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Rationally designed coiled-coil DNA looping peptides control DNA topology

机译:合理设计的卷曲螺旋DNA环肽控制DNA拓扑

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Artificial DNA looping peptides were engineered to study the roles of protein and DNA flexibility in controlling the geometry and stability of protein-mediated DNA loops. These LZD (leucine zipper dual-binding) peptides were derived by fusing a second, C-terminal, DNA-binding region onto the GCN4 bZip peptide. Two variants with different coiled-coil lengths were designed to control the relative orientations of DNA bound at each end. Electrophoretic mobility shift assays verified formation of a sandwich complex containing two DNAs and one peptide. Ring closure experiments demonstrated that looping requires a DNA-binding site separation of 310 bp, much longer than the length needed for natural loops. Systematic variation of binding site separation over a series of 10 constructs that cyclize to form 862-bp minicircles yielded positive and negative topoisomers because of two possible writhed geometries. Periodic variation in topoisomer abundance could be modeled using canonical DNA persistence length and torsional modulus values. The results confirm that the LZD peptides are stiffer than natural DNA looping proteins, and they suggest that formation of short DNA loops requires protein flexibility, not unusual DNA bendability. Small, stable, tunable looping peptides may be useful as synthetic transcriptional regulators or components of protein-DNA nanostructures.
机译:设计了人工DNA环肽,以研究蛋白质和DNA柔性在控制蛋白质介导的DNA环的几何形状和稳定性中的作用。这些LZD(亮氨酸拉链双结合)肽是通过将第二个C端DNA结合区融合到GCN4 bZip肽上而得到的。设计了具有不同螺旋线圈长度的两个变体,以控制在每个末端结合的DNA的相对方向。电泳迁移率变动分析验证了包含两个DNA和一个肽的三明治复合物的形成。闭环实验表明,环化需要310 bp的DNA结合位点间隔,比自然环所需的长度长得多。由于两个可能的扭曲几何形状,在一系列10个环化形成862-bp小圆的构建体上,结合位点分离的系统变化产生了正和负的拓扑异构体。拓扑异构体丰度的周期性变化可以使用规范的DNA持久长度和扭转模量值进行建模。结果证实LZD肽比天然DNA环蛋白坚硬,并且它们表明短DNA环的形成需要蛋白柔韧性,而不是异常的DNA可弯曲性。小,稳定,可调节的环肽可用作合成的转录调节因子或蛋白质-DNA纳米结构的组成部分。

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