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Posttranslational modifications control FoxO3 activity during denervation

机译:翻译后修饰控制去神经过程中FoxO3的活性

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摘要

Loss of muscle mass occurs in a variety of diseases including cancer, chronic heart failure, AIDS, diabetes, and renal failure, often aggravating pathological progression. The atrophy process is controlled by a transcriptional program that regulates the expression of a subset of genes named atrophy-related genes. The Forkhead Box O (FoxO) family of transcription factors plays a critical role in the atrophy program being sufficient and necessary for the expression of rate-limiting enzymes of ubiquitin-proteasome and autophagy-lysosome systems. Therefore, a fine regulation of FoxOs is critical to avoid excessive proteolysis and ca-chexia. FoxO activity can be modulated by different mechanisms including phosphorylation, acetylation, ubiquitination, and glycosyl-ation. Here we show that FoxO3 is progressively acetylated during denervation and concomitantly atrogin-1, the bona fide FoxO3 target, is downregulated. FoxO3 interacts with the histone acetyl-transferase p300, and its acetylation causes cytosolic relocalization and degradation. Several lysine residues of FoxOs are known to be acetylated. To identify which lysines are critical for Fox03 activity we have generated different FoxO3 mutants that either mimic or prevent lysine acetylation. We found that FoxO3 mutants that mimic acetylation show a decrease of transcriptional activity and cytosolic localization. Importantly, acetylation induces FoxO3 degradation via proteasome system. Between the different lysines, lysine 262 is critical for translocation of FoxO3. In conclusion, we provide evidence that FoxO3 activity is negatively modulated by acetylation and ubiquitination in a time-dependent and coordinated manner. This fine-tuning mechanism of FoxO3 regulation may be important to prevent excessive muscle loss and can be used as a therapeutic approach to counteract muscle wasting.
机译:肌肉质量的丧失发生在多种疾病中,包括癌症,慢性心力衰竭,艾滋病,糖尿病和肾衰竭,通常加重了病理进程。萎缩过程由转录程序控制,该程序调节名为萎缩相关基因的基因子集的表达。 Forkhead Box O(FoxO)家族的转录因子在萎缩程序中起着至关重要的作用,对于表达遍在蛋白-蛋白酶体和自噬-溶酶体系统的限速酶而言是充分和必要的。因此,对FoxOs的精细调节对于避免过度的蛋白水解和趋化性至关重要。 FoxO活性可以通过不同的机制进行调节,包括磷酸化,乙酰化,泛素化和糖基化。在这里,我们显示FoxO3在去神经过程中逐渐被乙酰化,并同时下调了真正的FoxO3靶标atrogin-1。 FoxO3与组蛋白乙酰转移酶p300相互作用,其乙酰化作用引起胞质的重新定位和降解。已知FoxO的几个赖氨酸残基被乙酰化。为了确定哪些赖氨酸对Fox03的活性至关重要,我们生成了模拟或阻止赖氨酸乙酰化的不同FoxO3突变体。我们发现,模拟乙酰化的FoxO3突变体显示转录活性和胞质定位降低。重要的是,乙酰化通过蛋白酶体系统诱导FoxO3降解。在不同的赖氨酸之间,赖氨酸262对于FoxO3的转运至关重要。总之,我们提供的证据表明,FoxO3活性受到乙酰化和泛素化作用的时间依赖性和协调性的负调节。 FoxO3调节的这种微调机制对于防止肌肉过度流失可能很重要,可以用作抵消肌肉消瘦的治疗方法。

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