NLRP3, NLR family pyrin domain containing 3

NLRP3 , NLR 家族 pyrin 结构域含 3
  • 文章类型: Journal Article
    慢性肾脏病(CKD)是全球健康关注和公共卫生重点。由于毒素的积累和炎性细胞因子的清除减少,这种情况通常涉及炎症,导致肾功能逐渐丧失。由于CKD的巨大负担,找到针对炎症的有效治疗策略至关重要.大量证据表明肾脏疾病与炎症体之间存在关联。作为一种众所周知的多蛋白信号复合物,NLR家族pyrin结构域包含3(NLRP3)炎症小体在诱导肾脏炎症和纤维化中起重要作用。靶向NLRP3炎性体的小分子抑制剂是治疗CKD的潜在药物。NLRP3炎症小体激活放大了炎症反应,促进细胞凋亡。因此,它可能有助于CKD的发作和进展,但CKD炎症小体激活背后的机制仍不清楚。在这次审查中,我们总结了有关NLRP3炎性体在CKD中的作用以及针对NLRP3炎性体的新策略的最新发现。
    Chronic kidney disease (CKD) is a global health concern and public health priority. The condition often involves inflammation due to the accumulation of toxins and the reduced clearance of inflammatory cytokines, leading to gradual loss of kidney function. Because of the tremendous burden of CKD, finding effective treatment strategies against inflammation is crucial. Substantial evidence suggests an association between kidney disease and the inflammasome. As a well-known multiprotein signaling complex, the NLR family pyrin domain containing 3 (NLRP3) inflammasome plays an important role in inducing renal inflammation and fibrosis. Small molecule inhibitors targeting the NLRP3 inflammasome are potential agents for the treatment of CKD.The NLRP3 inflammasome activation amplifies the inflammation response, promoting pyroptotic cell death. Thus, it may contribute to the onset and progression of CKD, but the mechanism behind inflammasome activation in CKD remains obscure.In this review, we summarized recent findings on the role of the NLRP3 inflammasome in CKD and new strategies targeting the NLRP3 inflammasome.
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  • 文章类型: Journal Article
    瞬时受体电位(TRP)通道是钙(Ca2+)通透性通道的主要类型,这些相关的跨膜和细胞内TRP通道以前被认为主要与心血管和神经元系统的调节有关。如今,然而,越来越多的证据表明,这些TRP通道也负责肿瘤发生和发展,诱导肿瘤侵袭和转移。然而,TRP通道在恶性肿瘤中的总体潜在机制和可能的信号转导途径可能仍然难以捉摸.因此,在这次审查中,我们专注于TRP通道与肿瘤的显着特征之间的联系,例如多药耐药(MDR),转移,凋亡,扩散,逃避免疫监视,以及相关肿瘤微环境的改变。此外,我们还讨论了相关TRP通道在各种形式癌症中的表达和相关抑制剂的疗效。还介绍了各种作用机制的抗癌药物的化学敏感性和潜在的临床应用。此外,对于这种类型的钙通道的干预,提供可能的新的治疗方法来对抗恶性肿瘤将是有启发性的。
    Transient receptor potential (TRP) channels are one primary type of calcium (Ca2+) permeable channels, and those relevant transmembrane and intracellular TRP channels were previously thought to be mainly associated with the regulation of cardiovascular and neuronal systems. Nowadays, however, accumulating evidence shows that those TRP channels are also responsible for tumorigenesis and progression, inducing tumor invasion and metastasis. However, the overall underlying mechanisms and possible signaling transduction pathways that TRP channels in malignant tumors might still remain elusive. Therefore, in this review, we focus on the linkage between TRP channels and the significant characteristics of tumors such as multi-drug resistance (MDR), metastasis, apoptosis, proliferation, immune surveillance evasion, and the alterations of relevant tumor micro-environment. Moreover, we also have discussed the expression of relevant TRP channels in various forms of cancer and the relevant inhibitors\' efficacy. The chemo-sensitivity of the anti-cancer drugs of various acting mechanisms and the potential clinical applications are also presented. Furthermore, it would be enlightening to provide possible novel therapeutic approaches to counteract malignant tumors regarding the intervention of calcium channels of this type.
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  • 文章类型: Journal Article
    心脏代谢疾病(CMD),以代谢紊乱引发的心血管事件为特征,是导致死亡和残疾的主要原因。代谢紊乱引发慢性低度炎症,实际上,已经提出了一个新的元融合概念来定义与免疫适应有关的代谢状态。在免疫系统调节中不断增加的系统性代谢物列表中,胆汁酸(BA)代表了涉及CMD发育整个过程的一类独特的代谢产物,因为它在形成全身免疫代谢中具有多方面的作用。BA可以通过多种机制增强或抑制炎症反应来直接调节免疫系统。此外,BA是维持宿主和微生物群之间动态通信的关键决定因素。重要的是,BAs通过靶向法尼醇X受体(FXR)和不同的其他核受体在调节脂质的代谢稳态中起关键作用,葡萄糖,和氨基酸。此外,BAs轴本身易受炎症和代谢干预,因此,BAs轴可以构成元合成中的倒数调节环。因此,我们建议BAs轴代表整合CMD过程中涉及的全身免疫代谢的核心协调者。我们提供了一个更新的总结和密集的讨论关于如何BAs塑造先天和适应性免疫系统。以及BAs轴如何作为CMD条件下代谢紊乱与慢性炎症整合的核心协调器。
    Cardiometabolic disease (CMD), characterized with metabolic disorder triggered cardiovascular events, is a leading cause of death and disability. Metabolic disorders trigger chronic low-grade inflammation, and actually, a new concept of metaflammation has been proposed to define the state of metabolism connected with immunological adaptations. Amongst the continuously increased list of systemic metabolites in regulation of immune system, bile acids (BAs) represent a distinct class of metabolites implicated in the whole process of CMD development because of its multifaceted roles in shaping systemic immunometabolism. BAs can directly modulate the immune system by either boosting or inhibiting inflammatory responses via diverse mechanisms. Moreover, BAs are key determinants in maintaining the dynamic communication between the host and microbiota. Importantly, BAs via targeting Farnesoid X receptor (FXR) and diverse other nuclear receptors play key roles in regulating metabolic homeostasis of lipids, glucose, and amino acids. Moreover, BAs axis per se is susceptible to inflammatory and metabolic intervention, and thereby BAs axis may constitute a reciprocal regulatory loop in metaflammation. We thus propose that BAs axis represents a core coordinator in integrating systemic immunometabolism implicated in the process of CMD. We provide an updated summary and an intensive discussion about how BAs shape both the innate and adaptive immune system, and how BAs axis function as a core coordinator in integrating metabolic disorder to chronic inflammation in conditions of CMD.
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  • 文章类型: Journal Article
    由SARS-CoV-2引发的COVID-19疫情在全球范围内引发了大量疾病,患有称为多系统炎症综合征(MIS-C)的异常COVID后疾病的儿童,截至2020年4月报告。在这里,我们回顾了儿科患者的临床特征和目前正在使用的预后。已将MIS-C与其他临床状况进行了生动的比较。我们已经讨论了炎症反应的可能病因和基本机制,导致器官衰竭。雄激素受体的参与描绘了青春期以下儿童无症状疾病的可能性,有助于抗体依赖性增强的概念。
    The COVID-19 outbreak sparked by SARS-CoV-2, begat significant rates of malady worldwide, where children with an abnormal post-COVID ailment called the Multisystem Inflammatory Syndrome (MIS-C), were reported by April 2020. Here we have reviewed the clinical characteristics of the pediatric patients and the prognosis currently being utilized. A vivid comparison of MIS-C with other clinical conditions has been done. We have addressed the probable etiology and fundamental machinery of the inflammatory reactions, which drive organ failure. The involvement of androgen receptors portrays the likelihood of asymptomatic illness in children below adolescence, contributing to the concept of antibody-dependent enhancement.
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  • 文章类型: Journal Article
    体温调节是一种稳态机制,在某些神经系统疾病中被破坏。多发性硬化症(MS)患者容易体温升高,尤其是有更严重的神经体征.当这些患者遭受发热感染,如2019年冠状病毒病(COVID-19)时,这种情况可能变得无法忍受。我们回顾了MS患者热疗的机制,当感染严重急性呼吸道综合症冠状病毒2(SARS-CoV-2)时,他们可能会遇到。最后,总结了体温调节的作用和对定期体育锻炼的相关适应。
    Thermoregulation is a homeostatic mechanism that is disrupted in some neurological diseases. Patients with multiple sclerosis (MS) are susceptible to increases in body temperature, especially with more severe neurological signs. This condition can become intolerable when these patients suffer febrile infections such as coronavirus disease-2019 (COVID-19). We review the mechanisms of hyperthermia in patients with MS, and they may encounter when infected with severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). Finally, the thermoregulatory role and relevant adaptation to regular physical exercise are summarized.
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  • 文章类型: Journal Article
    作者通过直接施用口服因子Xa抑制剂(即,利伐沙班[RIV])。巨噬细胞的自噬活性被因子Xa显著抑制,并通过施用RIV而减轻。然而,因子Xa未能抑制蛋白酶激活受体2(PAR2)敲除巨噬细胞中7-酮胆固醇诱导的自噬和炎性小体激活.载脂蛋白E基因敲除小鼠的动脉粥样硬化区域被PAR2基因消融显著削减,被氯喹部分逆转。因此,作者发现,RIV通过抑制Xa-PAR2因子介导的巨噬细胞自噬抑制和抑制炎性体活性,从而减弱动脉粥样硬化的形成.
    The authors showed a mechanism for attenuating atherosclerosis by directly administering an oral factor Xa inhibitor (ie, rivaroxaban [RIV]). The autophagy activity of macrophages was significantly suppressed by factor Xa and was alleviated by the administration of RIV. However, factor Xa failed to inhibit 7-ketocholesterol-induced autophagy and inflammasome activation in protease-activated receptor 2 (PAR2) knockout macrophages. The atherosclerotic area of apolipoprotein E knockout mice was significantly reduced by the genetic ablation of PAR2, which was partially reversed by chloroquine. Thus, the authors found that RIV attenuates atherogenesis by inhibiting the factor Xa-PAR2-mediated suppression of macrophage autophagy and abrogating inflammasome activity.
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  • 文章类型: Case Reports
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