NOD, nucleotide-binding oligomerization domain

点头,核苷酸结合寡聚化结构域
  • 文章类型: Journal Article
    缺血性脑血管病的发病率近年来呈上升趋势,已成为神经功能障碍和死亡的主要原因之一。已发现人参皂苷Rg1在许多神经退行性疾病中具有防止神经元损伤的作用。然而,Rg1对脑缺血再灌注损伤(CIRI)的保护作用和机制尚不完全清楚。这里,我们报道了Rg1治疗对小鼠CIRI的神经保护作用及其可能的机制。
    双侧颈总动脉结扎用于建立小鼠慢性CIRI模型。在OGD/R后用Rg1处理HT22细胞以研究其对[Ca2]i的影响。采用开场试验和爬杆试验检测行为损伤。激光散斑血流流量计用于测量脑血流量。Nissl和H&E染色用于检查神经元损伤。Western印迹用于检查MAP2,PSD95,Tau,p-Tau,NOX2,PLC,p-PLC,CN,NFAT1和NLRP1表达。钙成像用于测试[Ca2]i的水平。
    Rg1治疗可显着改善脑血流量,运动,和肢体协调,减少ROS产生,MAP2和PSD95表达增加,减少p-Tau,NOX2,p-PLC,CN,NFAT1和NLRP1表达。钙成像结果显示,Rg1可抑制HT22细胞OGD/R后钙超载,抵抗钙稳态失衡。
    Rg1通过抑制氧化应激在减轻CIRI中发挥神经保护作用,钙超载,和神经炎症。
    UNASSIGNED: The incidence of ischemic cerebrovascular disease is increasing in recent years and has been one of the leading causes of neurological dysfunction and death. Ginsenoside Rg1 has been found to protect against neuronal damage in many neurodegenerative diseases. However, the effect and mechanism by which Rg1 protects against cerebral ischemia-reperfusion injury (CIRI) are not fully understood. Here, we report the neuroprotective effects of Rg1 treatment on CIRI and its possible mechanisms in mice.
    UNASSIGNED: A bilateral common carotid artery ligation was used to establish a chronic CIRI model in mice. HT22 cells were treated with Rg1 after OGD/R to study its effect on [Ca2+]i. The open-field test and pole-climbing experiment were used to detect behavioral injury. The laser speckle blood flowmeter was used to measure brain blood flow. The Nissl and H&E staining were used to examine the neuronal damage. The Western blotting was used to examine MAP2, PSD95, Tau, p-Tau, NOX2, PLC, p-PLC, CN, NFAT1, and NLRP1 expression. Calcium imaging was used to test the level of [Ca2+]i.
    UNASSIGNED: Rg1 treatment significantly improved cerebral blood flow, locomotion, and limb coordination, reduced ROS production, increased MAP2 and PSD95 expression, and decreased p-Tau, NOX2, p-PLC, CN, NFAT1, and NLRP1 expression. Calcium imaging results showed that Rg1 could inhibit calcium overload and resist the imbalance of calcium homeostasis after OGD/R in HT22 cells.
    UNASSIGNED: Rg1 plays a neuroprotective role in attenuating CIRI by inhibiting oxidative stress, calcium overload, and neuroinflammation.
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  • 文章类型: Journal Article
    到目前为止,衰老是阿尔茨海默病(AD)最突出的危险因素,衰老和AD都与明显的代谢改变有关。由于开发有效的治疗干预措施来治疗AD显然是迫切需要的,在临床前模型和人类患者中调节全身和细胞内代谢的影响,关于疾病的发病机理,已经被探索过了。人们对与生物性别有关的不同风险和潜在目标策略的认识也越来越高,微生物组,和昼夜节律调节。作为细胞内代谢的重要组成部分,线粒体生物能学,线粒体质量控制机制,和线粒体相关的炎症反应已被考虑用于AD治疗干预。这篇综述总结并强调了这些努力。
    Aging is by far the most prominent risk factor for Alzheimer\'s disease (AD), and both aging and AD are associated with apparent metabolic alterations. As developing effective therapeutic interventions to treat AD is clearly in urgent need, the impact of modulating whole-body and intracellular metabolism in preclinical models and in human patients, on disease pathogenesis, have been explored. There is also an increasing awareness of differential risk and potential targeting strategies related to biological sex, microbiome, and circadian regulation. As a major part of intracellular metabolism, mitochondrial bioenergetics, mitochondrial quality-control mechanisms, and mitochondria-linked inflammatory responses have been considered for AD therapeutic interventions. This review summarizes and highlights these efforts.
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  • 文章类型: Journal Article
    心血管疾病(CVD)的发病机制是复杂和多因素的,炎症起着核心作用。炎性体是多聚体蛋白复合物,其响应于感染或组织损伤以两步方式被激活。激活促炎细胞因子后,白细胞介素-1β和-18释放。在过去的十年里,炎症小体激活在CVD发展中起重要作用的证据越来越强。我们讨论了不同炎性体在CVD发病机理中的作用,关注动脉粥样硬化和心力衰竭。这篇综述还提供了关于炎性小体抑制作为这些疾病治疗靶标的现有实验研究和临床试验的概述。
    The pathogenesis of cardiovascular disease (CVD) is complex and multifactorial, and inflammation plays a central role. Inflammasomes are multimeric protein complexes that are activated in a 2-step manner in response to infection or tissue damage. Upon activation the proinflammatory cytokines, interleukins-1β and -18 are released. In the last decade, the evidence that inflammasome activation plays an important role in CVD development became stronger. We discuss the role of different inflammasomes in the pathogenesis of CVD, focusing on atherosclerosis and heart failure. This review also provides an overview of existing experimental studies and clinical trials on inflammasome inhibition as a therapeutic target in these disorders.
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  • 文章类型: Journal Article
    线粒体是功能上通用的细胞器。除了满足细胞的能量需求的常规作用,线粒体还积极调节先天免疫反应,以对抗感染性和无菌性损伤。线粒体的成分,当由于功能障碍或损伤而释放或暴露时,可以被先天免疫系统的受体直接识别并触发免疫反应。此外,尽管启动可能独立于线粒体,许多先天免疫应答仍然受到线粒体调节,因为它们的信号级联的离散步骤发生在线粒体上或需要线粒体组分.最后,线粒体代谢物和先天免疫细胞内线粒体的代谢状态调节精确的免疫反应,并塑造该细胞对刺激的反应的方向和特征。一起,这些途径导致线粒体对先天免疫反应的细微差别和非常特异的调节。
    Mitochondria are functionally versatile organelles. In addition to their conventional role of meeting the cell\'s energy requirements, mitochondria also actively regulate innate immune responses against infectious and sterile insults. Components of mitochondria, when released or exposed in response to dysfunction or damage, can be directly recognized by receptors of the innate immune system and trigger an immune response. In addition, despite initiation that may be independent from mitochondria, numerous innate immune responses are still subject to mitochondrial regulation as discrete steps of their signaling cascades occur on mitochondria or require mitochondrial components. Finally, mitochondrial metabolites and the metabolic state of the mitochondria within an innate immune cell modulate the precise immune response and shape the direction and character of that cell\'s response to stimuli. Together, these pathways result in a nuanced and very specific regulation of innate immune responses by mitochondria.
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  • 文章类型: Journal Article
    炎症性肠病溃疡性结肠炎和克罗恩病与结直肠癌发病风险增加有关。近年来,几种免疫信号通路与结肠炎相关的癌症(CAC),主要是由于有合适的临床前模型。其中,慢性肠道炎症已被证明通过氧化应激诱导的突变支持肿瘤的发生.发展的促炎微环境,可能是肠道屏障功能缺陷和宿主-微生物相互作用的结果,促进肿瘤的发展。一些分子途径,如肿瘤坏死因子/核因子-κB或白细胞介素6/信号转导和转录激活因子3信号传导已被确定为CAC发展的重要贡献者,并且可能是预防和治疗CAC的有希望的治疗靶标。
    The inflammatory bowel diseases ulcerative colitis and Crohn\'s disease are associated with an increased risk for the development of colorectal cancer. During recent years, several immune signaling pathways have been linked to colitis-associated cancer (CAC), largely owing to the availability of suitable preclinical models. Among these, chronic intestinal inflammation has been shown to support tumor initiation through oxidative stress-induced mutations. A proinflammatory microenvironment that develops, possibly as a result of defective intestinal barrier function and host-microbial interactions, enables tumor promotion. Several molecular pathways such as tumor necrosis factor/nuclear factor-κB or interleukin 6/signal transducer and activator of transcription 3 signaling have been identified as important contributors to CAC development and could be promising therapeutic targets for the prevention and treatment of CAC.
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  • 文章类型: Journal Article
    炎性体是大的多蛋白复合物,其具有通过特殊的NOD样受体或NLR感知细胞内危险信号的能力。它们包括NLRP3、NLRC4、AIM2和NLRP6。它们参与识别多种微生物(细菌,病毒,真菌和寄生虫),应力和损伤信号,这导致caspase-1的直接激活,导致分泌有效的促炎细胞因子和焦凋亡。NLRP3是研究最多的抗微生物免疫应答炎性体。最近的研究揭示了炎症小体在先天免疫应答细胞包括单核细胞中的表达,巨噬细胞,中性粒细胞,和树突状细胞。炎症小体缺乏与胃肠道微生物区系的改变有关。微生物组群体的改变和/或肠道通透性的变化促进微生物易位到门静脉循环中,从而直接到肝脏。肠源性脂多糖(LPS)在多种肝脏疾病中发挥重要作用。测序技术的最新进展以及宏基因组学和生物信息学中改进的方法提供了有效的工具,用于研究居住在人类肠道中的人类微生物组的10(14)微生物。在这次审查中,我们研究了炎性体与肠道菌群和肝脏的关系。这篇综述还强调了人类微生物群在健康和肝脏疾病中的新兴功能。
    Inflammasomes are large multiprotein complexes that have the ability to sense intracellular danger signals through special NOD-like receptors or NLRs. They include NLRP3, NLRC4, AIM2 and NLRP6. They are involved in recognizing diverse microbial (bacteria, viruses, fungi and parasites), stress and damage signals, which result in direct activation of caspase-1, leading to secretion of potent pro-inflammatory cytokines and pyroptosis. NLRP3 is the most studied antimicrobial immune response inflammasome. Recent studies reveal expression of inflammasomes in innate immune response cells including monocytes, macrophages, neutrophils, and dendritic cells. Inflammasome deficiency has been linked to alterations in the gastrointestinal microflora. Alterations in the microbiome population and/or changes in gut permeability promote microbial translocation into the portal circulation and thus directly to the liver. Gut derived lipopolysaccharides (LPS) play a significant role in several liver diseases. Recent advancements in the sequencing technologies along with improved methods in metagenomics and bioinformatics have provided effective tools for investigating the 10(14) microorganisms of the human microbiome that inhabit the human gut. In this review, we examine the significance of inflammasomes in relation to the gut microflora and liver. This review also highlights the emerging functions of human microbiota in health and liver diseases.
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  • 文章类型: Journal Article
    Research on innate immune signaling and regulation has recently focused on pathogen recognition receptors (PRRs) and their signaling pathways. Members of PRRs sense diverse microbial invasions or danger signals, and initiate innate immune signaling pathways, leading to proinflammatory cytokines production, which, in turn, instructs adaptive immune response development. Despite the diverse functions employed by innate immune signaling to respond to a variety of different pathogens, the innate immune response must be tightly regulated. Otherwise, aberrant, uncontrolled immune responses will lead to harmful, or even fatal, consequences. Therefore, it is essential to better discern innate immune signaling and many regulators, controlling various signaling pathways, have been identified. In this review, we focus on the recent advances in our understanding of the activation and regulation of innate immune signaling in the host response to pathogens and cancer.
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