p53基因缺失和半合子转基因小鼠胚胎成纤维细胞中蛋白质合成的改变。

C He, B A Merrick, R M Patterson, J K Selkirk
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引用次数: 0

摘要

p53缺陷转基因小鼠的胚胎成纤维细胞在体外表现出明显的表型和生物学变化。在这项研究中,我们利用高分辨率二维凝胶电泳技术,通过比较p53阴性(-/-)、半合子(+/-)和p53阳性纯合子(+/+)细胞的蛋白谱,研究了p53对其他细胞蛋白合成的可能影响。通过计算机图像分析,在35s -蛋氨酸标记的每个细胞系中共检测到850多个蛋白,并且在p53-/-细胞中检测到许多蛋白发生定性或定量变化,在p53+/-细胞中检测到少量蛋白。具体来说,在p53-/-细胞中检测不到7种蛋白,并且没有检测到新的蛋白。p53+/-细胞系未检测到新表达蛋白和缺失蛋白。定量上,在p53-/-和p53+/-细胞中分别检测到97和59种蛋白的显著定量变化(3倍以上)。一般来说,大多数蛋白质的变化属于以下四种模式之一:1)细胞中从p53+/+到p53+/-再到p53-/-的合成逐渐减少;2)细胞中从p53+/+到p53+/-再到p53-/-的合成逐渐增加;3)仅p53-/-细胞合成减少;4)仅在p53-/-细胞中增加合成。在p53-/-细胞中发现了一种70 kD的热休克蛋白(hsp70),与p53+/+细胞相比,hsp70的表达量增加了1000倍以上。转铁蛋白、原肌球蛋白和增殖细胞核抗原(PCNA)也在本研究中被鉴定和测定。在p53-/-细胞中,转铁蛋白和原肌球蛋白的合成分别显著增加或减少,而p53-/-细胞的增殖率远高于其他两种细胞系(p53+/+和p53+/-细胞)(3-4倍),但PCNA的表达无显著变化。我们的结论是,单个重要基因p53的破坏会导致一系列蛋白质变化,这些变化与p53介导的细胞周期控制的负面生长效应的丧失有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Altered protein synthesis in p53 null and hemizygous transgenic mouse embryonic fibroblasts.

Embryonic fibroblasts derived from p53-deficient transgenic mice showed distinct phenotypic and biological changes in vitro. In this study, we investigated the possible impact of p53 on the synthesis of other cellular proteins by comparing the protein profiles of p53 null (-/-), hemizygous (+/-) and p53 positive homozygous (+/+) cells using high resolution two dimensional gel electrophoresis. A total of more than 850 proteins were detected in each cell line labeled with 35S-methionine by using computerized image analysis, and a number of proteins were detected with qualitative or quantitative changes in p53-/- cells and to a lesser extent in p53+/- cells. Specifically, seven proteins became undetectable, and no new proteins were detected in p53-/- cells. Neither newly expressed nor absent proteins were detected in p53+/- cell line. Quantitatively, a total of 97 and 59 proteins were detected with significant quantitative changes (3 fold or greater) in p53-/- and p53+/- cells, respectively. Generally, most protein changes fell into one of the following four patterns: 1) progressively decreased synthesis in cells from p53+/+ to p53+/- to p53-/- cells; 2) progressively increased synthesis in cells from p53+/+ to p53+/- to p53-/- cells; 3) decreased synthesis only in p53-/- cells; and 4) increased synthesis only in p53-/- cells. A 70 kD heat shock protein (Hsp 70) was identified and showed a greater than 1,000-fold increase in p53-/- cells compared to that in p53+/+ cells. Transferrin, tropomyosin, and proliferating cell nuclear antigen (PCNA) have also been identified and measured in this study. Synthesis of transferrin and tropomyosin was significantly increased or decreased, respectively in p53-/- cells, whereas expression of PCNA showed no significant change in p53-/- cells despite their much higher (3-4 times) proliferation rate than the other two cell lines (p53+/+ and p53+/- cells). We conclude that disruption of a single important gene, p53, results in a cascade of protein changes which are related to the loss of p53 mediated negative growth effects on cell cycle control.

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