Oh J-E, Karlmark Raja K, Shin J-H, Hengstschläger M, Pollak A, Lubec G
Department of Pediatrics, Medical University of Vienna, Vienna, Austria.
Amino Acids. 2005 Nov;29(3):273-82. doi: 10.1007/s00726-005-0214-9. Epub 2005 Jun 30.
Involvement of individual antioxidant proteins (AOXP) and antioxidants in the differentiation process has been already reported. A systematic search strategy for detecting differentially regulated AOXP in neuronal differentiation, however, has not been published so far. The aim of this study was to provide an analytical tool identifying AOXP and to generate a differentiation-related AOXP expressional pattern. The undifferentiated N1E-115 neuroblastoma cell line was switched into a neuronal phenotype by DMSO treatment and used for proteomic experiments: We used two-dimensional gel electrophoresis followed by unambiguous mass spectrometrical (MALDI-TOF-TOF) identification of proteins to generate a map of AOXP. 16 AOXP were unambiguously determined in both cell lines; catalase, thioredoxin domain-containing protein 4 and hypothetical glutaredoxin/glutathione S-transferase C terminus-containing protein were detectable in the undifferentiated cells only. Five AOXP were observed in both, undifferentiated and differentiated cells and thioredoxin, thioredoxin-like protein p19, thioredoxin reductase 1, superoxide dismutases (Mn and Cu-Zn), glutathione synthetase, glutathione S-transferase P1 and Mu1 were detected in differentiated cells exclusively. Herein a differential expressional pattern is presented that reveals so far unpublished antioxidant principles involved in neuronal differentiation by a protein chemical approach, unambiguously identifying AOXP. This finding not only shows concomitant determination of AOXP but also serves as an analytical tool and forms the basis for design of future studies addressing AOXP and differentiation per se.
个别抗氧化蛋白(AOXP)和抗氧化剂参与分化过程的情况已有报道。然而,迄今为止尚未发表用于检测神经元分化中差异调节的AOXP的系统搜索策略。本研究的目的是提供一种鉴定AOXP的分析工具,并生成与分化相关的AOXP表达模式。通过二甲基亚砜(DMSO)处理将未分化的N1E-115神经母细胞瘤细胞系转变为神经元表型,并用于蛋白质组学实验:我们采用二维凝胶电泳,随后通过明确的质谱(基质辅助激光解吸电离飞行时间串联质谱)鉴定蛋白质,以生成AOXP图谱。在两种细胞系中明确鉴定出16种AOXP;过氧化氢酶、含硫氧还蛋白结构域的蛋白4和假定的含谷氧还蛋白/谷胱甘肽S-转移酶C末端的蛋白仅在未分化细胞中可检测到。在未分化和分化细胞中均观察到5种AOXP,硫氧还蛋白、硫氧还蛋白样蛋白p19、硫氧还蛋白还原酶1、超氧化物歧化酶(锰和铜锌)、谷胱甘肽合成酶、谷胱甘肽S-转移酶P1和Mu1仅在分化细胞中检测到。本文展示了一种差异表达模式,该模式通过蛋白质化学方法揭示了迄今为止未发表的参与神经元分化的抗氧化原理,明确鉴定了AOXP。这一发现不仅显示了AOXP的伴随测定,还作为一种分析工具,并为今后针对AOXP和分化本身的研究设计奠定了基础。