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Phosphorylation Variation during the Cell Cycle Scales with Structural Propensities of Proteins

机译:细胞周期尺度期间的磷酸化变化具有蛋白质的结构施力

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摘要

Phosphorylation at specific residues can activate a protein, lead to its localization to particular compartments, be a trigger for protein degradation and fulfill many other biological functions. Protein phosphorylation is increasingly being studied at a large scale and in a quantitative manner that includes a temporal dimension. By contrast, structural properties of identified phosphorylation sites have so far been investigated in a static, non-quantitative way. Here we combine for the first time dynamic properties of the phosphoproteome with protein structural features. At six time points of the cell division cycle we investigate how the variation of the amount of phosphorylation correlates with the protein structure in the vicinity of the modified site. We find two distinct phosphorylation site groups: intrinsically disordered regions tend to contain sites with dynamically varying levels, whereas regions with predominantly regular secondary structures retain more constant phosphorylation levels. The two groups show preferences for different amino acids in their kinase recognition motifs - proline and other disorder-associated residues are enriched in the former group and charged residues in the latter. Furthermore, these preferences scale with the degree of disorderedness, from regular to irregular and to disordered structures. Our results suggest that the structural organization of the region in which a phosphorylation site resides may serve as an additional control mechanism. They also imply that phosphorylation sites are associated with different time scales that serve different functional needs.
机译:特定残留物的磷酸化可以激活蛋白质,导致其对特定隔室的本地化,是蛋白质降解的触发,并满足许多其他生物学功能。越来越多地研究蛋白质磷酸化,并以包含时间尺寸的定量方式研究。相比之下,到目前为止已经以静态,非定量方式研究了鉴定的磷酸化位点的结构性。在这里,我们与蛋白质结构特征的第一次动态性质结合在一起。在细胞分裂周期的六个时间点,我们研究了磷酸化量的变化如何与修饰位点附近的蛋白质结构相关。我们发现两个不同的磷酸化位点组:本质上无序区域倾向于含有动态变化水平的部位,而主要常规二级结构的区域保持更恒定的磷酸化水平。两组表现出对其激酶识别基序的不同氨基酸的偏好 - 脯氨酸和其他无序相关的残留物在后者中富含原组和带电残基。此外,这些偏好与无序程度的程度,从规则到不规则和无序的结构。我们的研究结果表明,磷酸化位点所在的区域的结构组织可以作为另外的控制机制。它们还暗示,磷酸化位点与用于不同功能需求的不同时间尺度相关联。

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