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首页> 外文期刊>Protein engineering design & selection: PEDS >Reengineering natural design by rational design and in vivo library selection: the HLH subdomain in bHLHZ proteins is a unique requirement for DNA-binding function.
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Reengineering natural design by rational design and in vivo library selection: the HLH subdomain in bHLHZ proteins is a unique requirement for DNA-binding function.

机译:通过合理的设计和体内文库选择来重新设计自然设计:bHLHZ蛋白中的HLH子域是DNA结合功能的独特要求。

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摘要

To explore the role of the HLH subdomain in bHLHZ proteins, we designed sets of minimalist proteins based on bHLHZ protein Max, bHLH/PAS protein Arnt and bZIP protein C/EBP. In the first, the Max bHLH and C/EBP leucine zipper were fused such that the leucine heptad repeats were not in register; therefore, the protein dimerization interface was disrupted. Max1bHLH-C/EBP showed little ability to activate transcription from the E-box (5'-CACGTG) in the yeast one-hybrid assay, and no E-box binding by quantitative fluorescence anisotropy. Max1bHLH-C/EBP's activity was significantly improved after library selection (three amino acids randomized between HLH and leucine zipper), despite the Max bHLH and C/EBP zipper still being out of register: a representative mutant gave a high nanomolar K(d) value for E-box binding. Thus, selection proved to be a powerful tool for salvaging the flawed Max1bHLH-C/EBP, although the out-of-register mutants still did not achieve the strong DNA-binding affinities displayed by their in-register counterparts. ArntbHLH-C/EBP hybrids further demonstrated the importance of maintaining register, as out-of-register mutants showed no E-box-responsive activity, whereas the in-register hybrid showed moderate activity. In another design, we eliminated the HLH altogether and fused the Max basic region to the C/EBP zipper to generate bZIP-like hybrids. Despite numerous designs and selections, these hybrids possessed no E-box-responsive activity. Finally, we tested the importance of the loop sequence in MaxbHLHZ by fluorescence and circular dichroism. In one mutant, the loop was shortened by two residues; in the other, the Lys57:DNA-backbone interaction was abolished by mutation to Gly57. Both showed markedly decreased E-box-binding relative to MaxbHLHZ. Our results suggest that, in contrast to the more rigid bZIP, the HLH is capable of significant conformational adaptation to enable gene-regulatory function and is required for protein dimerization and positioning the basic region for DNA recognition.
机译:为了探索HLH子域在bHLHZ蛋白质中的作用,我们基于bHLHZ蛋白质Max,bHLH / PAS蛋白质Arnt和bZIP蛋白质C / EBP设计了极简蛋白质集。首先,将Max bHLH和C / EBP亮氨酸拉链融合在一起,以使亮氨酸七肽重复序列不对齐。因此,蛋白质二聚化界面被破坏。在酵母一杂交实验中,Max1bHLH-C / EBP几乎没有激活E-box(5'-CACGTG)转录的能力,并且定量荧光各向异性也没有E-box结合。选择文库后,Max1bHLH-C / EBP的活性显着提高(在HLH和亮氨酸拉链之间随机分配了3个氨基酸),尽管Max bHLH和C / EBP拉链仍未注册:一个代表性的突变体具有较高的纳摩尔K(d)电子邮箱绑定的值。因此,选择失配被证明是挽救有缺陷的Max1bHLH-C / EBP的有力工具,尽管失配突变体仍未实现其同位配体所显示的强大的DNA结合亲和力。 ArntbHLH-C / EBP杂种进一步证明了保持寄存器的重要性,因为寄存器外的突变体没有显示E-box反应活性,而寄存器内的杂种却显示出中等活性。在另一种设计中,我们完全消除了HLH并将Max基本区域融合到C / EBP拉链中,以生成类似bZIP的杂物。尽管进行了大量的设计和选择,但这些杂种没有E-box反应活性。最后,我们通过荧光和圆二色性测试了MaxbHLHZ中环序列的重要性。在一个突变体中,环缩短了两个残基;另一方面,通过突变为Gly57消除了Lys57:DNA-骨干相互作用。相对于MaxbHLHZ,两者均显示出明显降低的E-box结合。我们的结果表明,与更严格的bZIP相比,HLH具有显着的构象适应能力,能够实现基因调控功能,并且是蛋白质二聚化和定位DNA识别基本区域所必需的。

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