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The aim of the present study was to evaluate the potential toxicity and general mechanisms involved in single walled carbon nanotubes (SWCNTs)-induced cytotoxicity using human embryonic kidney cell line (HEK293) cells. Carbon nanotubes (coded as CNT) used in this study were synthesized by the chemical vapor deposition method. To elucidate the possible mechanisms underlying SWCNT-induced cytotoxicity, cell viability, cell membrane damage (lactate dehydrogenase activity (LDH) assay), reduced glutathione (GSH), interleukin-8 (IL-8) and lipid peroxidation products levels were quantitatively assessed following SWCNT exposure for 48 hr using HEK293 cells. Exposure of cells to SWCNT at 3–300 μg/ml produced significant reduction in cell viability in a concentration-dependent manner. The IC50 value of SWCNT was found to be 87.58 μg/ml. Exposure of HEK cells to SWCNT at 10–100 μg/ml resulted in concentration-dependent cell membrane damage, increased production of IL-8, elevated levels of thiobarbituric acid reactive substances like malondialdehyde and decreased intracellular GSH levels. In summary, exposure to SWCNT resulted in a concentration-dependent cytotoxicity in cultured HEK293 cells that was associated with increased oxidative stress.  相似文献   
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The aim of this study was to evaluate the in vitro toxicity of two multi-wall carbon nanotubes on four different cell lines: human alveolar epithelial (A549) cells, hepatocytes (Hep 3B cells), human embryonic kidney cells, and intestinal (P407 cells) cells. The adverse effects of carbon nanoparticles were analyzed after 24 h incubation with different cell lines using the trypan blue dye exclusion method. Incubation of carbon nanotubes with different cells produced a concentration-dependent inhibition of growth of the cells. The TC50 or IC50 values (toxic concentration 50, i.e., concentration of particles inducing 50% cell mortality) of two nanoparticles were (1) found to be in the range 23.5–30.5 µg mL?1, and (2) less than that of quartz (known toxic agent, 28.8–66.9 µg mL?1), indicating the greater cytotoxic effect of carbon nanoparticles than quartz particles.  相似文献   
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磁性纳米粒子是一种环境友好型吸附剂,广泛应用于废水中重金属的处理。目前,有不少关于纳米粒子毒性的研究,但对处理后的纳米粒子和金属的复合物的毒性却鲜有研究。本文利用纳米四氧化三铁(MNPs)吸附水中的铬离子,以人胚胎肾细胞HEK293为生物模型,通过测定细胞活力、活性氧含量以及细胞摄取量等试验,评估磁性纳米四氧化三铁吸附六价铬后的复合产物对HEK293细胞的毒性。实验结果显示:在本实验浓度和作用时间下,Cr(Ⅵ)离子能够进入细胞,产生氧化应激,并引起细胞毒性;与Cr(Ⅵ)离子相比,磁性纳米四氧化三铁吸附Cr(Ⅵ)后的修复产物MNPs/Cr(Ⅵ)对HEK293细胞无明显毒性效应,MNPs/Cr(Ⅵ)复合物在细胞内的摄取极少,只有极少数颗粒通过内吞的方式进入细胞,且没有进入细胞核内。因此,在本实验的作用浓度和时间下,利用MNPs吸附水环境中Cr(Ⅵ)后的复合物对HEK293细胞没有明显毒性,本研究为深化了解MNPs及其重金属复合物对环境的影响提供了实验依据和参考价值。  相似文献   
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2,2’,4,4’-四溴联苯醚(BDE-47)是生物体中含量最高且毒性最强的PBDEs之一,有关BDE-47对肾细胞的毒性及其作用机制的研究仍有待补充。选取3个剂量组(低:10-6mol·L-1、中:10-5mol·L-1、高:10-4mol·L-1)及溶剂对照组,研究了BDE-47对人胚肾细胞(HEK293)的细胞凋亡率及活性氧(ROS)水平的影响;并从分子水平对细胞氧化损伤、凋亡相关蛋白(APE1及p53)及凋亡相关基因m RNA(p53、Bax、Caspase 3、Caspase 8)的表达量进行测定。实验结果显示:与对照组相比,中、高剂量组细胞凋亡率显著增加(P0.05);ROS水平在中剂量组显著上升(P0.01);随BDE-47浓度的变化,APE1蛋白表达量与细胞ROS水平存在一致性;p53、Bax、Caspase 8 m RNA表达量与BDE-47的浓度间存在剂量-效应关系。结果表明,BDE-47可诱导HEK293细胞凋亡及氧化应激,APE1可能是细胞ROS升高与细胞凋亡间重要的中介因子;BDE-47可以通过影响Caspase 8及线粒体途径中p53及Bax的表达诱导细胞凋亡。  相似文献   
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VR1+细胞模型的构建和Nielsen假说的验证   总被引:1,自引:0,他引:1  
为研究类香草素受体(vanilloid receptortype 1,VR1)作为刺激性室内空气污染物的触发性生物靶分子的生理作用,在VR1-cDNA质粒基础上,应用分子克隆和细胞转染技术构建了体外培养的VR1 -HEK293细胞模型,应用此细胞模型进行辣椒素和甲醛致VR1 -HEK293细胞死亡实验.结果表明,VR1 -HEK293细胞模型构建成功,VR1 细胞死亡实验是一种简便有效的鉴定VR1体外表达的实验方法;甲醛能够激活VR1,且激活反应能被VR1特异性拮抗剂capsazepine所阻断,从而推断甲醛对气道的刺激作用也是通过VR1所介导的.用体外细胞学实验证实了VR1是甲醛作用的生物靶分子,以实验证实了Nielsen假说的正确性.  相似文献   
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