首页> 外文期刊>International Journal of Molecular Sciences >Computational Identification and Modeling of Crosstalk between Phosphorylation, O-β-glycosylation and Methylation of FoxO3 and Implications for Cancer Therapeutics
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Computational Identification and Modeling of Crosstalk between Phosphorylation, O-β-glycosylation and Methylation of FoxO3 and Implications for Cancer Therapeutics

机译:FoxO3的磷酸化,O-β-糖基化和甲基化之间的串扰的计算鉴定和建模及其对癌症治疗的意义

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FoxO3 is a member of the forkhead class of transcription factors and plays a major role in the regulation of diverse cellular processes, including cell cycle arrest, DNA repair, and protection from stress stimuli by detoxification of reactive oxygen species. In addition, FoxO3 is a tumor suppressor and has been considered as a novel target for cancer therapeutics. Phosphorylation of FoxO3 via the AKT, IKK, and ERK pathways leads to deregulation, cytoplasmic retention, degradation of FoxO3 and favors tumor progression. Identification of the amino acid residues that are the target of different posttranslational modifications (PTMs) provides a foundation for understanding the molecular mechanisms of FoxO3 modifications and associated outcomes. In addition to phosphorylation, serine and threonine residues of several proteins are regulated by a unique type of PTM known as O-β-glycosylation, which serves as a functional switch. We sought to investigate the crosstalk of different PTMs on the FoxO3 which leads to the onset/progression of various cancers and that could also potentially be targeted as a therapeutic point of intervention. A computational workflow and set of selection parameters have been defined for the identification of target sites and crosstalk between different PTMs. We identified phosphorylation, O-β-GlcNAc modification, and Yin Yang sites on Ser/Thr residues, and propose a potential novel mechanism of crosstalk between these PTMs. Furthermore, methylation potential of human FoxO3 at arginine and lysine residues and crosstalk between methylation and phosphorylation have also been described. Our findings may facilitate the study of therapeutic strategies targeting posttranslational events.
机译:FoxO3是叉头类转录因子的成员,在多种细胞过程的调节中起主要作用,包括细胞周期停滞,DNA修复以及通过活性氧的解毒来保护免受应激刺激。此外,FoxO3是一种肿瘤抑制因子,被认为是癌症治疗的新靶标。通过AKT,IKK和ERK途径使FoxO3磷酸化会导致调节失调,细胞质保留,FoxO3降解并有利于肿瘤进展。鉴定作为不同翻译后修饰(PTM)靶标的氨基酸残基为理解FoxO3修饰的分子机制及相关结果提供了基础。除磷酸化外,几种蛋白质的丝氨酸和苏氨酸残基还受称为O-β-糖基化的独特PTM类型的调节,该功能可作为功能开关。我们试图研究FoxO3上不同PTM的串扰,这种串扰会导致各种癌症的发作/进展,也有可能将其作为干预措施的治疗目标。已经定义了计算工作流程和选择参数集,用于识别目标站点和不同PTM之间的串扰。我们鉴定出磷酸化,O-β-GlcNAc修饰和Ser / Thr残基上的阴阳位点,并提出了这些PTM之间潜在的新型串扰机制。此外,还描述了人FoxO3在精氨酸和赖氨酸残基处的甲基化潜力以及甲基化和磷酸化之间的串扰。我们的发现可能有助于研究针对翻译后事件的治疗策略。

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