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含天然及化学修饰残基的修饰肽细胞穿透潜力的预测

Prediction of Cell-Penetrating Potential of Modified Peptides Containing Natural and Chemically Modified Residues.

作者信息

Kumar Vinod, Agrawal Piyush, Kumar Rajesh, Bhalla Sherry, Usmani Salman Sadullah, Varshney Grish C, Raghava Gajendra P S

机构信息

Center for Computational Biology, Indraprastha Institute of Information Technology, Okhla, India.

Bioinformatics Centre, CSIR-Institute of Microbial Technology, Sector-39A, Chandigarh, India.

出版信息

Front Microbiol. 2018 Apr 12;9:725. doi: 10.3389/fmicb.2018.00725. eCollection 2018.

Abstract

Designing drug delivery vehicles using cell-penetrating peptides is a hot area of research in the field of medicine. In the past, number of methods have been developed for predicting cell-penetrating property of peptides containing natural residues. In this study, first time attempt has been made to predict cell-penetrating property of peptides containing natural and modified residues. The dataset used to develop prediction models, include structure and sequence of 732 chemically modified cell-penetrating peptides and an equal number of non-cell penetrating peptides. We analyzed the structure of both class of peptides and observed that positive charge groups, atoms, and residues are preferred in cell-penetrating peptides. In this study, models were developed to predict cell-penetrating peptides from its tertiary structure using a wide range of descriptors (2D, 3D descriptors, and fingerprints). Random Forest model developed by using PaDEL descriptors (combination of 2D, 3D, and fingerprints) achieved maximum accuracy of 95.10%, MCC of 0.90 and AUROC of 0.99 on the main dataset. The performance of model was also evaluated on validation/independent dataset which achieved AUROC of 0.98. In order to assist the scientific community, we have developed a web server "CellPPDMod" for predicting the cell-penetrating property of modified peptides (http://webs.iiitd.edu.in/raghava/cellppdmod/).

摘要

利用细胞穿透肽设计药物递送载体是医学领域一个热门的研究方向。过去,已经开发了多种方法来预测含有天然氨基酸残基的肽的细胞穿透特性。在本研究中,首次尝试预测含有天然和修饰氨基酸残基的肽的细胞穿透特性。用于开发预测模型的数据集包括732种化学修饰的细胞穿透肽以及同等数量的非细胞穿透肽的结构和序列。我们分析了这两类肽的结构,发现细胞穿透肽中带正电荷的基团、原子和残基更受青睐。在本研究中,利用多种描述符(二维、三维描述符和指纹)开发了从三级结构预测细胞穿透肽的模型。使用PaDEL描述符(二维、三维和指纹的组合)开发的随机森林模型在主要数据集上的最大准确率为95.10%,马修斯相关系数为0.90,曲线下面积为0.99。该模型在验证/独立数据集上的性能也进行了评估,曲线下面积为0.98。为了帮助科学界,我们开发了一个网络服务器“CellPPDMod”,用于预测修饰肽的细胞穿透特性(http://webs.iiitd.edu.in/raghava/cellppdmod/)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d39/5906597/0897d84b6243/fmicb-09-00725-g0001.jpg

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