Lee Kong Chian School of Medicine, Nanyang Technological University, Singapore, Singapore; School of Biological Sciences, Nanyang Technological University, Singapore, Singapore.
Lee Kong Chian School of Medicine, Nanyang Technological University, Singapore, Singapore; NTU Institute of Structural Biology, Nanyang Technological University, Singapore, Singapore.
J Biol Chem. 2022 Aug;298(8):102250. doi: 10.1016/j.jbc.2022.102250. Epub 2022 Jul 11.
Rubella, a viral disease characterized by a red skin rash, is well controlled because of an effective vaccine, but outbreaks are still occurring in the absence of available antiviral treatments. The Rubella virus (RUBV) papain-like protease (RubPro) is crucial for RUBV replication, cleaving the nonstructural polyprotein p200 into two multifunctional proteins, p150 and p90. This protease could represent a potential drug target, but structural and mechanistic details important for the inhibition of this enzyme are unclear. Here, we report a novel crystal structure of RubPro at a resolution of 1.64 Å. The RubPro adopts a unique papain-like protease fold, with a similar catalytic core to that of proteases from Severe acute respiratory syndrome coronavirus 2 and foot-and-mouth disease virus while having a distinctive N-terminal fingers domain. RubPro has well-conserved sequence motifs that are also found in its newly discovered Rubivirus relatives. In addition, we show that the RubPro construct has protease activity in trans against a construct of RUBV protease-helicase and fluorogenic peptides. A protease-helicase construct, exogenously expressed in Escherichia coli, was also cleaved at the p150-p90 cleavage junction, demonstrating protease activity of the protease-helicase protein. We also demonstrate that RubPro possesses deubiquitylation activity, suggesting a potential role of RubPro in modulating the host's innate immune responses. We anticipate that these structural and functional insights of RubPro will advance our current understanding of its function and help facilitate more structure-based research into the RUBV replication machinery, in hopes of developing antiviral therapeutics against RUBV.
风疹,一种以红斑皮疹为特征的病毒性疾病,由于有效的疫苗而得到很好的控制,但在缺乏可用抗病毒治疗的情况下,仍会爆发。风疹病毒(RUBV)木瓜蛋白酶样蛋白酶(RubPro)对 RUBV 复制至关重要,它将非结构多蛋白 p200 切割成两个多功能蛋白,p150 和 p90。该蛋白酶可能代表一个潜在的药物靶点,但对于该酶抑制的结构和机制细节尚不清楚。在这里,我们报道了 RubPro 的一个新的晶体结构,分辨率为 1.64 Å。RubPro 采用独特的木瓜蛋白酶样蛋白酶折叠,与严重急性呼吸综合征冠状病毒 2 和口蹄疫病毒的蛋白酶具有相似的催化核心,而具有独特的 N 端手指结构域。RubPro 具有很好保守的序列基序,也存在于其新发现的 Rubivirus 亲属中。此外,我们还表明,RubPro 构建体在体外对 RUBV 蛋白酶-解旋酶和荧光肽构建体具有蛋白酶活性。在大肠杆菌中外源表达的蛋白酶-解旋酶构建体也在 p150-p90 切割连接处被切割,证明了蛋白酶-解旋酶蛋白的蛋白酶活性。我们还证明 RubPro 具有去泛素化活性,这表明 RubPro 可能在调节宿主先天免疫反应中发挥作用。我们预计,RubPro 的这些结构和功能见解将有助于我们深入了解其功能,并有助于促进更多基于结构的研究进入 RUBV 复制机制,以期开发针对 RUBV 的抗病毒治疗药物。