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Based on bioinformatics interrogation of the genome, > 500 mammalian protein kinases can be clustered within seven different groups. Of these kinases, the mitogen-activated protein kinase (MAPK) family forms part of the CMGC group of serine/threonine kinases that includes extracellular signal regulated kinases (ERKs), cJun N-terminal kinases (JNKs), and p38 MAPKs. With the JNKs considered attractive targets in the treatment of pathologies including diabetes and stroke, efforts have been directed to the discovery of new JNK inhibitory molecules that can be further developed as new therapeutics. Capitalizing on our biochemical understanding of JNK, we performed in silico screens of commercially available chemical databases to identify JNK1-interacting compounds and tested their in vitro JNK inhibitory activity. With in vitro and cell culture studies, we showed that the compound, 4′-methyl-N2-3-pyridinyl-4,5′-bi-1,3-thiazole-2,2′-diamine (JNK Docking (JD) compound 123, but not the related compound (4′-methyl-N ~ 2 ~ -(6-methyl-2-pyridinyl)-4,5′-bi-1,3-thiazole-2,2′-diamine (JD124), inhibited JNK1 activity towards a range of substrates. Molecular docking, saturation transfer difference NMR experiments and enzyme kinetic analyses revealed both ATP- and substrate-competitive inhibition of JNK by JD123. In characterizing JD123 further, we noted its ATP-competitive inhibition of the related p38-γ MAPK, but not ERK1, ERK2, or p38-α, p38-β or p38-δ. Further screening of a broad panel of kinases using 10 μM JD123, identified inhibition of kinases including protein kinase Bβ (PKBβ/Aktβ). Appropriately modified thiazole diamines, as typified by JD123, thus provide a new chemical scaffold for development of inhibitors for the JNK and p38-γ MAPKs as well as other kinases that are also potential therapeutic targets such as PKBβ/Aktβ.  相似文献   
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Since numerous diseases affect the central nervous system and it has limited self-repair capability, a great interest in using stem cells as an alternative cell source is generated. Previous reports have shown the differentiation of adipose-derived stem cells in neuron-like cells and it has also been proved that the expression pattern of patterning, proneural, and neural factors, such as Pax6, Mash1, Ngn2, NeuroD1, Tbr2 and Tbr1, regulates and defines adult neurogenesis. Regarding this, we hypothesize that a functional parallelism between adult neurogenesis and neuronal differentiation of human adipose-derived stem cells exists. In this study we differentiate human adipose-derived stem cells into neuron-like cells and analyze the expression pattern of different patterning, proneural, neural and neurotransmitter genes, before and after neuronal differentiation. The neuron-like cells expressed neuronal markers, patterning and proneural factors characteristics of intermediate stages of neuronal differentiation. Thus we demonstrated that it is possible to differentiate adipose-derived stem cells in vitro into immature neuron-like cells and that this process is regulated in a similar way to adult neurogenesis. This may contribute to elucidate molecular mechanisms involved in neuronal differentiation of adult human non-neural cells, in aid of the development of potential therapeutic tools for diseases of the nervous system.  相似文献   
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Adult neural precursor cells (NPCs) are predominantly located in the subventricular zone (SVZ) of the lateral ventricles or in the subgranular zone of the dentate gyrus. These NPCs produce neuroblasts that normally migrate and integrate into the olfactory bulb and hippocampus, respectively. Following CNS damage due to disease or injury, NPCs can also migrate to the site of damage. Enhancement of NPC migration to sites of neural damage may increase their potential for repair but requires an understanding of processes that regulate basal and injury-induced migration so we can harness this potential. This review highlights the extrinsic factors and major intrinsic signalling pathways that regulate endogenous basal NPC migration to the olfactory bulb and the role of inflammatory mediators and chemokines in disease and injury-induced NPC migration.  相似文献   
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目的:探讨不同剂量天麻素(Gastrodin,GAS)对缺血再灌注模型小鼠海马新生神经元的保护作用及其可能机制。方法:将50只C57BL/6小鼠随机分为假手术组(Sham)、模型组(MCAO+Vehicle)、模型+天麻素低剂量(10 mg/kg)组(MCAO+GAS(L)),模型+天麻素中剂量(50 mg/kg)组(MCAO+GAS(M)),模型+天麻素高剂量(100 mg/kg)组(MCAO+GAS(H))。除Sham组接受假手术外(皮肤切开,分离颈动脉),分别对MCAO组及MCAO+GAS各组行右侧颈内动脉栓线术,造成并保持大脑中动脉闭塞(MCAO)1 h。术后,Sham组和MCAO组即刻腹腔注射生理盐水(0.1 m L/kg),MCAO+GAS各组注射不同剂量天麻素,每24小时重复给药1次,连续7天。最后一次注射24 h后,对各组小鼠的神经功能进行评分,之后处死动物取脑组织,通过HE、免疫荧光染色以及Western Blot观察和比较各组小鼠海马形态学和DCX的表达水平。结果:(1)术后第7天,MCAO+Vehicle组小鼠神经功能评分(3.2±0.63)显著高于假手术组、MCAO+GAS(M)(1.8±0.63)和MCAO+GAS(H)组(P0.05)。(2)术后第7天,与假手术组相比较,MCAO+vehicle组海马颗粒细胞排列不规则,核稍大且固缩深染,齿状回部有较多空洞;与MCAO+vehicle组比较,MCAO+GAS(H)组海马空洞样改变减少,细胞排列较整齐,胞膜较完整,核结构较清晰。(3)术后第7天,与假手术组相比较,DCX染色阳性细胞数显著减少,而MCAO+GAS(M)组DCX染色阳性细胞数(183±64.5)和MCAO+GAS(H)组DCX染色阳性细胞数(195±93.68)显著高于MCAO+Vehicle组。MCAO+Vehicle组海马的DCX表达水平显著低于假手术组及MCAO+GAS(M)组和GAS(H)组(P0.01)。结论:天麻素可能通过上调海马DCX的表达水平,调节海马神经发生,进而对缺血性脑卒中后再灌注发挥神经保护作用。  相似文献   
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目的:探讨Wnt/β-catenin信号通路光遗传技术在促进新生神经元成熟中的作用。方法:从胎鼠大脑皮层中提取神经干细胞,用携带DCX-ChR2-EGFP基因的慢病毒感染神经干细胞,观察神经干细胞分化为新生神经元后DCX的表达。实验细胞分为3组(n=9):对照组、NSCs+EGFP和NSCs+ChR2组。其中对照组为正常培养的NSCs(NSCs组);NSCs+EGFP组为携带DCX-EGFP基因慢病毒感染神经干细胞组;NSCs+ChR2组为携带DCX-ChR2-EGFP基因慢病毒感染神经干细胞组。病毒感染后48 h后连续3 d行470 nm蓝激光照射,然后检测各组NeuN+阳性细胞(成熟神经元标志物)的密度和NeuN+/Hoechst比值情况;Western blot检测各组成熟神经元相关蛋白MAP2、NeuN、Neurog2、NeuroD1和GluR2蛋白表达水平和Wnt/β-catenin通道相关蛋白TCF4和β-catenin蛋白的表达水平。用L-型钙通道阻断剂100 μmol/L维拉帕米或50 μg/ml的β-catenin抑制剂Dkk1处理NSCs+ChR2组细胞,然后行Western blot检测各组MAP2、NeuN、Neurog2、NeuroD1和GluR2蛋白表达水平。结果:连续3 d 470 nm蓝激光照射后,NSCs+ChR2组中NeuN+阳性细胞密度(成熟细胞)和NeuN+/Hoechst明显高于NSCs组和NSCs+EGFP组(P均<0.05);Western blot检测的MAP2、NeuN、Neurog2、NeuroD1、GluR2蛋白及Wnt/β-catenin通路相关蛋白β-catenin、TCF4表达水平均明显高于NSCs组和NSCs+EGFP组(P均<0.01);L-型钙通道阻断剂维拉帕米或β-catenin抑制剂Dkk1处理NSCs+ChR2组细胞后MAP2、Neurog2、NeuroD1和GluR2蛋白表达水平明显下降(P均< 0.01),NeuN表达水平也下降(P<0.05)。证明ChR2通道蛋白开放产生阳离子内流促进新生神经元成熟,是通过Wnt/β-catenin信号通路实现的。结论:光遗传学方法通过Wnt/β-catenin信号通路促进新生神经元成熟。  相似文献   
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One of the key features in development is the reutilization of successful signaling pathways. Here, we emphasize the involvement of the Wnt pathway, one of the five kinds of signal transduction pathway predominating early embryonic development of all animals, in regulating the formation of brain structure. We discuss the interrelationships between the Wnt and reelin pathways in the regulation of cortical layering. We summarize data emphasizing key molecules, which, when mutated, result in abnormal brain development. This integrated view, which is based on conservation of pathways, reveals the relative position of participants in the pathway, points to control mechanisms, and allows raising testable working hypotheses. Nevertheless, although signaling pathways are highly conserved from flies to humans, the overall morphology is not. We propose that future studies directed at understanding of diversification will provide fruitful insights on mammalian brain formation.  相似文献   
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Doublecortin is expressed in articular chondrocytes   总被引:1,自引:0,他引:1  
Articular cartilage and cartilage in the embryonic cartilaginous anlagen and growth plates are both hyaline cartilages. In this study, we found that doublecortin (DCX) was expressed in articular chondrocytes but not in chondrocytes from the cartilaginous anlagen or growth plates. DCX was expressed by the cells in the chondrogenous layers but not intermediate layer of joint interzone. Furthermore, the synovium and cruciate ligaments were DCX-negative. DCX-positive chondrocytes were very rare in tissue engineered cartilage derived from in vitro pellet culture of rat chondrosarcoma, ATDC5, and C3H10T1/2 cells. However, the new hyaline cartilage formed in rabbit knee defect contained mostly DCX-positive chondrocytes. Our results demonstrate that DCX can be used as a marker to distinguish articular chondrocytes from other chondrocytes and to evaluate the quality of tissue engineered or regenerated cartilage in terms of their "articular" or "non-articular" nature.  相似文献   
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X-linked mental retardation (XLMR) is a common cause of moderate to severe intellectual disability in males. XLMR protein related to neurite extension (Xpn, also known as KIAA2022) has been implicated as a gene responsible for XLMR in humans. Although Xpn is highly expressed in the developing brain and is involved in neurite outgrowth in PC12 cells and neurons, little is known about the functional role of Xpn. Here, we show that Xpn regulates cell–cell and cell–matrix adhesion and migration in PC12 cells. Xpn knockdown enhanced cell–cell and cell–matrix adhesion mediated by N-cadherin and β1-integrin, respectively. N-Cadherin and β1-integrin expression at the mRNA and protein levels was significantly increased in Xpn knockdown PC12 cells. Furthermore, overexpressed Xpn protein was strongly expressed in the nuclei of PC12 and 293T cells. Finally, depletion of Xpn perturbed cellular migration by enhancing N-cadherin and β1-integrin expression in a PC12 cell wound healing assay. We conclude that Xpn regulates cell–cell and cell–matrix adhesion and cellular migration by regulating the expression of adhesion molecules.  相似文献   
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