首页> 美国卫生研究院文献>other >Moniliophthora perniciosa Necrosis- and Ethylene-Inducing Protein 2 (MpNep2) as a Metastable Dimer in Solution: Structural and Functional Implications
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Moniliophthora perniciosa Necrosis- and Ethylene-Inducing Protein 2 (MpNep2) as a Metastable Dimer in Solution: Structural and Functional Implications

机译:moniliophthora perniciosa Necrosis-和乙烯诱导蛋白2(mpNep2)其为亚稳定二聚体解决方案:结构和功能的影响

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摘要

Understanding how Nep-like proteins (NLPs) behave during the cell cycle and disease progression of plant pathogenic oomycetes, fungi and bacteria is crucial in light of compelling evidence that these proteins play a role in Witches` Broom Disease (WBD) of Theobroma cacao, one of the most important phytopathological problems to afflict the Southern Hemisphere. The crystal structure of MpNep2, a member of the NLP family and the causal agent of WBD, revealed the key elements for its activity. This protein has the ability to refold after heating and was believed to act as a monomer in solution, in contrast to the related homologs MpNep1 and NPP from the oomyceteous fungus Phytophthora parasitica. Here, we identify and characterize a metastable MpNep2 dimer upon over-expression in Escherichia coli using different biochemical and structural approaches. We found using ultra-fast liquid chromatography that the MpNep2 dimer can be dissociated by heating but not by dilution, oxidation or high ionic strength. Small-angle X-ray scattering revealed a possible tail-to-tail interaction between monomers, and nuclear magnetic resonance measurements identified perturbed residues involved in the putative interface of interaction. We also explored the ability of the MpNep2 monomer to refold after heating or chemical denaturation. We observed that MpNep2 has a low stability and cooperative fold that could be an explanation for its structure and activity recovery after stress. These results can provide new insights into the mechanism for MpNep2′s action in dicot plants during the progression of WBD and may open new avenues for the involvement of NLP- oligomeric species in phytopathological disorders.
机译:鉴于有力的证据表明这些蛋白质在可可可可的女巫扫帚病(WBD)中起作用,因此了解Nep样蛋白质(NLP)在细胞周期和植物病原性卵菌,真菌和细菌的疾病进展中的行为至关重要,困扰南半球的最重要的植物病理学问题之一。 MpNep2的晶体结构是NLP家族的成员,也是WBD的致病因子,揭示了其活性的关键元素。与来自卵菌真菌疫霉菌的相关同系物MpNep1和NPP相反,该蛋白质具有加热后重新折叠的能力,并被认为在溶液中起单体作用。在这里,我们使用不同的生化和结构方法,在大肠杆菌中过量表达后鉴定并鉴定了亚稳态MpNep2二聚体。我们发现使用超快速液相色谱法可以通过加热而不是通过稀释,氧化或高离子强度来解离MpNep2二聚体。小角X射线散射揭示了单体之间可能的尾到尾相互作用,核磁共振测量结果确定了相互作用的推定界面中涉及的扰动残基。我们还探讨了MpNep2单体在加热或化学变性后重新折叠的能力。我们观察到,MpNep2具有较低的稳定性和协同折叠,这可以解释其在应激后的结构和活性恢复。这些结果可以为WBD进程中双子叶植物中MpNep2的作用机理提供新的见解,并可能为NLP-寡聚物种参与植物病理学疾病打开新的途径。

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