Suppr超能文献

宿主多聚(A)聚合酶 PAPD5 和 PAPD7 提供两层保护,确保乙型肝炎病毒 RNA 的完整性和稳定性。

Host Poly(A) Polymerases PAPD5 and PAPD7 Provide Two Layers of Protection That Ensure the Integrity and Stability of Hepatitis B Virus RNA.

机构信息

Arbutus Biopharma, Warminster, Pennsylvania, USA.

出版信息

J Virol. 2021 Aug 25;95(18):e0057421. doi: 10.1128/JVI.00574-21.

Abstract

Noncanonical poly(A) polymerases PAPD5 and PAPD7 (PAPD5/7) stabilize hepatitis B virus (HBV) RNA via the interaction with the viral posttranscriptional regulatory element (PRE), representing new antiviral targets to control HBV RNA metabolism, hepatitis B surface antigen (HBsAg) production, and viral replication. Inhibitors targeting these proteins are being developed as antiviral therapies; therefore, it is important to understand how PAPD5/7 coordinate to stabilize HBV RNA. Here, we utilized a potent small-molecule AB-452 as a chemical probe, along with genetic analyses to dissect the individual roles of PAPD5/7 in HBV RNA stability. AB-452 inhibits PAPD5/7 enzymatic activities and reduces HBsAg both (50% effective concentration [EC] ranged from 1.4 to 6.8 nM) and by 0.94 log. Our genetic studies demonstrate that the stem-loop alpha sequence within PRE is essential for both maintaining HBV poly(A) tail integrity and determining sensitivity toward the inhibitory effect of AB-452. Although neither single knockout (KO) of nor reduces HBsAg RNA and protein production, KO does impair poly(A) tail integrity and confers partial resistance to AB-452. In contrast, KO did not result in any measurable changes within the HBV poly(A) tails, but cells with both and KO show reduced HBsAg production and conferred complete resistance to AB-452 treatment. Our results indicate that PAPD5 plays a dominant role in stabilizing viral RNA by protecting the integrity of its poly(A) tail, while PAPD7 serves as a second line of protection. These findings inform PAPD5-targeted therapeutic strategies and open avenues for further investigating PAPD5/7 in HBV replication. Chronic hepatitis B affects more than 250 million patients and is a major public health concern worldwide. HBsAg plays a central role in maintaining HBV persistence, and as such, therapies that aim at reducing HBsAg through destabilizing or degrading HBV RNA have been extensively investigated. Besides directly degrading HBV transcripts through antisense oligonucleotides or RNA silencing technologies, small-molecule compounds targeting host factors such as the noncanonical poly(A) polymerase PAPD5 and PAPD7 have been reported to interfere with HBV RNA metabolism. Herein, our antiviral and genetic studies using relevant HBV infection and replication models further characterize the interplays between the element within the viral sequence and the elements from the host factors. PAPD5/7-targeting inhibitors, with oral bioavailability, thus represent an opportunity to reduce HBsAg through destabilizing HBV RNA.

摘要

非典型多聚(A)聚合酶 PAPD5 和 PAPD7(PAPD5/7)通过与病毒转录后调控元件(PRE)相互作用稳定乙型肝炎病毒(HBV)RNA,成为控制 HBV RNA 代谢、乙型肝炎表面抗原(HBsAg)产生和病毒复制的新抗病毒靶点。针对这些蛋白质的抑制剂正被开发为抗病毒疗法;因此,了解 PAPD5/7 如何协调以稳定 HBV RNA 非常重要。在这里,我们利用一种有效的小分子 AB-452 作为化学探针,结合遗传分析,剖析 PAPD5/7 在 HBV RNA 稳定性中的单独作用。AB-452 抑制 PAPD5/7 的酶活性并降低 HBsAg(半数有效浓度 [EC] 范围为 1.4 至 6.8 nM)和 0.94 对数。我们的遗传研究表明,PRE 内的茎环α序列对于维持 HBV 多聚(A)尾巴的完整性和确定对 AB-452 的抑制作用的敏感性都是必不可少的。尽管单个 KO(缺失)既不降低 HBsAg RNA 也不降低 HBsAg 蛋白的产生,但 KO 确实会破坏多聚(A)尾巴的完整性并对 AB-452 产生部分抗性。相比之下,KO 不会导致 HBV 多聚(A)尾巴内发生任何可测量的变化,但同时缺失 和 KO 的细胞会降低 HBsAg 的产生并对 AB-452 治疗完全产生抗性。我们的结果表明,PAPD5 通过保护其多聚(A)尾巴的完整性在稳定病毒 RNA 方面发挥主导作用,而 PAPD7 则作为第二道防线。这些发现为基于 PAPD5 的治疗策略提供了信息,并为进一步研究 PAPD5/7 在 HBV 复制中的作用开辟了途径。慢性乙型肝炎影响着超过 2.5 亿名患者,是全球范围内的一个主要公共卫生关注点。HBsAg 在维持 HBV 持续性方面发挥着核心作用,因此,旨在通过使 HBV RNA 不稳定或降解来降低 HBsAg 的疗法已得到广泛研究。除了通过反义寡核苷酸或 RNA 沉默技术直接降解 HBV 转录本外,针对宿主因子(如非典型多聚(A)聚合酶 PAPD5 和 PAPD7)的小分子化合物已被报道可干扰 HBV RNA 代谢。在此,我们使用相关的 HBV 感染和复制模型进行的抗病毒和遗传研究进一步描述了病毒序列内的 元件与宿主因子内的 元件之间的相互作用。具有口服生物利用度的 PAPD5/7 靶向抑制剂因此代表了通过使 HBV RNA 不稳定来降低 HBsAg 的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9982/8387043/e5f43ede87f3/jvi.00574-21-f001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验