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一种综合的开放反应热力学框架,兼具准确性和全面性。

An integrated open framework for thermodynamics of reactions that combines accuracy and coverage.

机构信息

Department of Plant Sciences, Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

Bioinformatics. 2012 Aug 1;28(15):2037-44. doi: 10.1093/bioinformatics/bts317. Epub 2012 May 29.

Abstract

MOTIVATION

The laws of thermodynamics describe a direct, quantitative relationship between metabolite concentrations and reaction directionality. Despite great efforts, thermodynamic data suffer from limited coverage, scattered accessibility and non-standard annotations. We present a framework for unifying thermodynamic data from multiple sources and demonstrate two new techniques for extrapolating the Gibbs energies of unmeasured reactions and conditions.

RESULTS

Both methods account for changes in cellular conditions (pH, ionic strength, etc.) by using linear regression over the ΔG(○) of pseudoisomers and reactions. The Pseudoisomeric Reactant Contribution method systematically infers compound formation energies using measured K' and pK(a) data. The Pseudoisomeric Group Contribution method extends the group contribution method and achieves a high coverage of unmeasured reactions. We define a continuous index that predicts the reversibility of a reaction under a given physiological concentration range. In the characteristic physiological range 3μM-3mM, we find that roughly half of the reactions in Escherichia coli's metabolism are reversible. These new tools can increase the accuracy of thermodynamic-based models, especially in non-standard pH and ionic strengths. The reversibility index can help modelers decide which reactions are reversible in physiological conditions.

AVAILABILITY

Freely available on the web at: http://equilibrator.weizmann.ac.il. Website implemented in Python, MySQL, Apache and Django, with all major browsers supported. The framework is open-source (code.google.com/p/milo-lab), implemented in pure Python and tested mainly on Linux.

CONTACT

ron.milo@weizmann.ac.il

SUPPLEMENTARY INFORMATION

Supplementary data are available at Bioinformatics online.

摘要

动机

热力学定律描述了代谢物浓度与反应方向性之间的直接、定量关系。尽管付出了巨大努力,但热力学数据仍然存在覆盖范围有限、难以获取且注释不标准等问题。我们提出了一个整合来自多个来源的热力学数据的框架,并展示了两种新的技术,用于推断未测量反应和条件的吉布斯自由能。

结果

这两种方法都通过使用假异构体和反应的 ΔG(○)进行线性回归来考虑细胞条件(pH、离子强度等)的变化。假异构体反应物贡献方法系统地使用测量的 K'和 pK(a)数据推断化合物形成能。假异构体基团贡献方法扩展了基团贡献方法,实现了对大量未测量反应的覆盖。我们定义了一个连续指标,用于预测给定生理浓度范围内反应的可逆性。在特征生理范围内 3μM-3mM,我们发现大肠杆菌代谢中大约一半的反应是可逆的。这些新工具可以提高基于热力学的模型的准确性,尤其是在非标准 pH 和离子强度下。可逆性指数可以帮助建模者决定哪些反应在生理条件下是可逆的。

可用性

可在 http://equilibrator.weizmann.ac.il 上免费访问。网站采用 Python、MySQL、Apache 和 Django 构建,支持所有主流浏览器。该框架是开源的(code.google.com/p/milo-lab),完全用 Python 实现,主要在 Linux 上进行测试。

联系方式

ron.milo@weizmann.ac.il

补充信息

补充数据可在 Bioinformatics 在线获取。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d83/3400964/018de6c477e7/bts317f1.jpg

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