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当外来基因遇到其同源物时:对羊茅属植物两个 PgiC 基因座的计算生物物理分析。

When a foreign gene meets its native counterpart: computational biophysics analysis of two PgiC loci in the grass Festuca ovina.

机构信息

Computational Biology and Biological Physics, Department of Astronomy and Theoretical Physics, Lund University, 223 62, Lund, Sweden.

Institute for Advanced Simulation, Jülich Supercomputing Centre, Forschungszentrum Jülich, 52425, Jülich, Germany.

出版信息

Sci Rep. 2020 Oct 30;10(1):18752. doi: 10.1038/s41598-020-75650-0.

Abstract

Duplicative horizontal gene transfer may bring two previously separated homologous genes together, which may raise questions about the interplay between the gene products. One such gene pair is the "native" PgiC1 and "foreign" PgiC2 in the perennial grass Festuca ovina. Both PgiC1 and PgiC2 encode cytosolic phosphoglucose isomerase, a dimeric enzyme whose proper binding is functionally essential. Here, we use biophysical simulations to explore the inter-monomer binding of the two homodimers and the heterodimer that can be produced by PgiC1 and PgiC2 in F. ovina. Using simulated native-state ensembles, we examine the structural properties and binding tightness of the dimers. In addition, we investigate their ability to withstand dissociation when pulled by a force. Our results suggest that the inter-monomer binding is tighter in the PgiC2 than the PgiC1 homodimer, which could explain the more frequent occurrence of the foreign PgiC2 homodimer in dry habitats. We further find that the PgiC1 and PgiC2 monomers are compatible with heterodimer formation; the computed binding tightness is comparable to that of the PgiC1 homodimer. Enhanced homodimer stability and capability of heterodimer formation with PgiC1 are properties of PgiC2 that may contribute to the retaining of the otherwise redundant PgiC2 gene.

摘要

重复的水平基因转移可能会将两个先前分离的同源基因聚集在一起,这可能会引发人们对基因产物相互作用的质疑。多年生草本羊茅中的“本地”PgiC1 和“外来”PgiC2 就是这样一对基因对。PgiC1 和 PgiC2 均编码细胞溶质磷酸葡萄糖异构酶,这是一种二聚体酶,其正确结合对于功能至关重要。在这里,我们使用生物物理模拟来探索 PgiC1 和 PgiC2 在羊茅中产生的两种同源二聚体和异源二聚体的单体间结合。使用模拟的天然状态集合,我们检查了二聚体的结构特性和结合紧密程度。此外,我们还研究了它们在受力时解离的能力。我们的结果表明,PgiC2 中的单体间结合比 PgiC1 二聚体更紧密,这可以解释为什么在干燥生境中更频繁地出现外来的 PgiC2 同源二聚体。我们进一步发现,PgiC1 和 PgiC2 单体与异源二聚体的形成兼容;计算出的结合紧密程度与 PgiC1 二聚体相当。增强的同源二聚体稳定性和与 PgiC1 形成异源二聚体的能力是 PgiC2 的特性,这可能有助于保留原本冗余的 PgiC2 基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94de/7599235/e1a1caf9e8ef/41598_2020_75650_Fig1_HTML.jpg

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