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营养限制使哺乳动物细胞对 GSK-3β 抑制剂敏感,并导致生长受损。

Nutritional limitation sensitizes mammalian cells to GSK-3β inhibitors and leads to growth impairment.

机构信息

Department of Biotechnology and Biosciences, University of Milano-Bicocca, Milan, Italy.

出版信息

Am J Pathol. 2011 Apr;178(4):1814-23. doi: 10.1016/j.ajpath.2010.12.047.

Abstract

The serine/threonine kinase GSK-3β was initially described as a key enzyme involved in glucose metabolism, but it is now known to regulate a wide range of biological processes, including proliferation and apoptosis. We previously reported a transformation-dependent cell death induced by glucose limitation in K-ras-transformed NIH3T3. To address the mechanism of this phenomenon, we analyzed GSK-3β regulation in these cells in conditions of high versus low glucose availability. We found that glucose depletion caused a marked inhibition of GSK-3β through posttranslational mechanisms and that this inhibition was much less pronounced in normal cells. Further inhibition of GSK-3β with lithium chloride, combined with glucose shortage, caused specific activation of AMP-activated protein kinase and significant suppression of proliferation in transformed but not normal cells. The cooperative effect of lithium and low glucose availability on cell growth did not seem to depend exclusively on ras pathway activation because two human cell lines, A549 and MDA-MB-231, both harboring an activated ras gene, showed very different sensitivity to lithium. These findings thus provide a rationale to further analyze the biochemical bases for combined glucose deprivation and GSK-3β inhibition as a new approach to control transformed cell growth.

摘要

丝氨酸/苏氨酸激酶 GSK-3β 最初被描述为参与葡萄糖代谢的关键酶,但现在已知它调节广泛的生物过程,包括增殖和细胞凋亡。我们之前报道了在 K-ras 转化的 NIH3T3 中,葡萄糖限制诱导的转化依赖性细胞死亡。为了解释这一现象的机制,我们分析了这些细胞在高葡萄糖和低葡萄糖供应条件下 GSK-3β 的调节。我们发现葡萄糖耗竭通过翻译后机制显著抑制 GSK-3β,而在正常细胞中这种抑制作用不那么明显。用氯化锂进一步抑制 GSK-3β,再加上葡萄糖缺乏,会特异性激活 AMP 激活的蛋白激酶,并显著抑制转化细胞而非正常细胞的增殖。锂和低葡萄糖供应对细胞生长的协同作用似乎并不完全依赖于 ras 通路的激活,因为两种人细胞系 A549 和 MDA-MB-231 都含有激活的 ras 基因,但对锂的敏感性非常不同。这些发现为进一步分析联合葡萄糖剥夺和 GSK-3β 抑制作为控制转化细胞生长的新方法的生化基础提供了依据。

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