MnSOD, manganese superoxide dismutase

MnSOD,锰超氧化物歧化酶
  • 文章类型: Journal Article
    未经证实:止血带诱导的缺血和再灌注(I/R)通过涉及蛋白质合成/分解的机制与术后肌肉萎缩有关,细胞代谢,线粒体功能障碍,和凋亡。缺血预处理(IPC)可以保护骨骼肌免受I/R损伤。这项研究旨在确定IPC的潜在机制及其对全膝关节置换术(TKA)后肌肉力量的影响。
    未经证实:24名TKA患者随机接受假IPC或IPC(3个周期的5分钟缺血,然后5分钟再灌注)。在止血带(TQ)充气和再灌注开始后30分钟收集横肌活检。蛋白质印迹分析在肌肉蛋白中进行4-HNE,SOD2,TNF-α,IL-6,p-Drp1ser616,Drp1,Mfn1,Mfn2,Opa1,PGC-1,ETC复杂I-V,细胞色素c,切割的胱天蛋白酶-3和胱天蛋白酶-3。术前和术后评估临床结果,包括等速肌力和生活质量。
    UNASSIGNED:IPC显着增加Mfn2(2.0±0.2vs1.2±0.1,p=0.001)和Opa1(2.9±0.3vs1.9±0.2,p=0.005)在再灌注开始时的蛋白质表达,与缺血期相比。4-HNE没有差异,SOD2,TNF-α,IL-6,p-Drp1ser616/Drp1,Mfn1,PGC-1α,ETC复杂I-V,细胞色素c,缺血和再灌注期之间caspase-3/caspase-3的表达,或群体之间。临床上,假IPC组术后膝关节伸展最大扭矩显著降低(-16.6[-29.5,-3.6]N.m,p​=​0.020),而IPC组中的保留(-4.7[-25.3,16.0]N.m,p​=​0.617)。
    未经评估:在带有TQ应用程序的TKA中,IPC保留了术后股四头肌的力量,并部分通过增强骨骼肌中的线粒体融合蛋白来防止TQ引起的I/R损伤。
    UASSIGNED:线粒体融合是IPC预防骨骼肌I/R损伤的潜在潜在潜在机制。在TQ诱导的I/R之前应用IPC保留了TKA术后股四头肌肌力。
    UNASSIGNED: Tourniquet-induced ischemia and reperfusion (I/R) has been related to postoperative muscle atrophy through mechanisms involving protein synthesis/breakdown, cellular metabolism, mitochondrial dysfunction, and apoptosis. Ischemic preconditioning (IPC) could protect skeletal muscle against I/R injury. This study aims to determine the underlying mechanisms of IPC and its effect on muscle strength after total knee arthroplasty (TKA).
    UNASSIGNED: Twenty-four TKA patients were randomized to receive either sham IPC or IPC (3 cycles of 5-min ischemia followed by 5-min reperfusion). Vastus medialis muscle biopsies were collected at 30 ​min after tourniquet (TQ) inflation and the onset of reperfusion. Western blot analysis was performed in muscle protein for 4-HNE, SOD2, TNF-ɑ, IL-6, p-Drp1ser616, Drp1, Mfn1, Mfn2, Opa1, PGC-1ɑ, ETC complex I-V, cytochrome c, cleaved caspase-3, and caspase-3. Clinical outcomes including isokinetic muscle strength and quality of life were evaluated pre- and postoperatively.
    UNASSIGNED: IPC significantly increased Mfn2 (2.0 ​± ​0.2 vs 1.2 ​± ​0.1, p ​= ​0.001) and Opa1 (2.9 ​± ​0.3 vs 1.9 ​± ​0.2, p ​= ​0.005) proteins expression at the onset of reperfusion, compared to the ischemic phase. There were no differences in 4-HNE, SOD2, TNF-ɑ, IL-6, p-Drp1ser616/Drp1, Mfn1, PGC-1ɑ, ETC complex I-V, cytochrome c, and cleaved caspase-3/caspase-3 expression between the ischemic and reperfusion periods, or between the groups. Clinically, postoperative peak torque for knee extension significantly reduced in the sham IPC group (-16.6 [-29.5, -3.6] N.m, p ​= ​0.020), while that in the IPC group was preserved (-4.7 [-25.3, 16.0] N.m, p ​= ​0.617).
    UNASSIGNED: In TKA with TQ application, IPC preserved postoperative quadriceps strength and prevented TQ-induced I/R injury partly by enhancing mitochondrial fusion proteins in the skeletal muscle.
    UNASSIGNED: Mitochondrial fusion is a potential underlying mechanism of IPC in preventing skeletal muscle I/R injury. IPC applied before TQ-induced I/R preserved postoperative quadriceps muscle strength after TKA.
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  • 文章类型: Journal Article
    未经证实:XBP1调节巨噬细胞促炎反应,但其在巨噬细胞刺激因子干扰素基因(STING)激活和肝纤维化中的作用尚不清楚。X-box结合蛋白1(XBP1)已被证明可促进巨噬细胞核苷酸结合寡聚化结构域,脂肪性肝炎中富含亮氨酸的重复序列和含pyrin结构域3(NLRP3)的激活。在这里,我们旨在探讨XBP1在STING信号调节和随后的NLRP3激活肝纤维化过程中的潜在机制。
    未经证实:在人纤维化肝组织样品中测量XBP1表达。在骨髓特异性Xbp1-中诱导肝纤维化,发抖-,和Nlrp3缺陷小鼠通过四氯化碳注射,胆管结扎,或蛋氨酸/胆碱缺乏的饮食。
    UASSIGNED:尽管在小鼠和临床患者的纤维化肝巨噬细胞中观察到XBP1表达增加,骨髓特异性Xbp1缺乏或XBP1的药理抑制保护肝脏免受纤维化。此外,它以STING/IRF3依赖性方式抑制巨噬细胞NLPR3激活。氧化性线粒体损伤促进巨噬细胞自身mtDNA和cGAS/STING/NLRP3信号激活的胞浆渗漏以促进肝纤维化。机械上,RNA测序分析表明,在Xbp1缺陷型巨噬细胞中,mtDNA表达降低,BCL2/腺病毒E1B相互作用蛋白3(BNIP3)介导的线粒体自噬激活增加。染色质免疫沉淀(ChIP)分析进一步表明,剪接的XBP1直接与Bnip3启动子结合,并抑制巨噬细胞中Bnip3的转录。Xbp1缺乏通过促进巨噬细胞中BNIP3介导的线粒体自噬激活来降低mtDNA胞质释放和STING/NLRP3激活,被Bnip3击倒而废除。此外,巨噬细胞XBP1/STING信号传导有助于肝星状细胞的激活。
    UNASSIGNED:我们的研究结果表明,XBP1通过BNIP3介导的线粒体自噬调节巨噬细胞自身mtDNA胞质渗漏来控制巨噬细胞cGAS/STING/NLRP3的激活,从而提供了一种新的抗肝纤维化靶点。
    UNASSIGNED:肝纤维化是慢性肝病的典型进展过程,由炎症和免疫反应驱动,其特征在于肝脏中的细胞外基质过量。目前,目前尚无有效的肝纤维化治疗策略,导致全世界的高死亡率。在这项研究中,我们发现髓系特异性Xbp1缺乏保护小鼠肝脏免受纤维化,而XBP1抑制改善小鼠肝纤维化。这项研究得出结论,在巨噬细胞中靶向XBP1信号可能提供一种保护肝脏免受纤维化的新策略。
    UNASSIGNED: XBP1 modulates the macrophage proinflammatory response, but its function in macrophage stimulator of interferon genes (STING) activation and liver fibrosis is unknown. X-box binding protein 1 (XBP1) has been shown to promote macrophage nucleotide-binding oligomerization domain, leucine-rich repeat and pyrin domain-containing 3 (NLRP3) activation in steatohepatitis. Herein, we aimed to explore the underlying mechanism of XBP1 in the regulation of STING signalling and the subsequent NLRP3 activation during liver fibrosis.
    UNASSIGNED: XBP1 expression was measured in the human fibrotic liver tissue samples. Liver fibrosis was induced in myeloid-specific Xbp1-, STING-, and Nlrp3-deficient mice by carbon tetrachloride injection, bile duct ligation, or a methionine/choline-deficient diet.
    UNASSIGNED: Although increased XBP1 expression was observed in the fibrotic liver macrophages of mice and clinical patients, myeloid-specific Xbp1 deficiency or pharmacological inhibition of XBP1 protected the liver against fibrosis. Furthermore, it inhibited macrophage NLPR3 activation in a STING/IRF3-dependent manner. Oxidative mitochondrial injury facilitated cytosolic leakage of macrophage self-mtDNA and cGAS/STING/NLRP3 signalling activation to promote liver fibrosis. Mechanistically, RNA sequencing analysis indicated a decreased mtDNA expression and an increased BCL2/adenovirus E1B interacting protein 3 (BNIP3)-mediated mitophagy activation in Xbp1-deficient macrophages. Chromatin immunoprecipitation (ChIP) assays further suggested that spliced XBP1 bound directly to the Bnip3 promoter and inhibited the transcription of Bnip3 in macrophages. Xbp1 deficiency decreased the mtDNA cytosolic release and STING/NLRP3 activation by promoting BNIP3-mediated mitophagy activation in macrophages, which was abrogated by Bnip3 knockdown. Moreover, macrophage XBP1/STING signalling contributed to the activation of hepatic stellate cells.
    UNASSIGNED: Our findings demonstrate that XBP1 controls macrophage cGAS/STING/NLRP3 activation by regulating macrophage self-mtDNA cytosolic leakage via BNIP3-mediated mitophagy modulation, thus providing a novel target against liver fibrosis.
    UNASSIGNED: Liver fibrosis is a typical progressive process of chronic liver disease, driven by inflammatory and immune responses, and is characterised by an excess of extracellular matrix in the liver. Currently, there is no effective therapeutic strategy for the treatment of liver fibrosis, resulting in high mortality worldwide. In this study, we found that myeloid-specific Xbp1 deficiency protected the liver against fibrosis in mice, while XBP1 inhibition ameliorated liver fibrosis in mice. This study concluded that targeting XBP1 signalling in macrophages may provide a novel strategy for protecting the liver against fibrosis.
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  • 文章类型: Journal Article
    体力活动改善心血管疾病和改善心血管健康的能力是公认的,但是这些益处背后的分子机制的许多方面尚未完全了解。运动通过各种机制增加活性氧(ROS)的水平。这触发了Nrf2的激活,Nrf2是一种氧化还原敏感的转录因子,可通过增加氧化应激而激活。Nrf2的激活通过增加许多抗氧化基因的核转录来减轻氧化应激,同时还通过Nrf2信号的细胞保护性质来介导额外的有益作用。了解运动引起的Nrf2的转录模式可以帮助设计由于各种原因无法运动的患者的药理学模拟过程。
    The ability of physical activity to ameliorate cardiovascular disease and improve cardiovascular health is well accepted, but many aspects of the molecular mechanisms underlying these benefits are incompletely understood. Exercise increases the levels of reactive oxygen species (ROS) through various mechanisms. This triggers the activation of Nrf2, a redox-sensitive transcription factor activated by increases in oxidative stress. Activation of Nrf2 mitigates oxidative stress by increasing the nuclear transcription of many antioxidant genes while also mediating additional beneficial effects through the cytoprotective nature of Nrf2 signaling. Understanding the transcriptional patterns of Nrf2 caused by exercise can help in the design of pharmacological mimicry of the process in patients who are unable to exercise for various reasons.
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  • 文章类型: Journal Article
    对乙酰氨基酚(APAP)是一种广泛使用的镇痛和解热药物,在治疗剂量下是安全的,但过量服用后可能导致严重的肝损伤甚至肝衰竭。APAP肝毒性小鼠模型与人类病理生理学密切相关。因此,这种临床相关模型经常用于研究药物性肝损伤的机制,甚至用于测试潜在的治疗干预措施.然而,模型的复杂性需要对病理生理学有透彻的了解,以获得有效的结果和可转化为临床的机制信息。然而,使用此模型的许多研究都存在缺陷,这危害了科学和临床的相关性。这篇综述的目的是提供一个模型框架,在该框架中可以获得机械上合理和临床相关的数据。讨论提供了对损伤机制以及如何研究它的见解,包括药物代谢的关键作用,线粒体功能障碍,坏死细胞死亡,自噬和无菌炎症反应。此外,讨论了使用此模型时最常犯的错误。因此,在研究APAP肝毒性时考虑这些建议将有助于发现更多临床相关的干预措施.
    Acetaminophen (APAP) is a widely used analgesic and antipyretic drug, which is safe at therapeutic doses but can cause severe liver injury and even liver failure after overdoses. The mouse model of APAP hepatotoxicity recapitulates closely the human pathophysiology. As a result, this clinically relevant model is frequently used to study mechanisms of drug-induced liver injury and even more so to test potential therapeutic interventions. However, the complexity of the model requires a thorough understanding of the pathophysiology to obtain valid results and mechanistic information that is translatable to the clinic. However, many studies using this model are flawed, which jeopardizes the scientific and clinical relevance. The purpose of this review is to provide a framework of the model where mechanistically sound and clinically relevant data can be obtained. The discussion provides insight into the injury mechanisms and how to study it including the critical roles of drug metabolism, mitochondrial dysfunction, necrotic cell death, autophagy and the sterile inflammatory response. In addition, the most frequently made mistakes when using this model are discussed. Thus, considering these recommendations when studying APAP hepatotoxicity will facilitate the discovery of more clinically relevant interventions.
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  • 文章类型: Journal Article
    据报道,运动对非酒精性脂肪性肝病(NAFLD)管理的减肥无关有益效果,但潜在的机制是未知的。为了帮助确定这种机制,运动对个体组织(肝脏,脂肪组织,和骨骼肌)进行了回顾性研究。
    分析了在3个月运动方案中患有NAFLD的日本肥胖男性的数据,并与旨在实现体重减轻的3个月饮食限制计划中的数据进行了比较。在一个较小的子队列中研究了潜在的机制。
    与减肥效果无关,运动方案减少肝脏脂肪变性9.5%和肝脏硬度6.8%每1%的体重减轻,并导致FibroScan-AST评分降低16.4%。这些肝脏参数的改善与人体测量变化密切相关(脂肪组织减少和肌肉质量保持),肌肉力量增加(+11.6%),减少炎症和氧化应激(铁蛋白:-22.3%和硫代巴比妥酸:-12.3%),和有机因子浓度的变化(硒蛋白-P:-11.2%,卵泡抑素:+17.1%,脂联素:+8.9%,和肌肉生长抑制素:-21.6%)在运动方案中。此外,转录因子Nrf2的靶基因的表达,Nrf2是一种氧化应激传感器,在单核细胞中更高,表明Nrf2被激活。大量高强度运动可有效进一步减少肝脏脂肪变性并增强病理生理参数(肝酶活性和有机因子谱)的改善。
    运动的与体重减轻无关的益处包括对NAFLD患者肝脏的抗脂肪变性和抗僵硬作用。这些好处似乎是通过改变器官间的串扰获得的,其特征是改善了有机因子失衡,减少了炎症和氧化应激。
    我们研究了运动对非酒精性脂肪性肝病(NAFLD)的影响,但与体重减轻无关。我们发现,运动通过多种机制对肝脏具有相当大的减肥无关的益处。这表明运动对NAFLD患者很重要,不管他们是否减肥。
    UNASSIGNED: A weight-loss-independent beneficial effect of exercise on non-alcoholic fatty liver disease (NAFLD) management has been reported, but the underlying mechanism is unknown. To help determine this mechanism, the effects of exercise on individual tissues (liver, adipose tissue, and skeletal muscle) were retrospectively studied.
    UNASSIGNED: Data from Japanese obese men with NAFLD in a 3-month exercise regimen were analysed and compared with those in a 3-month dietary restriction program designed to achieve weight loss. The underlying mechanism was studied in a smaller subcohort.
    UNASSIGNED: Independent of the effect of weight loss, the exercise regimen reduced liver steatosis by 9.5% and liver stiffness by 6.8% per 1% weight loss, and resulted in a 16.4% reduction in FibroScan-AST score. Improvements in these hepatic parameters were closely associated with anthropometric changes (reduction in adipose tissue and preservation of muscle mass), increases in muscle strength (+11.6%), reductions in inflammation and oxidative stress (ferritin: -22.3% and thiobarbituric acid: -12.3%), and changes in organokine concentrations (selenoprotein-P: -11.2%, follistatin: +17.1%, adiponectin: +8.9%, and myostatin: -21.6%) during the exercise regimen. Moreover, the expression of target genes of the transcription factor Nrf2, an oxidative stress sensor, was higher in monocytes, suggesting that Nrf2 is activated. Large amounts of high-intensity exercise were effective at further reducing liver steatosis and potentiating improvements in pathophysiological parameters (liver enzyme activities and organokine profiles).
    UNASSIGNED: The weight-loss-independent benefits of exercise include anti-steatotic and anti-stiffness effects in the livers of patients with NAFLD. These benefits seem to be acquired through the modification of inter-organ crosstalk, which is characterised by improvements in organokine imbalance and reductions in inflammation and oxidative stress.
    UNASSIGNED: We investigated the effects of exercise on non-alcoholic fatty liver disease (NAFLD) that were not related to weight loss. We found that exercise had considerable weight-loss-independent benefits for the liver through a number of mechanisms. This suggests that exercise is important for NAFLD patients, regardless of whether they lose weight.
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  • 文章类型: Journal Article
    特异性肝毒性的发展是一个复杂的过程,涉及同时和顺序事件,决定了通路的方向。肝损伤程度及其转归。几十年的临床观察已经确定了许多与抗结核药物诱导的肝毒性风险增加相关的药物和宿主相关因素。尽管大多数研究是回顾性的,但病例定义和样本量各不相同.迄今为止,对肝毒性的遗传易感性研究集中在反应性代谢物的形成和积累以及有助于细胞抗氧化防御机制的因素和可以调节继发于氧化应激的肝细胞死亡阈值的环境。药物遗传学的最新进展已承诺开发包括药物在内的精细算法,宿主和环境风险因素,可以根据风险-收益比的准确估计更好地定制药物。未来的研究探索肝毒性的发病机制应尽可能使用人体组织和样本进行,这样新的发现可以很容易地转化为临床应用。
    Development of idiosyncratic hepatotoxicity is an intricate process involving both concurrent as well as sequential events determining the direction of the pathways, degree of liver injury and its outcome. Decades of clinical observation have identified a number of drug and host related factors that are associated with an increased risk of antituberculous drug-induced hepatotoxicity, although majority of the studies are retrospective with varied case definitions and sample sizes. Investigations on genetic susceptibility to hepatotoxicity have so far focused on formation and accumulation reactive metabolite as well as factors that contribute to cellular antioxidant defense mechanisms and the environment which can modulate the threshold for hepatocyte death secondary to oxidative stress. Recent advances in pharmacogenetics have promised the development of refined algorithms including drug, host and environmental risk factors that allow better tailoring of medications based on accurate estimates of risk-benefit ratio. Future investigations exploring the pathogenesis of hepatotoxicity should be performed using human tissue and samples whenever possible, so that the novel findings can be translated readily into clinical applications.
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  • 文章类型: Journal Article
    随着人口的毁灭性增加,有很大的必要性来提高主要作物的作物生产力,但生产力受到各种非生物胁迫因素,如干旱,盐度。已尝试简要介绍主要谷物作物的非生物胁迫抗性。尽管在生理和使用分子生物学方面取得了良好的成功,这种高成本技术的好处是发展中国家无法承受的。这篇综述讨论了几种形态学,解剖学,生理,主要谷物作物的生化和分子机制与这些作物对非生物胁迫因素的适应有关。它讨论了非生物胁迫对开花等生理过程的影响,谷物灌浆和成熟以及植物代谢。光合作用,酶活性,矿物质营养,和呼吸。尽管在生理上已经取得了重大进展,对非生物胁迫因子的抗性的生化基础,在可持续农业下提高生产率的进展甚微。因此,有一个非常必要的跨学科研究来解决这个问题,并发展有效的技术及其转移到农民的领域。
    With devastating increase in population there is a great necessity to increase crop productivity of staple crops but the productivity is greatly affected by various abiotic stress factors such as drought, salinity. An attempt has been made a brief account on abiotic stress resistance of major cereal crops viz. In spite of good successes obtained on physiological and use molecular biology, the benefits of this high cost technology are beyond the reach of developing countries. This review discusses several morphological, anatomical, physiological, biochemical and molecular mechanisms of major cereal crops related to the adaptation of these crop to abiotic stress factors. It discusses the effect of abiotic stresses on physiological processes such as flowering, grain filling and maturation and plant metabolisms viz. photosynthesis, enzyme activity, mineral nutrition, and respiration. Though significant progress has been attained on the physiological, biochemical basis of resistance to abiotic stress factors, very little progress has been achieved to increase productivity under sustainable agriculture. Therefore, there is a great necessity of inter-disciplinary research to address this issue and to evolve efficient technology and its transfer to the farmers\' fields.
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  • 文章类型: Journal Article
    肾脏疾病,包括慢性肾脏病(CKD)和急性肾损伤(AKI),与炎症有关。在这些肾损伤中调节炎症的机制仍不清楚。这里,我们证明了p300/CBP相关因子(PCAF),组蛋白乙酰转移酶,在db/db小鼠和脂多糖(LPS)注射小鼠的肾脏中过表达。此外,组蛋白乙酰化升高,比如H3K18ac,和一些炎症基因的上调,如ICAM-1,VCAM-1和MCP-1,在这些肾损伤中发现。此外,增加的H3K18ac被募集到LPS注射小鼠肾脏中ICAM-1,VCAM-1和MCP-1的启动子。体外研究表明,人肾近曲小管上皮细胞(HK-2)中PCAF敲低导致炎症分子的下调,包括VCAM-1,ICAM-1,NF-κB的p50亚基(p50),和MCP-1mRNA和蛋白质水平,H3K18ac水平显著下降。与这些一致,PCAF的过表达增强了炎症分子的表达。此外,PCAF缺乏减少了棕榈酸诱导的H3K18ac在ICAM-1和MCP-1启动子上的募集,并抑制了棕榈酸诱导的这些炎症分子的上调。总之,目前的工作表明,PCAF在通过H3K18ac调节炎症分子中起着至关重要的作用,这为炎症相关的肾脏疾病提供了潜在的治疗靶点。
    Kidney diseases, including chronic kidney disease (CKD) and acute kidney injury (AKI), are associated with inflammation. The mechanism that regulates inflammation in these renal injuries remains unclear. Here, we demonstrated that p300/CBP-associated factor (PCAF), a histone acetyltransferase, was overexpressed in the kidneys of db/db mice and lipopolysaccharide (LPS)-injected mice. Moreover, elevated histone acetylation, such as H3K18ac, and up-regulation of some inflammatory genes, such as ICAM-1, VCAM-1, and MCP-1, were found upon these renal injuries. Furthermore, increased H3K18ac was recruited to the promoters of ICAM-1, VCAM-1, and MCP-1 in the kidneys of LPS-injected mice. In vitro studies demonstrated that PCAF knockdown in human renal proximal tubule epithelial cells (HK-2) led to downregulation of inflammatory molecules, including VCAM-1, ICAM-1, p50 subunit of NF-κB (p50), and MCP-1 mRNA and protein levels, together with significantly decreased H3K18ac level. Consistent with these, overexpression of PCAF enhanced the expression of inflammatory molecules. Furthermore, PCAF deficiency reduced palmitate-induced recruitment of H3K18ac on the promoters of ICAM-1 and MCP-1, as well as inhibited palmitate-induced upregulation of these inflammatory molecules. In summary, the present work demonstrates that PCAF plays an essential role in the regulation of inflammatory molecules through H3K18ac, which provides a potential therapeutic target for inflammation-related renal diseases.
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  • 文章类型: Journal Article
    The low survival and differentiation rates of stem cells after either transplantation or neural injury have been a major concern of stem cell-based therapy. Thus, further understanding long-term survival and differentiation of stem cells may uncover new targets for discovery and development of novel therapeutic approaches. We have previously described the impact of mitochondrial apoptosis-related events in modulating neural stem cell (NSC) fate. In addition, the endogenous bile acid, tauroursodeoxycholic acid (TUDCA) was shown to be neuroprotective in several animal models of neurodegenerative disorders by acting as an anti-apoptotic and anti-oxidant molecule at the mitochondrial level. Here, we hypothesize that TUDCA might also play a role on NSC fate decision. We found that TUDCA prevents mitochondrial apoptotic events typical of early-stage mouse NSC differentiation, preserves mitochondrial integrity and function, while enhancing self-renewal potential and accelerating cell cycle exit of NSCs. Interestingly, TUDCA prevention of mitochondrial alterations interfered with NSC differentiation potential by favoring neuronal rather than astroglial conversion. Finally, inhibition of mitochondrial reactive oxygen species (mtROS) scavenger and adenosine triphosphate (ATP) synthase revealed that the effect of TUDCA is dependent on mtROS and ATP regulation levels. Collectively, these data underline the importance of mitochondrial stress control of NSC fate decision and support a new role for TUDCA in this process.
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  • 文章类型: Journal Article
    Cancer stem cells (CSCs) represent a subpopulation of tumor cells endowed with self-renewal capacity and are considered as an underlying cause of tumor recurrence and metastasis. The metabolic signatures of CSCs and the mechanisms involved in the regulation of their stem cell-like properties still remain elusive. We utilized nasopharyngeal carcinoma (NPC) CSCs as a model to dissect their metabolic signatures and found that CSCs underwent metabolic shift and mitochondrial resetting distinguished from their differentiated counterparts. In metabolic shift, CSCs showed a greater reliance on glycolysis for energy supply compared with the parental cells. In mitochondrial resetting, the quantity and function of mitochondria of CSCs were modulated by the biogenesis of the organelles, and the round-shaped mitochondria were distributed in a peri-nuclear manner similar to those seen in the stem cells. In addition, we blocked the glycolytic pathway, increased the ROS levels, and depolarized mitochondrial membranes of CSCs, respectively, and examined the effects of these metabolic factors on CSC properties. Intriguingly, the properties of CSCs were curbed when we redirected the quintessential metabolic reprogramming, which indicates that the plasticity of energy metabolism regulated the balance between acquisition and loss of the stemness status. Taken together, we suggest that metabolic reprogramming is critical for CSCs to sustain self-renewal, deter from differentiation and enhance the antioxidant defense mechanism. Characterization of metabolic reprogramming governing CSC properties is paramount to the design of novel therapeutic strategies through metabolic intervention of CSCs.
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