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通过实空间成像分析无细胞蛋白质合成中基因依赖性翻译进程。

Profiling of gene-dependent translational progress in cell-free protein synthesis by real-space imaging.

作者信息

Mikamo-Satoh Eriko, Takagi Akihiko, Tanaka Hiroyuki, Matsumoto Takuya, Nishihara Tsutomu, Kawai Tomoji

机构信息

Department of Pharmacy, Hyogo University of Health Sciences, Kobe, Hyogo 650-8530, Japan.

出版信息

Anal Biochem. 2009 Nov 15;394(2):275-80. doi: 10.1016/j.ab.2009.07.033. Epub 2009 Jul 28.

Abstract

In general, gene-dependent translational progress affects the efficiency of protein expression. To evaluate the translational progress of protein synthesis, it is necessary to trace the time course of translation as well as the quantity of products. Here we present a new method for tracking translation steps in cell-free protein synthesis using atomic force microscopy (AFM). The cell-free protein synthesis system is useful to track the inherent translational progress of a target gene, whereas conventional UV absorption measurement coupled with density gradient fractionation is difficult to analyze such small sample quantities. Because the high resolution of AFM enables us to clearly count the number of ribosomes included in polysomes, polysome profiles can be obtained directly without complicated fractionation. With this method, we could elucidate the detailed polysome profile with only 1 microl of sample solution. We observed the translational progress of green fluorescent protein synthesis, a model of high-expression protein, as well as human retinoid X receptor. Detailed polysome profiles showed different patterns of translational progress and were clearly associated with the results of time-dependent protein expression. Our study suggests the possibility for comprehensive character analysis of inherent gene-dependent translational progress.

摘要

一般来说,基因依赖的翻译进程会影响蛋白质表达效率。为了评估蛋白质合成的翻译进程,有必要追踪翻译的时间进程以及产物的数量。在此,我们展示了一种使用原子力显微镜(AFM)在无细胞蛋白质合成中追踪翻译步骤的新方法。无细胞蛋白质合成系统有助于追踪目标基因固有的翻译进程,而传统的紫外吸收测量结合密度梯度分级分离难以分析如此少量的样品。由于AFM的高分辨率使我们能够清楚地计数多聚核糖体中包含的核糖体数量,因此无需复杂的分级分离即可直接获得多聚核糖体图谱。使用这种方法,我们仅用1微升样品溶液就能阐明详细的多聚核糖体图谱。我们观察了绿色荧光蛋白合成(一种高表达蛋白模型)以及人类视黄醇X受体的翻译进程。详细的多聚核糖体图谱显示出不同的翻译进程模式,并且与时间依赖性蛋白质表达的结果明显相关。我们的研究表明对基因依赖的固有翻译进程进行全面特征分析是有可能的。

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