首页> 外文期刊>Journal of chromatography, B. Analytical technologies in the biomedical and life sciences >Enhanced analysis of human breast cancer proteomes using micro-scale solution isoelectrofocusing combined with high resolution 1-D and 2-D gels
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Enhanced analysis of human breast cancer proteomes using micro-scale solution isoelectrofocusing combined with high resolution 1-D and 2-D gels

机译:微型溶液等电聚焦结合高分辨率一维和二维凝胶增强了对人类乳腺癌蛋白质组的分析

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Current methods for quantitatively comparing proteomes (protein profiling) have inadequate resolution and dynamic range for complex proteomes such as those from mammalian cells or tissues. More extensive profiling of complex proteomes would be obtained if the proteomes could be reproducibly divided into a moderate number of well-separated pools. But the utility of any prefractionation is dependent upon the resolution obtained because extensive cross contamination of many proteins among different pools would make quantitative comparisons impractical. The current study used a recently developed microscale solution isoelectrofocusing (μsol-IEF) method to separate human breast cancer cell extracts into seven well-resolved pools. High resolution fractionation could e achieved in a series of small volume tandem chambers separated by thin acrylamide partitions containing covalently bound immobilines that establish discrete pH zones to separate proteins based upon their pIs. In contrast to analytical 2-D gels, this prefractionation method was capable of separating very large proteins (up to about 500 kDa) that could be subsequently profiled and quantitated using large-pore 1-D SDS gels. The pH 4.5-6.5 region was divided into four 0.5 pH unit ranges because this region had the greatest number of proteins. By using very narrow pH range fractions, sample amounts applied to narow pH range 2-D gels could be increased to detect lower abundance proteins. Although 1.0 pH range 2-D gels were used in these experiments, further protein resolution should be feasible by using 2-D gels with pH ranges that are only slightly wider than the pH ranges of the μsol-IEF fractions. By combining μsol-IEF prefractionation with subsequent large pore 1-D SDS-PAGE (>100 kDa) and narrow range 2-D gels (<100 kDa), large proteins can be reliably quantitated, many more proteins can be resolved, and lower abundance proteins can be detected.
机译:当前用于定量比较蛋白质组(蛋白质谱)的方法对于复杂蛋白质组(例如来自哺乳动物细胞或组织的蛋白质组)的分辨率和动态范围不足。如果可以将蛋白质组可复制地划分为中等数量的良好分离的库,则可以获得更复杂的蛋白质组图。但是,任何预分离的效用都取决于所获得的分辨率,因为不同池中许多蛋白质的广泛交叉污染将使定量比较不切实际。当前的研究使用了最近开发的微尺度溶液等电聚焦(μsol-IEF)方法将人乳腺癌细胞提取物分离为七个良好解析的库。高分辨率分级分离可以在一系列小串联串联室中实现,这些串联室由包含共价结合固定物的薄丙烯酰胺分隔物分隔开,这些固定物建立了离散的pH区,从而基于pI分离蛋白质。与分析型2-D凝胶相反,这种预分离方法能够分离非常大的蛋白质(最大约500 kDa),随后可以使用大孔1-D SDS凝胶进行分析和定量。 pH 4.5-6.5区域分为四个0.5 pH单位范围,因为该区域具有最大数量的蛋白质。通过使用非常窄的pH范围馏分,可以增加应用于NapH pH范围2-D凝胶的样品量,以检测较低的丰度蛋白。尽管在这些实验中使用了1.0 pH范围的2-D凝胶,但通过使用pH范围仅比μsol-IEF馏分的pH范围稍宽的2-D凝胶,进一步的蛋白质拆分应该是可行的。通过将μsol-IEF预分离与后续的大孔径1-D SDS-PAGE(> 100 kDa)和窄范围2-D凝胶(<100 kDa)结合使用,可以可靠地定量大蛋白,可以分离更多的蛋白,降低可以检测到丰富的蛋白质。

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