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SoDA2: a Hidden Markov Model approach for identification of immunoglobulin rearrangements

机译:SoDA2:识别免疫球蛋白重排的隐马尔可夫模型方法

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摘要

>Motivation: The inference of pre-mutation immunoglobulin (Ig) rearrangements is essential in the study of the antibody repertoires produced in response to infection, in B-cell neoplasms and in autoimmune disease. Often, there are several rearrangements that are nearly equivalent as candidates for a given Ig gene, but have different consequences in an analysis. Our aim in this article is to develop a probabilistic model of the rearrangement process and a Bayesian method for estimating posterior probabilities for the comparison of multiple plausible rearrangements.>Results: We have developed SoDA2, which is based on a Hidden Markov Model and used to compute the posterior probabilities of candidate rearrangements and to find those with the highest values among them. We validated the software on a set of simulated data, a set of clonally related sequences, and a group of randomly selected Ig heavy chains from Genbank. In most tests, SoDA2 performed better than other available software for the task. Furthermore, the output format has been redesigned, in part, to facilitate comparison of multiple solutions.>Availability: SoDA2 is available online at . Simulated sequences are available upon request.>Contact:
机译:>动机:在研究针对感染,B细胞肿瘤和自身免疫性疾病而产生的抗体库的研究中,突变前免疫球蛋白(Ig)重排的推断至关重要。通常,有几种重排几乎等同于给定Ig基因的候选者,但在分析中有不同的结果。我们的目的是开发一种重排过程的概率模型和一种贝叶斯方法来估计后验概率,以比较多个可能的重排。>结果:我们开发了SoDA2,它基于隐马尔可夫模型,用于计算候选重排的后验概率,并在其中找到最高值。我们在一组模拟数据,一组克隆相关序列以及一组来自Genbank的随机选择的Ig重链上验证了该软件。在大多数测试中,SoDA2的性能要优于其他可用软件。此外,已对输出格式进行了部分重新设计,以方便比较多个解决方案。>可用性: SoDA2可在上在线获得。可根据要求提供模拟序列。>联系方式:

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