A computational method for prediction of matrix proteins in endogenous retroviruses

PLoS One. 2017 May 4;12(5):e0176909. doi: 10.1371/journal.pone.0176909. eCollection 2017.

Abstract

Human endogenous retroviruses (HERVs) encode active retroviral proteins, which may be involved in the progression of cancer and other diseases. Matrix protein (MA), in group-specific antigen genes (gag) of retroviruses, is associated with the virus envelope glycoproteins in most mammalian retroviruses and may be involved in virus particle assembly, transport and budding. However, the amount of annotated MAs in ERVs is still at a low level so far. No computational method to predict the exact start and end coordinates of MAs in gags has been proposed yet. In this paper, a computational method to identify MAs in ERVs is proposed. A divide and conquer technique was designed and applied to the conventional prediction model to acquire better results when dealing with gene sequences with various lengths. Initiation sites and termination sites were predicted separately and then combined according to their intervals. Three different algorithms were applied and compared: weighted support vector machine (WSVM), weighted extreme learning machine (WELM) and random forest (RF). G - mean (geometric mean of sensitivity and specificity) values of initiation sites and termination sites under 5-fold cross validation generated by random forest models are 0.9869 and 0.9755 respectively, highest among the algorithms applied. Our prediction models combine RF & WSVM algorithms to achieve the best prediction results. 98.4% of all the collected ERV sequences with complete MAs (125 in total) could be predicted exactly correct by the models. 94,671 HERV sequences from 118 families were scanned by the model, 104 new putative MAs were predicted in human chromosomes. Distributions of the putative MAs and optimizations of model parameters were also analyzed. The usage of our predicting method was also expanded to other retroviruses and satisfying results were acquired.

MeSH terms

  • Animals
  • Computational Biology*
  • Endogenous Retroviruses / metabolism*
  • Humans
  • Viral Matrix Proteins / metabolism*

Substances

  • Viral Matrix Proteins

Grants and funding

This work was supported by grant from National Natural Science Foundation of Shaanxi Province (No. 2012JQ8042) at http://www.sninfo.gov.cn and by grant from China Postdoctoral Science Foundation (No. 2015M580851) at http://jj.chinapostdoctor.org.cn. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.