...
首页> 外文期刊>Proceedings of the Society for Experimental Biology and Medicine >Sugar transport regulation: Comparative characterization of the effect of NADH CoQ reductase deficiency in two cell culture systems
【24h】

Sugar transport regulation: Comparative characterization of the effect of NADH CoQ reductase deficiency in two cell culture systems

机译:糖转运调节:两种细胞培养系统中NADH CoQ还原酶缺乏症影响的比较特征

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

In this report, we have characterized the upregulation of glucose transport in two different respiration-deficient fibroblast cell cultures. We have demonstrated that glucose transport increases in respiration-deficient cells as measured by 2 deoxy D-glucose transport and Is readily observed in both the WG750 human and G14 Chinese hamster fibroblast respiration-deficient cell lines when compared with the MCH55 normal human and V79 parental Chinese hamster cell lines, respectively, Using subcellular fractionation techniques, the GLUT 1 glucose transporter was found located predominantly in the plasma membrane-enriched fraction of the human and hamster cell lines. In human cells, the expression of the GLUT 1 glucose transporter was elevated three-fold in the plasma membrane-enriched fraction of the WG750 respiration-deficient mutant cells. In the Chinese hamster cell lines, the respiration-deficient G14 cells exhibited no such GLUT 1 glucose transporter elevation in the plasma membrane-enriched fraction, yet expressed a >2-fold increase in glucose transport. Furthermore, the G14 cells had a similar content of GLUT 1 glucose transporter in the plasma membrane fraction when compared with the V79 parental cell line. Using Western blot analysis, the GLUT 1 glucose transporter in G14 cells exhibited a different mobility on a polyacrylamide gel when compared with the mobility of the GLUT 1 glucose transporter of the V79 cell line. This differential mobility of the glucose transporters in the hamster cells appeared to be related to glycosylation differences of the glucose transporters, Although normal human and hamster cell lines exhibited significant increases in insulin-stimulated sugar transport (P < 0.05), the two respective respiration-deficient cell lines exhibited no significant increases in insulin-stimulated sugar transport (P, 0.05), Additionally, the expression of the GLUT 1 mRNA in the human WG750 mutant cells was elevated when compared with GLUT 1 mRNA in normal cells. Insulin exposure significantly increased GLUT 1 mRNA in human cells (P< 0.05), No differences in the GLUT 1 mRNA were observed between both hamster cell lines. Thus, both respiration-deficient cell lines are insulin resistant (i.e., regarding their insulin-stimulated sugar transport). The respiration-deficient mutation results in an increased sugar transport in the human and hamster cells; however, the human cells adapt to the mutation by increasing their levels of GLUT 1 mRNA and eventually membrane-located glucose transporters. On the other hand, the hamster cells adapt by apparently modifying their glucose transporters' intrinsic activity via glycosylation. We feel that these cell systems can be effective models to study the multiple factors involved in sugar transport regulation in vertebrate cells. [References: 33]
机译:在这份报告中,我们表征了两种不同的呼吸缺陷型成纤维细胞培养物中葡萄糖转运的上调。我们已经证明,通过2个脱氧D-葡萄糖转运可以测量到呼吸不足细胞中的葡萄糖转运增加,并且与MCH55正常人和V79亲本相比,在WG750人和G14中国仓鼠成纤维细胞呼吸不足细胞系中都容易观察到分别使用中国仓鼠细胞系,使用亚细胞分级分离技术,发现GLUT 1葡萄糖转运蛋白主要位于人和仓鼠细胞系的质膜富集部分。在人类细胞中,在WG750呼吸缺陷型突变细胞的富含质膜的部分中,GLUT 1葡萄糖转运蛋白的表达提高了三倍。在中国仓鼠细胞系中,呼吸不足的G14细胞在富含质膜的部分中未表现出GLUT 1葡萄糖转运蛋白升高,但葡萄糖转运却表达> 2倍的增加。此外,与V79亲本细胞系相比,G14细胞在质膜级分中具有相似含量的GLUT 1葡萄糖转运蛋白。使用蛋白质印迹分析,与V79细胞系的GLUT 1葡萄糖转运蛋白的迁移率相比,G14细胞中的GLUT 1葡萄糖转运蛋白在聚丙烯酰胺凝胶上表现出不同的迁移率。仓鼠细胞中葡萄糖转运蛋白的这种差异迁移性似乎与葡萄糖转运蛋白的糖基化差异有关。尽管正常人和仓鼠细胞系在胰岛素刺激的糖转运中表现出显着增加(P <0.05),但两种呼吸作用缺乏的细胞系在胰岛素刺激的糖转运中没有显着增加(P,0.05)。此外,与正常细胞中的GLUT 1 mRNA相比,人WG750突变细胞中GLUT 1 mRNA的表达升高。胰岛素暴露显着增加人细胞中的GLUT 1 mRNA(P <0.05),两种仓鼠细胞系之间均未观察到GLUT 1 mRNA的差异。因此,两种呼吸缺陷细胞系都具有胰岛素抵抗性(即,关于它们的胰岛素刺激的糖转运)。缺乏呼吸的突变导致人和仓鼠细胞中糖的转运增加;然而,人类细胞通过增加其GLUT 1 mRNA的水平和最终位于膜上的葡萄糖转运蛋白来适应突变。另一方面,仓鼠细胞通过糖基化明显修饰其葡萄糖转运蛋白的固有活性来适应。我们认为这些细胞系统可以成为研究脊椎动物细胞中糖转运调控的多种因素的有效模型。 [参考:33]

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号