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Prediction of P53 Mutants (Multiple Sites) Transcriptional Activity Based on Structural (2D&3D) Properties

机译:基于结构(2D&3D)特性的P53突变体(多个位点)转录活性的预测

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摘要

Prediction of secondary site mutations that reinstate mutated p53 to normalcy has been the focus of intense research in the recent past owing to the fact that p53 mutants have been implicated in more than half of all human cancers and restoration of p53 causes tumor regression. However laboratory investigations are more often laborious and resource intensive but computational techniques could well surmount these drawbacks. In view of this, we formulated a novel approach utilizing computational techniques to predict the transcriptional activity of multiple site (one-site to five-site) p53 mutants. The optimal MCC obtained by the proposed approach on prediction of one-site, two-site, three-site, four-site and five-site mutants were 0.775,0.341,0.784,0.916 and 0.655 respectively, the highest reported thus far in literature. We have also demonstrated that 2D and 3D features generate higher prediction accuracy of p53 activity and our findings revealed the optimal results for prediction of p53 status, reported till date. We believe detection of the secondary site mutations that suppress tumor growth may facilitate better understanding of the relationship between p53 structure and function and further knowledge on the molecular mechanisms and biological activity of p53, a targeted source for cancer therapy. We expect that our prediction methods and reported results may provide useful insights on p53 functional mechanisms and generate more avenues for utilizing computational techniques in biological data analysis.
机译:由于p53突变体已经参与了所有人类癌症的一半以上,而p53的恢复会导致肿瘤消退,因此预测将p53突变恢复至正常状态的二级位点突变已成为近期研究的重点。但是,实验室研究通常比较费力且耗费资源,但是计算技术可以克服这些缺点。鉴于此,我们制定了一种新的方法,利用计算技术来预测多位点(一个位点到五个位点)p53突变体的转录活性。通过所提出的方法预测一部位,两部位,三部位,四部位和五部位突变体的最佳MCC分别为0.775、0.341,0.784、0.916和0.655,是迄今为止文献报道的最高值。 。我们还证明了2D和3D特征可产生更高的p53活性预测准确性,而我们的发现揭示了迄今报道的预测p53状态的最佳结果。我们相信检测抑制肿瘤生长的二级位点突变可能有助于更好地了解p53结构与功能之间的关系,并进一步了解p53(癌症治疗的靶标来源)的分子机制和生物学活性。我们希望我们的预测方法和报告的结果可能对p53功能机制提供有用的见识,并为利用生物数据分析中的计算技术提供更多途径。

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