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首页> 外文期刊>Journal of proteome research >Quantitative proteomics reveals significant changes in cell shape and an energy shift after IPTG induction via an optimized SILAC approach for Escherichia coli
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Quantitative proteomics reveals significant changes in cell shape and an energy shift after IPTG induction via an optimized SILAC approach for Escherichia coli

机译:定量蛋白质组学揭示了通过优化的SILAC方法对大肠杆菌进行IPTG诱导后细胞形状的显着变化和能量转移

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摘要

Stable isotope labeling by amino acids in cell culture (SILAC) has been widely used in yeast, mammalian cells, and even some multicellular organisms. However, the lack of optimized SILAC media limits its application in Escherichia coli, the most commonly used model organism. We optimized SILACE medium (SILAC medium created in this study for E. coli) for nonauxotrophic E. coli with high growth speed and complete labeling efficiency of the whole proteome in 12 generations. We applied a swapped SILAC workflow and pure null experiment with the SILACE medium using E. coli BL21 (DE3) cells hosting a recombinant plasmid coding for glutathione-S-transferase (GST) and ubiquitin binding domain before and after isopropyl thiogalactoside (IPTG) induction. Finally, we identified 1251 proteins with a significant change in abundance. Pathway analysis suggested that cell growth and fissiparism were inhibited accompanied by the down-regulation of proteins related to energy and metabolism, cell division, and the cell cycle, resulting in the size and shape change of the induced cells. Taken together, the results confirm the development of SILACE medium suitable for efficient and complete labeling of E. coli cells and a data filtering strategy for SILAC-based quantitative proteomics studies of E. coli.
机译:通过细胞培养物中氨基酸的稳定同位素标记(SILAC)已广泛用于酵母,哺乳动物细胞,甚至某些多细胞生物中。但是,缺少优化的SILAC培养基限制了其在最常用的模型生物大肠杆菌中的应用。我们针对非营养型大肠杆菌优化了SILACE培养基(本研究中针对大肠杆菌而创建的SILAC培养基),以使其具有高生长速度并在12代内完整标记了整个蛋白质组。我们应用交换的SILAC工作流程并使用大肠杆菌BL21(DE3)细胞对SILACE培养基进行了纯空实验,该大肠杆菌宿主编码异丙基硫代半乳糖苷(IPTG)之前和之后编码谷胱甘肽S-转移酶(GST)和泛素结合域的重组质粒。最后,我们确定了1251种蛋白质的丰度发生了显着变化。通路分析表明,伴随能量和代谢,细胞分裂和细胞周期的蛋白质的下调,细胞的生长和裂殖被抑制,导致诱导细胞的大小和形状改变。两者合计,结果证实了适用于大肠杆菌细胞高效,完整标记的SILACE培养基的开发以及用于基于SILAC的大肠杆菌定量蛋白质组学研究的数据过滤策略。

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