Quantification of the impact of PSI:Biology according to the annotations of the determined structures

Q3 Biochemistry, Genetics and Molecular Biology BMC Structural Biology Pub Date : 2013-10-21 DOI:10.1186/1472-6807-13-24
Paul J DePietro, Elchin S Julfayev, William A McLaughlin
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引用次数: 1

Abstract

Protein Structure Initiative:Biology (PSI:Biology) is the third phase of PSI where protein structures are determined in high-throughput to characterize their biological functions. The transition to the third phase entailed the formation of PSI:Biology Partnerships which are composed of structural genomics centers and biomedical science laboratories. We present a method to examine the impact of protein structures determined under the auspices of PSI:Biology by measuring their rates of annotations. The mean numbers of annotations per structure and per residue are examined. These are designed to provide measures of the amount of structure to function connections that can be leveraged from each structure.

One result is that PSI:Biology structures are found to have a higher rate of annotations than structures determined during the first two phases of PSI. A second result is that the subset of PSI:Biology structures determined through PSI:Biology Partnerships have a higher rate of annotations than those determined exclusive of those partnerships. Both results hold when the annotation rates are examined either at the level of the entire protein or for annotations that are known to fall at specific residues within the portion of the protein that has a determined structure.

We conclude that PSI:Biology determines structures that are estimated to have a higher degree of biomedical interest than those determined during the first two phases of PSI based on a broad array of biomedical annotations. For the PSI:Biology Partnerships, we see that there is an associated added value that represents part of the progress toward the goals of PSI:Biology. We interpret the added value to mean that team-based structural biology projects that utilize the expertise and technologies of structural genomics centers together with biological laboratories in the community are conducted in a synergistic manner. We show that the annotation rates can be used in conjunction with established metrics, i.e. the numbers of structures and impact of publication records, to monitor the progress of PSI:Biology towards its goals of examining structure to function connections of high biomedical relevance. The metric provides an objective means to quantify the overall impact of PSI:Biology as it uses biomedical annotations from external sources.

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根据所确定结构的注释量化PSI:生物学的影响
蛋白质结构倡议:生物学(PSI:生物学)是PSI的第三阶段,其中蛋白质结构以高通量确定以表征其生物学功能。向第三阶段的过渡需要形成PSI:生物学伙伴关系,由结构基因组学中心和生物医学科学实验室组成。我们提出了一种方法来检查在PSI主持下确定的蛋白质结构的影响:生物学通过测量它们的注释率。研究了每个结构和每个残基的平均注释数。这些设计是为了提供可以从每个结构中利用的结构到功能连接的数量的度量。其中一个结果是PSI:生物学结构比PSI前两个阶段确定的结构具有更高的注释率。第二个结果是,通过PSI:生物学伙伴关系确定的PSI:生物学结构的子集比不包含这些伙伴关系的子集具有更高的注释率。当在整个蛋白质的水平上检查注释率时,或者对于已知落在具有确定结构的蛋白质部分内特定残基上的注释率,这两个结果都成立。我们得出结论,PSI:生物学确定的结构估计具有更高程度的生物医学兴趣,而不是基于广泛的生物医学注释在PSI的前两个阶段确定的结构。对于PSI:生物学伙伴关系,我们看到有一个相关的附加价值,它代表了PSI:生物学目标进展的一部分。我们将附加价值解释为利用结构基因组学中心的专业知识和技术以及社区生物实验室的团队结构生物学项目以协同方式进行。我们表明,注释率可以与已建立的指标(即结构的数量和出版记录的影响)结合使用,以监测PSI:生物学朝着检查高度生物医学相关性的结构与功能联系的目标的进展。该指标提供了一种客观的方法来量化PSI:Biology的总体影响,因为它使用了来自外部来源的生物医学注释。
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来源期刊
CiteScore
3.60
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: BMC Structural Biology is an open access, peer-reviewed journal that considers articles on investigations into the structure of biological macromolecules, including solving structures, structural and functional analyses, and computational modeling.
期刊最新文献
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