Neuronal sensitization

神经元致敏
  • 文章类型: Journal Article
    特应性皮炎(AD)是一种慢性、以瘙痒等感觉为特征的复发性免疫炎症性皮肤病,疼痛,和神经元超敏反应。这些感觉的潜在机制是多因素的,并且涉及几种皮肤成分之间的复杂串扰。这篇综述探讨了这些成分在特应性皮炎的病理生理学中的作用。在皮肤细胞间隙中,感觉神经通过多种介质和受体与角质形成细胞和免疫细胞相互作用。这些相互作用产生动作电位,将瘙痒和疼痛信号从周围神经系统传递到大脑。角质形成细胞,表皮中最丰富的细胞类型,是关键的效应细胞,触发与免疫细胞和感觉神经元的串扰引发瘙痒,疼痛,和炎症。在特应性皮炎中,角质形成细胞的聚丝蛋白表达减少,导致皮肤屏障减弱和皮肤pH值升高。成纤维细胞是真皮中的主要细胞类型,在特应性皮炎中,似乎减少角质形成细胞分化,进一步削弱皮肤屏障。成纤维细胞和肥大细胞促进炎症,而真皮树突状细胞似乎减轻炎症。炎性细胞因子和趋化因子在AD病发机制中起主要感化。2型免疫反应通常会产生瘙痒,1型和3型反应产生疼痛。2型反应和增加的皮肤pH有助于屏障功能障碍和促进皮肤微生物群的生态失调,引起金黄色葡萄球菌的增殖。总之,了解AD中皮肤成分之间的动态相互作用可以推动治疗方法的发展,以改善AD患者的生活质量.
    Atopic dermatitis (AD) is a chronic, relapsing immunoinflammatory skin condition characterized by sensations such as pruritis, pain, and neuronal hypersensitivity. The mechanisms underlying these sensations are multifactorial and involve complex crosstalk among several cutaneous components. This review explores the role these components play in the pathophysiology of atopic dermatitis. In the skin intercellular spaces, sensory nerves interact with keratinocytes and immune cells via myriad mediators and receptors. These interactions generate action potentials that transmit pruritis and pain signals from the peripheral nervous system to the brain. Keratinocytes, the most abundant cell type in the epidermis, are key effector cells, triggering crosstalk with immune cells and sensory neurons to elicit pruritis, pain, and inflammation. Filaggrin expression by keratinocytes is reduced in atopic dermatitis, causing a weakened skin barrier and elevated skin pH. Fibroblasts are the main cell type in the dermis and, in atopic dermatitis, appear to reduce keratinocyte differentiation, further weakening the skin barrier. Fibroblasts and mast cells promote inflammation while dermal dendritic cells appear to attenuate inflammation. Inflammatory cytokines and chemokines play a major role in AD pathogenesis. Type 2 immune responses typically generate pruritis, and the type 1 and type 3 responses generate pain. Type 2 responses and increased skin pH contribute to barrier dysfunction and promote dysbiosis of the skin microbiome, causing the proliferation of Staphyloccocus aureus. In conclusion, understanding the dynamic interactions between cutaneous components in AD could drive the development of therapies to improve the quality of life for patients with AD.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    特应性皮炎(AD)的主要特征是剧烈瘙痒,但超过40%的患者经历了伴随的皮肤疼痛。AD患者表现出相当大的体感畸变,包括神经对瘙痒刺激的敏感性增加(过度刺激),从无害刺激中感知瘙痒(异常),或从无害刺激(异常性疼痛)的疼痛感知。这篇综述总结了目前对特应性皮炎瘙痒和疼痛周围机制的异同的理解。这些不同但相互的感觉在周围神经系统中有许多相似之处,包括常见的介质(如5-羟色胺[5-HT],内皮素-1[ET-1],白细胞介素-33[IL-33],和胸腺基质淋巴细胞生成素[TSLP]),受体(如G蛋白偶联受体[GCPR]家族成员和toll样受体[TLRs]),和用于信号转导的离子通道(例如瞬时受体电位[TRP]阳离子通道的某些成员)。瘙痒反应神经元也对疼痛刺激敏感。然而,瘙痒和疼痛信号之间存在明显差异。例如,特异性免疫反应与疼痛(1型和/或3型细胞因子和某些趋化因子C-C[CCL2,CCL5]和C-X-C基序配体[CXCL])和瘙痒(2型细胞因子,包括IL-31和骨膜素)。TRP美司他丁通道TRPM2和TRPM3在疼痛中起作用,但在瘙痒中没有已知的作用。已知μ阿片受体的激活减轻疼痛但加剧瘙痒。了解瘙痒和疼痛机制之间的联系可能会为特应性皮炎中慢性疼痛和瘙痒的治疗提供新的见解。
    Atopic dermatitis (AD) is predominantly characterized by intense itching, but concomitant skin pain is experienced by more than 40% of patients. Patients with AD display considerable somatosensory aberrations, including increased nerve sensitivity to itch stimuli (hyperknesis), perception of itch from innocuous stimuli (alloknesis), or perception of pain from innocuous stimuli (allodynia). This review summarizes the current understanding of the similarities and differences in the peripheral mechanisms underlying itch and pain in AD. These distinct yet reciprocal sensations share many similarities in the peripheral nervous system, including common mediators (such as serotonin, endothelin-1, IL-33, and thymic stromal lymphopoietin), receptors (such as members of the G protein-coupled receptor family and Toll-like receptors), and ion channels for signal transduction (such as certain members of the transient receptor potential [TRP] cation channels). Itch-responding neurons are also sensitive to pain stimuli. However, there are distinct differences between itch and pain signaling. For example, specific immune responses are associated with pain (type 1 and/or type 3 cytokines and certain chemokine C-C [CCL2, CCL5] and C-X-C [CXCL] motif ligands) and itch (type 2 cytokines, including IL-31, and periostin). The TRP melastatin channels TRPM2 and TRPM3 have a role in pain but no known role in itch. Activation of μ-opioid receptors is known to alleviate pain but exacerbate itch. Understanding the connection between itch and pain mechanisms may offer new insights into the treatment of chronic pain and itch in AD.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

    求助全文

  • 文章类型: Journal Article
    苄达明是作为NSAID用于口腔护理药物制剂的活性药物化合物。除了它的抗炎作用,苄达明局部应用可有效缓解疼痛,表现出镇痛和麻醉特性。苄达明的作用机制已在炎症细胞类型和介质上进行了表征,突出了其抑制促炎介质合成和释放的能力。另一方面,苄达明作为神经元兴奋性调节剂的作用尚未得到充分探索。因此,我们研究了苄达明对原代培养DRG伤害感受器兴奋性和急性和慢性炎症致敏后的影响,作为评估伤害性感受器反应的模型。Benzdamine被证明可以有效地抑制神经元的基底兴奋性,降低其放电频率,增加流变碱和超极化后振幅。其效果是时间和剂量依赖性的。在更高的剂量下,苄达明诱导动作电位波长变化,降低其高度并略微增加其持续时间。此外,该化合物减少神经元急性和慢性炎症致敏。它抑制了由炎症混合物介导的神经元兴奋性,酸性pH或高外部KCl。值得注意的是,在炎症致敏条件下证明了更高的效力。这种作用可以通过调节炎症和/或神经元致敏信号级联反应或通过直接调节痛觉前刺激和动作电位激发引发离子通道来解释。显然,该化合物抑制Nav1.8通道,但对Kv7.2,Kv7.3,TRPV1和TRPA1没有影响。总之,获得的结果加强了苄达明的镇痛和抗炎作用,强调其对局部疼痛和炎症信号的作用方式。
    Benzydamine is an active pharmaceutical compound used in the oral care pharmaceutical preparation as NSAID. Beside from its anti-inflammatory action, benzydamine local application effectively reliefs pain showing analgesic and anaesthetic properties. Benzydamine mechanism of action has been characterized on inflammatory cell types and mediators highlighting its capacity to inhibit pro-inflammatory mediators\' synthesis and release. On the other hand, the role of benzydamine as neuronal excitability modulator has not yet fully explored. Thus, we studied benzydamine\'s effect over primary cultured DRG nociceptors excitability and after acute and chronic inflammatory sensitization, as a model to evaluate relative nociceptive response. Benzydamine demonstrated to effectively inhibit neuronal basal excitability reducing its firing frequency and increasing rheobase and afterhyperpolarization amplitude. Its effect was time and dose-dependent. At higher doses, benzydamine induced changes in action potential wavelength, decreasing its height and slightly increasing its duration. Moreover, the compound reduced neuronal acute and chronic inflammatory sensitization. It inhibited neuronal excitability mediated either by an inflammatory cocktail, acidic pH or high external KCl. Notably, higher potency was evidenced under inflammatory sensitized conditions. This effect could be explained either by modulation of inflammatory and/or neuronal sensitizing signalling cascades or by direct modulation of proalgesic and action potential firing initiating ion channels. Apparently, the compound inhibited Nav1.8 channel but had no effect over Kv7.2, Kv7.3, TRPV1 and TRPA1. In conclusion, the obtained results strengthen the analgesic and anti-inflammatory effect of benzydamine, highlighting its mode of action on local pain and inflammatory signalling.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    脊髓背角星形胶质细胞活化可能在慢性神经性疼痛的发生发展中起重要作用。但是星形胶质细胞激活及其调节作用的机制仍然未知。内向整流钾通道蛋白4.1(Kir4.1)是星形胶质细胞中最重要的背景K通道。然而,在慢性疼痛中,Kir4.1是如何调节和促进行为痛觉过敏的,目前尚不清楚.在这项研究中,单细胞RNA测序分析表明,在小鼠模型中,慢性压迫性损伤(CCI)后脊髓星形胶质细胞中Kir4.1和甲基-CpG结合蛋白2(MeCP2)的表达水平均降低。脊髓星形胶质细胞中Kir4.1通道的条件性敲除导致痛觉过敏,脊髓中Kir4.1通道的过度表达缓解了CCI诱导的痛觉过敏。CCI后脊髓Kir4.1的表达受MeCP2调控。脊髓切片中的电生理记录表明,Kir4.1的敲低显着上调了星形胶质细胞的兴奋性,然后在功能上改变了脊髓背侧神经元的放电模式。因此,靶向脊髓Kir4.1可能是慢性神经性疼痛痛觉过敏的治疗方法。
    Astrocyte activation in the spinal dorsal horn may play an important role in the development of chronic neuropathic pain, but the mechanisms involved in astrocyte activation and their modulatory effects remain unknown. The inward rectifying potassium channel protein 4.1 (Kir4.1) is the most important background K+ channel in astrocytes. However, how Kir4.1 is regulated and contributes to behavioral hyperalgesia in chronic pain is unknown. In this study, single-cell RNA sequencing analysis indicated that the expression levels of both Kir4.1 and Methyl-CpG-binding protein 2 (MeCP2) were decreased in spinal astrocytes after chronic constriction injury (CCI) in a mouse model. Conditional knockout of the Kir4.1 channel in spinal astrocytes led to hyperalgesia, and overexpression of the Kir4.1 channel in spinal cord relieved CCI-induced hyperalgesia. Expression of spinal Kir4.1 after CCI was regulated by MeCP2. Electrophysiological recording in spinal slices showed that knockdown of Kir4.1 significantly up-regulated the excitability of astrocytes and then functionally changed the firing patterns of neurons in dorsal spinal cord. Therefore, targeting spinal Kir4.1 may be a therapeutic approach for hyperalgesia in chronic neuropathic pain.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    神经性瘙痒病症起因于外周或中枢神经系统的结构和/或功能损伤。瘙痒特异性介质和途径的新发现加强了瘙痒传播的特异性理论,然而,电生理学研究表明,伤害性感受器的局灶性激活和原发性传入的不同放电模式也有助于瘙痒感觉的发展。脊髓水平的兴奋性和抑制性中间神经元之间复杂的相互作用,非神经元细胞和从上层中心下降的调节有助于神经元致敏和临床上的慢性瘙痒,以及伴随的现象,如异常和过度。几个主题,目前有针对不同靶点的全身性和非药理学治疗方法.
    Neuropathic pruritus conditions arise from structural and/or functional damage of the peripheral or central nervous system. Novel findings of pruritus specific mediators and pathways strengthen the specificity theory of pruritus transmission, however electrophysiological studies suggest that focal activation of nociceptors and distinct discharge patterns of primary afferents also contribute to the development of the sensation of pruritus. A complex interplay between excitatory and inhibitory interneurons at spinal level, non-neuronal cells and descending modulation from upper centers contributes to neuronal sensitization and clinically to the chronicity of pruritus, as well as accompanying phenomena such as alloknesis and hyperknesis. Several topical, systemic and non-pharmacological therapeutic approaches directed at distinct targets are currently available.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

    求助全文

  • 文章类型: Editorial
    暂无摘要。
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    Inflammatory pain encompasses many clinical symptoms, and there is no satisfactory therapeutic target. Neuronal hyperexcitability and/or sensitization of the primary nociceptive neurons in the dorsal root ganglion (DRG) and spinal dorsal horn are critical to the development and maintenance of inflammatory pain. The sodium leak channel (NALCN), a non-selective cation channel, mediates the background Na+ leak conductance and controls neuronal excitability. It is unknown whether abnormal activity of NALCN mediates the pathological process of inflammatory pain. Complete Freund\'s adjuvant (CFA) was injected into the left footpad of rats to induce inflammatory pain. The thresholds of mechanical and thermal sensation and spontaneous pain behaviors were assessed. The expression of NALCN in DRG and spinal dorsal cord was measured. NALCN currents and the contribution of NALCN to neuronal excitability in the DRG and spinal dorsal cord were recorded using whole-cell patch-clamping recording. NALCN was abundantly expressed in neurons of the DRG and spinal dorsal cord. In acutely isolated DRG neurons and spinal cord slices from rats with CFA-induced inflammatory pain, NALCN currents and neuronal excitability were increased. Subsequently, intrathecal and sciatic nerve injection of NALCN-small interfering RNA (siRNA) decreased NALCN mRNA and reverted NALCN currents to normal levels, and then reduced CFA-induced neuronal excitability and alleviated pain symptoms. Furthermore, pain-related symptoms were significantly prevented by the NALCN-shRNA-mediated NALCN knockdown in DRG and spinal cord. Therefore, increased expression and activity of NALCN contributed to neuronal sensitization in CFA-induced inflammatory pain. NALCN may be a novel molecular target for the control of inflammatory pain.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    BACKGROUND: Chronic stress during pregnancy may increase visceral hyperalgesia of offspring in a sex-dependent way. Combining adult stress in offspring will increase this sensitivity. Based on the evidence implicating estrogen in exacerbating visceral hypersensitivity in female rodents in preclinical models, we predicted that chronic prenatal stress (CPS) + chronic adult stress (CAS) will maximize visceral hyperalgesia; and that estrogen plays an important role in colonic hyperalgesia.
    OBJECTIVE: The aim was to illuminate the role of estrogen in colonic hyperalgesia and its underlying mechanisms.
    METHODS: We established a CPS plus CAS rodent model in which the balloon was used to distend the colorectum. The single-fiber recording in vivo and patch clamp experiments in vitro were used to monitor the colonic neuron\'s activity. The reverse transcription-polymerase chain reaction, western blot, and immunofluorescence were used to study the effects of CPS and CAS on colon primary afferent sensitivity. We used ovariectomy and letrozole to reduce estrogen levels of female rats respectively in order to assess the role of estrogen in female-specific enhanced primary afferent sensitization.
    RESULTS: Spontaneous activity and single fiber activity were significantly greater in females than in males. The enhanced sensitization in female rats mainly came from low-threshold neurons. CPS significantly increased single-unit afferent fiber activity in L6-S2 dorsal roots in response. Activity was further enhanced by CAS. In addition, the excitability of colon-projecting dorsal root ganglion (DRG) neurons increased in CPS + CAS rats and was associated with a decrease in transient A-type K+ currents. Compared with ovariectomy, treatment with the aromatase inhibitor letrozole significantly reduced estrogen levels in female rats, confirming the gender difference. Moreover, mice treated with letrozole had decreased colonic DRG neuron excitability. The intrathecal infusion of estrogen increased brain-derived neurotrophic factor (BDNF) protein levels and contributed to the response to visceral pain. Western blotting showed that nerve growth factor protein was upregulated in CPS + CAS mice.
    CONCLUSIONS: This study adds to the evidence that estrogen-dependent sensitization of primary afferent colon neurons is involved in the development of chronic stress-induced visceral hypersensitivity in female rats.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    Dental pulp stem cells (DPSCs) are important in tooth physiology, contributing to development, repair, regeneration, and immunomodulatory processes. However, their role in inflammatory mechanisms underlying pulpitis is not well understood. We evaluated the influence of DPSCs stimulated with calcitonin gene-related peptide (CGRP), a proinflammatory neuropeptide, on the expression of mediators released from DPSCs and the effect of these mediators on sensory neuron activity. Human DPSCs were treated with either control media or media containing CGRP (10-8 M) for 7 d, and the conditioned media (CM) containing DPSC-released mediators was collected. The expression of cytokines and chemokines from DPSCs was evaluated by reverse transcription quantitative polymerase chain reaction. The effects of the CM from CGRP-primed DPSCs (primed DPSC-CM) were evaluated on sensory afferents by using primary cultures of mouse trigeminal neurons and an organotypic model of cultured human pulp slices. Mouse trigeminal neurons and human pulp explants were pretreated for 24 h with control or primed DPSC-CM and then stimulated with capsaicin. Afferent activity was measured by quantifying the response to capsaicin via live cell calcium imaging in mouse neurons and CGRP released from pulp explants. Gene expression analysis showed that primed DPSCs overexpressed some proinflammatory cytokines and chemokines, including chemokines CXCL1 and CXCL8, which are both agonists of the receptor CXCR2 expressed in sensory neurons. Primed DPSC-CM increased human pulp sensory afferent activity as compared with control DPSC-CM. Similarly, primed DPSC-CM increased the intensity of calcium responses in cultured mouse trigeminal neurons. Furthermore, the CXCR2 antagonist SB225002 prevented trigeminal neuron sensitization to capsaicin induced by primed DPSC-CM. In conclusion, mediators released by DPSCs, primed with the proinflammatory mediator CGRP, induce neuronal sensitization through CXCR2 receptor. These data suggest that DPSCs might contribute to pain symptoms that develop in pulpitis.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Sci-hub)

  • 文章类型: Journal Article
    Neuropathic pain affects up to 10 % of the total population and no specific target is ideal for therapeutic need. The sodium leak channel (NALCN), a non-selective cation channel, mediates the background Na+ leak conductance and controls neuronal excitability and rhythmic behaviors. Here, we show that increases of NALCN expression and function in dorsal root ganglion (DRG) and dorsal spinal cord contribute to chronic constriction injury (CCI)-induced neuropathic pain in rodents. NALCN current and neuronal excitability in acutely isolated DRG neurons and spinal cord slices of rats were increased after CCI which were decreased to normal levels by NALCN-siRNA. Accordingly, pain-related symptoms were significantly alleviated by NALCN-siRNA-mediated NALCN knockdown and completely prevented by NALCN-shRNA-mediated NALCN knockdown in rats or by conditional NALCN knockout in mice. Our results indicate that increases in NALCN expression and function contribute to CCI-induced neuronal sensitization; therefore, NALCN may be a novel molecular target for control of neuropathic pain.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Sci-hub)

公众号