蛋白质纳米对象集成器(ProNOI)用于生成原子风格的对象进行分子建模

Q3 Biochemistry, Genetics and Molecular Biology BMC Structural Biology Pub Date : 2012-12-05 DOI:10.1186/1472-6807-12-31
Nicholas Smith, Brandon Campbell, Lin Li, Chuan Li, Emil Alexov
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引用次数: 5

摘要

随着纳米技术的发展,人们经常需要同时模拟生物大分子和纳米物体。然而,纳米物体的原子结构通常是不可用的,或者它们是固态实体。正因为如此,研究人员必须通过生成纳米物体的模型来研究这种纳米系统,这种模型以现有软件能够进行模拟的方式进行。此外,它应该允许通过组合基本几何图形和嵌入生物大分子在系统中产生复杂形状的复合物体。在这里,我们报告了蛋白质纳米对象集成器(ProNOI),它允许生成具有用户所需形状和尺寸的原子风格几何对象。在蛋白质数据库(Protein Data Bank, PDB)格式文件中,可以创建无限数量的对象并与生物大分子结合。一旦物体生成,用户就可以使用滑块来操纵它们的形状、尺寸和绝对位置。此外,该软件还提供了以指定的表面或体积电荷密度对物体充电的选项,并根据用户所需的介电常数对它们进行建模。根据用户喜好,生物大分子原子可以根据Amber、Charmm、ops和PARSE四种不同的力场分配电荷和半径。生物大分子和原子类对象导出为位置、电荷和半径(PQR)文件,如果不选择默认介电常数分布,则导出为位置、电荷、半径和epsilon (PQRE)文件。为了说明ProNOI的功能,我们创建了一个机器人形状的复合物体,并将其命名为克莱姆森机器人(Clemson robot),它的各个部分都带有不同的体积电荷密度,并将barnase-barstar蛋白复合物握在手中。蛋白质纳米物体积分器(ProNOI)是一种方便的工具,可以与生物大分子一起生成原子风格的纳米形状。大分子原子和形状中的原子的电荷和半径是根据用户的偏好分配的,允许各种场景的建模。默认输出文件为PQR (PQRE)格式,几乎任何生物物理领域可用的软件都可以读取。可以从http://compbio.clemson.edu/downloadDir/ProNO_integrator.tar.gz下载
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Protein Nano-Object Integrator (ProNOI) for generating atomic style objects for molecular modeling

With the progress of nanotechnology, one frequently has to model biological macromolecules simultaneously with nano-objects. However, the atomic structures of the nano objects are typically not available or they are solid state entities. Because of that, the researchers have to investigate such nano systems by generating models of the nano objects in a manner that the existing software be able to carry the simulations. In addition, it should allow generating composite objects with complex shape by combining basic geometrical figures and embedding biological macromolecules within the system.

Here we report the Protein Nano-Object Integrator (ProNOI) which allows for generating atomic-style geometrical objects with user desired shape and dimensions. Unlimited number of objects can be created and combined with biological macromolecules in Protein Data Bank (PDB) format file. Once the objects are generated, the users can use sliders to manipulate their shape, dimension and absolute position. In addition, the software offers the option to charge the objects with either specified surface or volumetric charge density and to model them with user-desired dielectric constants. According to the user preference, the biological macromolecule atoms can be assigned charges and radii according to four different force fields: Amber, Charmm, OPLS and PARSE. The biological macromolecules and the atomic-style objects are exported as a position, charge and radius (PQR) file, or if a default dielectric constant distribution is not selected, it is exported as a position, charge, radius and epsilon (PQRE) file. As illustration of the capabilities of the ProNOI, we created a composite object in a shape of a robot, aptly named the Clemson Robot, whose parts are charged with various volumetric charge densities and holds the barnase-barstar protein complex in its hand.

The Protein Nano-Object Integrator (ProNOI) is a convenient tool for generating atomic-style nano shapes in conjunction with biological macromolecule(s). Charges and radii on the macromolecule atoms and the atoms in the shapes are assigned according to the user’s preferences allowing various scenarios of modeling. The default output file is in PQR (PQRE) format which is readable by almost any software available in biophysical field. It can be downloaded from: http://compbio.clemson.edu/downloadDir/ProNO_integrator.tar.gz

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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
Characterization of putative proteins encoded by variable ORFs in white spot syndrome virus genome Correction to: Classification of the human THAP protein family identifies an evolutionarily conserved coiled coil region Effect of low complexity regions within the PvMSP3α block II on the tertiary structure of the protein and implications to immune escape mechanisms QRNAS: software tool for refinement of nucleic acid structures Classification of the human THAP protein family identifies an evolutionarily conserved coiled coil region
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