effects , Patch-Clamp Techniques , Recombinant Proteins/biosynthesis , Recombinant Proteins/genetics , Recombinant Proteins/pharmacology
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