Department of Clinical Sciences and Translational Medicine, University of Roma Tor Vergata, Roma, Italy.
Department of Chemical and Technological Sciences, University of Roma Tor Vergata, Roma, Italy.
Biochem Pharmacol. 2020 Dec;182:114225. doi: 10.1016/j.bcp.2020.114225. Epub 2020 Sep 19.
In the Fall of 2019 a sudden and dramatic outbreak of a pulmonary disease (Coronavirus Disease COVID-19), due to a new Coronavirus strain (i.e., SARS-CoV-2), emerged in the continental Chinese area of Wuhan and quickly diffused throughout the world, causing up to now several hundreds of thousand deaths. As for common viral infections, the crucial event for the viral life cycle is the entry of genetic material inside the host cell, realized by the spike protein of the virus through its binding to host receptors and its activation by host proteases; this is followed by translation of the viral RNA into a polyprotein, exploiting the host cell machinery. The production of individual mature viral proteins is pivotal for replication and release of new virions. Several proteolytic enzymes either of the host and of the virus act in a concerted fashion to regulate and coordinate specific steps of the viral replication and assembly, such as (i) the entry of the virus, (ii) the maturation of the polyprotein and (iii) the assembly of the secreted virions for further diffusion. Therefore, proteases involved in these three steps are important targets, envisaging that molecules which interfere with their activity are promising therapeutic compounds. In this review, we will survey what is known up to now on the role of specific proteolytic enzymes in these three steps and of most promising compounds designed to impair this vicious cycle.
2019 年秋季,一种新型冠状病毒(SARS-CoV-2)引发的肺部疾病(新型冠状病毒肺炎 COVID-19)在中国武汉地区突然爆发,并迅速蔓延至全球,截至目前已导致数十万人死亡。对于常见的病毒感染,病毒生命周期的关键事件是遗传物质进入宿主细胞,这是通过病毒的刺突蛋白与宿主受体结合及其被宿主蛋白酶激活来实现的;随后,病毒 RNA 被翻译成多蛋白,利用宿主细胞机制。产生单个成熟的病毒蛋白对于复制和释放新的病毒颗粒至关重要。几种宿主和病毒的蛋白水解酶协同作用,调节和协调病毒复制和组装的特定步骤,例如:(i)病毒进入,(ii)多蛋白的成熟,以及(iii)分泌病毒颗粒的组装以进一步扩散。因此,参与这三个步骤的蛋白酶是重要的靶点,这表明干扰其活性的分子是有前途的治疗化合物。在这篇综述中,我们将综述迄今为止已知的特定蛋白水解酶在这三个步骤中的作用,以及设计用于破坏这种恶性循环的最有前途的化合物。