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采用贝叶斯判别法对内部赖氨酸上的Nε-乙酰化进行预测。

Prediction of Nepsilon-acetylation on internal lysines implemented in Bayesian Discriminant Method.

作者信息

Li Ao, Xue Yu, Jin Changjiang, Wang Minghui, Yao Xuebiao

机构信息

Department of Pathology, School of Medicine, Yale University, New Haven, CT 06520, USA.

出版信息

Biochem Biophys Res Commun. 2006 Dec 1;350(4):818-24. doi: 10.1016/j.bbrc.2006.08.199. Epub 2006 Oct 2.

Abstract

Protein acetylation is an important and reversible post-translational modification (PTM), and it governs a variety of cellular dynamics and plasticity. Experimental identification of acetylation sites is labor-intensive and often limited by the availability of reagents such as acetyl-specific antibodies and optimization of enzymatic reactions. Computational analyses may facilitate the identification of potential acetylation sites and provide insights into further experimentation. In this manuscript, we present a novel protein acetylation prediction program named PAIL, prediction of acetylation on internal lysines, implemented in a BDM (Bayesian Discriminant Method) algorithm. The accuracies of PAIL are 85.13%, 87.97%, and 89.21% at low, medium, and high thresholds, respectively. Both Jack-Knife validation and n-fold cross-validation have been performed to show that PAIL is accurate and robust. Taken together, we propose that PAIL is a novel predictor for identification of protein acetylation sites and may serve as an important tool to study the function of protein acetylation. PAIL has been implemented in PHP and is freely available on a web server at: http://bioinformatics.lcd-ustc.org/pail.

摘要

蛋白质乙酰化是一种重要的可逆性翻译后修饰(PTM),它调控着多种细胞动力学和可塑性。乙酰化位点的实验鉴定工作强度大,且常常受到诸如乙酰特异性抗体等试剂可用性以及酶促反应优化的限制。计算分析可能有助于潜在乙酰化位点的鉴定,并为进一步实验提供思路。在本论文中,我们展示了一个名为PAIL的新型蛋白质乙酰化预测程序,该程序用于预测内部赖氨酸的乙酰化,采用贝叶斯判别方法(BDM)算法实现。PAIL在低、中、高阈值下的准确率分别为85.13%、87.97%和89.21%。已进行了留一法验证和n折交叉验证,以表明PAIL准确且稳健。综上所述,我们提出PAIL是一种用于鉴定蛋白质乙酰化位点的新型预测工具,可能成为研究蛋白质乙酰化功能的重要工具。PAIL已用PHP实现,并可在网页服务器上免费获取:http://bioinformatics.lcd-ustc.org/pail

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2222/2093955/4819719fbca8/nihms13592f1.jpg

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