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Hinge Region in DNA Packaging Terminase pUL15 of Herpes Simplex Virus: A Potential Allosteric Target for Antiviral Drugs

机译:单纯疱疹病毒DNA包装终止酶pUL15中的铰链区:抗病毒药物的潜在变构靶标。

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摘要

Approximately 80% of adults are infected with a member of the herpesviridae family. Herpesviruses establish life-long latent infections within neurons, which may reactivate into lytic infections due to stress or immune suppression. There are nine human herpesviruses (HHV) posing health concerns from benign conditions to life threatening encephalitis, including cancers associated with viral infections. The current treatment options for most HHV conditions mainly include several nucleoside and nucleotide analogs targeting viral DNA polymerase. Although these drugs help manage infections, their common mechanism of action may lead to the development of drug resistance, which is particularly devastating in immunocompromised patients. Therefore, new classes of drugs directed against novel targets in HHVs are necessary to alleviate this issue. We analyzed the conservation rates of all proteins in herpes simplex virus 1 (HHV-1), a representative of the HHV family and one of the most common viruses infecting the human population. Furthermore, we generated a full-length structure model of the most conserved HHV-1 protein, the DNA packaging terminase pUL15. A series of computational analyses were performed on the model to identify ATP and DNA binding sites and characterize the dynamics of the protein. Our study indicates that proteins involved in HHV-1 DNA packaging and cleavage are amongst the most conserved gene products of HHVs. Since the packaging protein pUL15 is the most conserved among all HHV-1 gene products, the virus will have a lower chance of developing resistance to small molecules targeting pUL15. A subsequent analysis of the structure of pUL15 revealed distinct ATP and DNA binding domains and the elastic network model identifies a functionally important hinge region between the two domains of pUL15. The atomic information on the active and allosteric sites in the ATP- and DNA-bound model of pUL15 presented in this study can inform the structure-based drug discovery of a new class of drugs to treat a wide range of HHVs.
机译:大约80%的成年人感染了疱疹病毒科成员。疱疹病毒会在神经元内建立终生潜伏感染,由于压力或免疫抑制,它们可能会重新激活为溶解性感染。从良性疾病到威胁生命的脑炎,包括与病毒感染有关的癌症,共有9种人类疱疹病毒(HHV)引起了人们对健康的关注。对于大多数HHV疾病,当前的治疗选择主要包括靶向病毒DNA聚合酶的几种核苷和核苷酸类似物。尽管这些药物有助于控制感染,但它们的共同作用机制可能导致耐药性的发展,这在免疫功能低下的患者中尤其具有破坏性。因此,针对HHV中新靶标的新型药物对于缓解该问题是必要的。我们分析了单纯疱疹病毒1(HHV-1)中所有蛋白质的保守率,该病毒是HHV家族的代表,也是感染人类的​​最常见病毒之一。此外,我们生成了最保守的HHV-1蛋白(DNA包装末端酶pUL15)的全长结构模型。在模型上进行了一系列计算分析,以识别ATP和DNA结合位点并表征蛋白质的动力学。我们的研究表明,参与HHV-1 DNA包装和切割的蛋白质是HHV最保守的基因产物之一。由于包装蛋白pUL15在所有HHV-1基因产物中最保守,因此该病毒对靶向pUL15的小分子产生抗药性的机会较小。对pUL15的结构的后续分析显示了不同的ATP和DNA结合结构域,并且弹性网络模型确定了pUL15的两个结构域之间功能上重要的铰链区。这项研究中显示的pUL15的ATP和DNA结合模型中有关活性和变构位点的原子信息可以为基于结构的药物发现提供信息,以治疗一类新型的可治疗多种HHV的药物。

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