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Pin1 通过调节磷脂酰肌醇-5-磷酸信号来决定对氧化应激的敏感性。

Regulation of phosphatidylinositol-5-phosphate signaling by Pin1 determines sensitivity to oxidative stress.

机构信息

CRUK Inositide Laboratory, Paterson Institute for Cancer Research, The University of Manchester, Manchester M20 4BX, UK.

出版信息

Sci Signal. 2012 Nov 27;5(252):ra86. doi: 10.1126/scisignal.2003223.

Abstract

Oxidative signaling and oxidative stress contribute to aging, cancer, and diseases resulting from neurodegeneration. Pin1 is a proline isomerase that recognizes phosphorylated substrates and regulates the localization and conformation of its targets. Pin1(-/-) mice show phenotypes associated with premature aging, yet mouse embryonic fibroblasts (MEFs) from these mice are resistant to hydrogen peroxide (H(2)O(2))-induced cell death. We found that the abundance of phosphatidylinositol-5-phosphate (PtdIns5P) was increased in response to H(2)O(2), an effect that was enhanced in Pin1(-/-) MEFs. Reduction of H(2)O(2)-induced PtdIns5P compromised cell viability in response to oxidative stress, suggesting that PtdIns5P contributed to the enhanced cell viability of Pin1(-/-) MEFs exposed to oxidative stress. The increased PtdIns5P in the Pin1(-/-) MEFs stimulated the expression of genes involved in defense against oxidative stress and reduced the accumulation of reactive oxygen species. Pin1 and PtdIns5P 4-kinases (PIP4Ks), enzymes that phosphorylate and thereby reduce the amount of PtdIns5P, interacted in a manner dependent on the phosphorylation of PIP4K. Although reintroduction of Pin1 into the Pin1(-/-) MEFs reduced the amount of PtdIns5P produced in response to H(2)O(2), in vitro assays indicated that the isomerase activity of Pin1 inhibited PIP4K activity. Whether this isomerise-mediated inhibition of PIP4K occurs in cells remains an open question, but the data suggest that the regulation of PIP4K by Pin1 may be complex.

摘要

氧化信号和氧化应激与衰老、癌症以及神经退行性疾病有关。Pin1 是一种脯氨酸异构酶,可识别磷酸化底物并调节其靶标定位和构象。Pin1(-/-) 小鼠表现出与早衰相关的表型,然而这些小鼠的胚胎成纤维细胞 (MEF) 对过氧化氢 (H2O2) 诱导的细胞死亡具有抗性。我们发现,PtdIns5P 的丰度响应 H2O2 而增加,Pin1(-/-) MEF 中的这种效应增强。减少 H2O2 诱导的 PtdIns5P 会损害对氧化应激的细胞活力,表明 PtdIns5P 有助于增强暴露于氧化应激的 Pin1(-/-) MEF 的细胞活力。Pin1(-/-) MEF 中增加的 PtdIns5P 刺激了参与防御氧化应激的基因的表达,并减少了活性氧物质的积累。Pin1 和 PtdIns5P 4-激酶 (PIP4Ks),即磷酸化并因此减少 PtdIns5P 量的酶,以依赖于 PIP4K 磷酸化的方式相互作用。尽管将 Pin1 重新引入 Pin1(-/-) MEF 中会减少对 H2O2 反应产生的 PtdIns5P 的量,但体外测定表明 Pin1 的异构酶活性抑制了 PIP4K 活性。Pin1 是否通过这种异构酶介导的 PIP4K 抑制发生在细胞中仍是一个悬而未决的问题,但数据表明 Pin1 对 PIP4K 的调节可能很复杂。

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