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首页> 外文期刊>International Journal of Computers & Applications >Prediction of protein folding kinetics states using hybrid brainstorm optimization
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Prediction of protein folding kinetics states using hybrid brainstorm optimization

机译:用杂交头脑风暴优化预测蛋白质折叠动力学状态

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摘要

Protein folding procedure is tremendously vital in determining the molecular role. The protein folding kinetics states select if the molecule influences the natural structure of intermediates or not. The fold can be complete with stable intermediates (3-State/3S) or without stable intermediates (2-State/2S). Protein folding is regularly determined, using experiments and often takes time and dreary. Furthermore, there are significant numbers of unfolding mechanisms that are available in the PDB to originate unidentified. Henceforth, it made curiosity and we focused on classifying and envisaging the folding mechanism as three-state or two-state. The authors established the clustering models by modified brainstorm optimization (MBSO) using the Fuzzy C-Means (FCM) algorithm through known parameters (hydrophobicity, length, hydrophilicity, and secondary structural components) to predict the protein folding kinetic states. The prototypes implemented well enough for envisaging three-state and two-state folding using the recognized features. MBSO using FCM shows a better model when compared with MBSO. The MBSO using FCM algorithm produced good accuracy in Davies-Bouldin index and Dunn index for clustering.The result depicts the better performance of MBSO using FCM techniques with the best prediction when compared with MBSO. In future, we can further extend to predict protein fold recognition.
机译:蛋白质折叠程序在确定分子作用方面是至关重要的。蛋白质折叠动力学状态选择分子是否影响中间体的自然结构。折叠可以用稳定的中间体(3态/ 3s)或没有稳定的中间体(2态/ 2s)。使用实验经常确定蛋白质折叠,经常需要时间和沉闷。此外,PDB中有很多展开机制可用于源于未识别的。从此,它使好奇心,我们专注于分类和设想折叠机制为三个状态或两国。作者通过通过已知参数(疏水性,长度,亲水性和二级结构组分)来通过修改的头脑风暴优化(MBSO)来建立聚类模型,以预测蛋白质折叠动力学状态的模糊C-MeansorM优化(FCM)算法。原型实现得足以使用所公认的特征设想三个状态和两个状态折叠。 MBSO使用FCM显示与MBSO相比的更好模型。 MBSO使用FCM算法在Davies-Bouldin指数和DUNN指数中产生了良好的精度。结果描述了使用FCM技术的MBSO具有更好的性能,与MBSO相比,具有最佳预测。未来,我们可以进一步扩展以预测蛋白质折叠识别。

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