首页> 外文期刊>PLoS Computational Biology >Quantitative Protein Localization Signatures Reveal an Association between Spatial and Functional Divergences of Proteins
【24h】

Quantitative Protein Localization Signatures Reveal an Association between Spatial and Functional Divergences of Proteins

机译:定量的蛋白质定位签名揭示了蛋白质的空间和功能差异之间的关联

获取原文
           

摘要

Protein subcellular localization is a major determinant of protein function. However, this important protein feature is often described in terms of discrete and qualitative categories of subcellular compartments, and therefore it has limited applications in quantitative protein function analyses. Here, we present Protein Localization Analysis and Search Tools (PLAST), an automated analysis framework for constructing and comparing quantitative signatures of protein subcellular localization patterns based on microscopy images. PLAST produces human-interpretable protein localization maps that quantitatively describe the similarities in the localization patterns of proteins and major subcellular compartments, without requiring manual assignment or supervised learning of these compartments. Using the budding yeast Saccharomyces cerevisiae as a model system, we show that PLAST is more accurate than existing, qualitative protein localization annotations in identifying known co-localized proteins. Furthermore, we demonstrate that PLAST can reveal protein localization-function relationships that are not obvious from these annotations. First, we identified proteins that have similar localization patterns and participate in closely-related biological processes, but do not necessarily form stable complexes with each other or localize at the same organelles. Second, we found an association between spatial and functional divergences of proteins during evolution. Surprisingly, as proteins with common ancestors evolve, they tend to develop more diverged subcellular localization patterns, but still occupy similar numbers of compartments. This suggests that divergence of protein localization might be more frequently due to the development of more specific localization patterns over ancestral compartments than the occupation of new compartments. PLAST enables systematic and quantitative analyses of protein localization-function relationships, and will be useful to elucidate protein functions and how these functions were acquired in cells from different organisms or species. A public web interface of PLAST is available at http://plast.bii.a-star.edu.sg.
机译:蛋白质亚细胞定位是蛋白质功能的主要决定因素。但是,这种重要的蛋白质特征通常是用亚细胞区室的离散和定性类别来描述的,因此在定量蛋白质功能分析中的应用有限。在这里,我们介绍蛋白质定位分析和搜索工具(PLAST),这是一种自动分析框架,用于基于显微镜图像构建和比较蛋白质亚细胞定位模式的定量特征。 PLAST产生了人类可解释的蛋白质定位图,可定量描述蛋白质和主要亚细胞区室的定位模式中的相似性,而无需手动分配或监督学习这些区室。使用萌芽的酿酒酵母作为模型系统,我们显示PLAST比现有的定性蛋白质定位注释更准确,可以识别已知的共定位蛋白质。此外,我们证明PLAST可以揭示从这些注释中不明显的蛋白质定位功能关系。首先,我们确定了具有相似定位模式并参与密切相关的生物学过程,但不一定彼此形成稳定复合体或位于同一细胞器中的蛋白质。第二,我们发现蛋白质在进化过程中的空间和功能差异之间存在关联。出人意料的是,随着具有共同祖先的蛋白质的进化,它们趋于发展出更多不同的亚细胞定位模式,但仍占据相似数量的区室。这表明,由于在祖先隔室上比在新的隔室上占据了更多特定的定位模式,因此蛋白质定位的差异可能更频繁。 PLAST可以对蛋白质定位功能之间的关系进行系统和定量的分析,并将有助于阐明蛋白质功能以及这些功能是如何在不同生物体或物种的细胞中获得的。 PLAST的公共Web界面可从http://plast.bii.a-star.edu.sg获得。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号