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枯草芽孢杆菌φ29 噬菌体蛋白 p6 的灵活结构排列和 DNA 结合特性。

Flexible structural arrangement and DNA-binding properties of protein p6 from Bacillus subtillis phage φ29.

机构信息

Department of Crystallography and Structural Biology, Institute of Physical-Chemistry "Blas Cabrera", CSIC, 28006 Madrid, Spain.

Molecular Interactions Facility, Centro de Investigaciones Biológicas "Margarita Salas", CSIC, 28040Madrid, Spain.

出版信息

Nucleic Acids Res. 2024 Feb 28;52(4):2045-2065. doi: 10.1093/nar/gkae041.

Abstract

The genome-organizing protein p6 of Bacillus subtilis bacteriophage φ29 plays an essential role in viral development by activating the initiation of DNA replication and participating in the early-to-late transcriptional switch. These activities require the formation of a nucleoprotein complex in which the DNA adopts a right-handed superhelix wrapping around a multimeric p6 scaffold, restraining positive supercoiling and compacting the viral genome. Due to the absence of homologous structures, prior attempts to unveil p6's structural architecture failed. Here, we employed AlphaFold2 to engineer rational p6 constructs yielding crystals for three-dimensional structure determination. Our findings reveal a novel fold adopted by p6 that sheds light on its self-association mechanism and its interaction with DNA. By means of protein-DNA docking and molecular dynamic simulations, we have generated a comprehensive structural model for the nucleoprotein complex that consistently aligns with its established biochemical and thermodynamic parameters. Besides, through analytical ultracentrifugation, we have confirmed the hydrodynamic properties of the nucleocomplex, further validating in solution our proposed model. Importantly, the disclosed structure not only provides a highly accurate explanation for previously experimental data accumulated over decades, but also enhances our holistic understanding of the structural and functional attributes of protein p6 during φ29 infection.

摘要

枯草芽孢杆菌噬菌体 φ29 的基因组组织蛋白 p6 在病毒发育中发挥着重要作用,它可以激活 DNA 复制的起始,并参与早期到晚期的转录转换。这些活性需要形成一个核蛋白复合物,在这个复合物中,DNA 采用右手超螺旋缠绕在多聚体 p6 支架上,抑制正超螺旋并使病毒基因组紧凑。由于缺乏同源结构,先前揭示 p6 结构架构的尝试都失败了。在这里,我们使用 AlphaFold2 设计了合理的 p6 结构,生成了用于三维结构测定的晶体。我们的研究结果揭示了 p6 采用的一种新折叠,这为其自组装机制及其与 DNA 的相互作用提供了线索。通过蛋白-DNA 对接和分子动力学模拟,我们生成了核蛋白复合物的综合结构模型,该模型与已建立的生化和热力学参数一致。此外,通过分析超速离心,我们确认了核复合物的流体力学性质,进一步验证了我们在溶液中提出的模型。重要的是,所揭示的结构不仅为过去几十年来积累的大量实验数据提供了高度准确的解释,还增强了我们对 φ29 感染过程中蛋白 p6 的结构和功能属性的整体理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44a0/10899789/b3e37b38d71c/gkae041figgra1.jpg

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