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Updated: Jun 27, 2026

RIBO-seq in Bacteria: a Sample Collection and Library Preparation Protocol for NGS Sequencing
Published on: August 7, 2021
Prediction of translation initiation site for microbial genomes with TriTISA
Gang-Qing Hu1, Xiaobin Zheng, Huai-Qiu Zhu
1State Key Lab for Turbulence and Complex Systems, Department of Biomedical Engineering, College of Engineering and Center for Theoretical Biology, Peking University, Beijing 100871, China.
Unlabelled:
We report a new and simple method, TriTISA, for accurate prediction of translation initiation site (TIS) of microbial genomes. TriTISA classifies all candidate TISs into three categories based on evolutionary properties, and characterizes them in terms of Markov models. Then, it employs a Bayesian methodology for the selection of true TIS with a non-supervised, iterative procedure. Assessment on experimentally verified TIS data shows that TriTISA is overall better than all other methods of the state-of-the-art for microbial genome TIS prediction. In particular, TriTISA is shown to have a robust accuracy independent of the quality of initial annotation.
Availability:
The C++ source code is freely available under the GNU GPL license via http://mech.ctb.pku.edu.cn/protisa/TriTISA.
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