人类和小鼠微阵列引导下MDCK细胞中膜蛋白运输相关基因的表达分析,MDCK细胞是犬上皮细胞的顶端和基底外侧差异蛋白靶向模型

Xiaofan Xu , Mingming Pan , Alexis E. Gasiewicz , Rongzi Li , Shiu-Ming Kuo
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引用次数: 2

摘要

MDCK细胞被广泛用于研究膜转运蛋白对根尖和基底外膜的不同靶向,但其犬类起源限制了用于分析蛋白质转运机制的商业工具。由于顶膜和底外侧膜仅存在于分化的上皮细胞中,因此对差异靶向至关重要的基因可能在MDCK细胞分化时特异性上调。为了寻找这些基因,采用了跨物种筛选策略。我们首先分析了结肠癌Caco2细胞分化过程中蛋白转运相关基因的人类微阵列数据。然后使用小鼠44K基因表达微阵列分析的结果提取在正常结肠上皮中比原代胚胎成纤维细胞表达更高的候选基因。最后,利用NCBI基因组序列信息设计13个候选基因和10个阴性对照基因的RT-PCR引物,分别在MDCK细胞播种后2、13和17天进行分析。为了确定基因上调是否在上皮细胞分化中具有特异性,我们还对未分化的大鼠肠IEC-6细胞和分化成肌细胞模型小鼠C2C12细胞进行了RT-PCR。在13个候选基因中,SDCBP2、KIF12、KIF27 3个基因符合MDCK细胞分化特异性上调的所有标准。此外,KIF13A在MDCK和C2C12细胞中表达上调,而在相同培养时间的IEC-6细胞中没有表达上调。这些基因的功能需要在未来进行分析。这种跨物种筛选策略可能对其他非人类,非啮齿动物细胞模型有用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Human and mouse microarrays-guided expression analysis of membrane protein trafficking-related genes in MDCK cells, a canine epithelial model for apical and basolateral differential protein targeting

MDCK cells are widely used to study the differential targeting of membrane transporters to apical and basolateral membrane but its canine origin limited the commercial tools available for the analysis of protein trafficking machinery. Because apical and basolateral membranes are only found in differentiated epithelial cells, genes critical for differential targeting may be specifically up-regulated upon MDCK cell differentiation. To search for these genes, a cross-species screening strategy was used. We first analyzed the human microarray data for protein trafficking-related genes that were up-regulated in colon carcinoma Caco2 cells upon differentiation. The results of mouse 44K gene expression microarray analysis were then used to extract additional candidate genes that showed higher expression in normal colon epithelium compared to primary embryonic fibroblasts. Finally, NCBI genomic sequence information was used to design RT-PCR primers for 13 candidate and 10 negative control genes and used to analyze MDCK cells at 2, 13 and 17 days after seeding. To determine whether the gene up-regulation was specific in epithelial differentiation, we also performed RT-PCR on rat non-differentiating intestinal IEC-6 cells and mouse C2C12 cells, a differentiating myoblast model. Of the 13 candidate genes, 3 genes, SDCBP2, KIF12, KIF27, met all criteria of specific up-regulation in differentiated MDCK cells. In addition, KIF13A showed up-regulation in differentiated MDCK and C2C12 cells but not in IEC-6 cells cultured for the same duration. The functions of these genes need to be analyzed in the future. This cross-species screening strategy may be useful for other non-human, non-rodent cell models.

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