Department of Chemistry and Biochemistry, University of Maryland-Baltimore County, Baltimore, Maryland 21250, USA.
Proteins. 2013 Jan;81(1):40-52. doi: 10.1002/prot.24154. Epub 2012 Sep 15.
Hepatitis C virus (HCV) has infected almost 200 million people worldwide, typically causing chronic liver damage and severe complications such as liver failure. Currently, there are few approved treatments for viral infection. Thus, the HCV RNA-dependent RNA polymerase (gene product NS5B) has emerged as an important target for small molecule therapeutics. Potential therapeutic agents include allosteric inhibitors that bind distal to the enzyme active site. While their mechanism of action is not conclusively known, it has been suggested that certain inhibitors prevent a conformational change in NS5B that is crucial for RNA replication. To gain insight into the molecular origin of long-range allosteric inhibition of NS5B, we employed molecular dynamics simulations of the enzyme with and without an inhibitor bound to the thumb domain. These studies indicate that the presence of an inhibitor in the thumb domain alters both the structure and internal motions of NS5B. Principal components analysis identified motions that are severely attenuated by inhibitor binding. These motions may have functional relevance by facilitating interactions between NS5B and RNA template or nascent RNA duplex, with presence of the ligand leading to enzyme conformations with narrower and thus less accessible RNA binding channels. This study provides the first evidence for a mechanistic basis of allosteric inhibition in NS5B. Moreover, we present evidence that allosteric inhibition of NS5B results from intrinsic features of the enzyme free energy landscape, suggesting a common mechanism for the action of diverse allosteric ligands.
丙型肝炎病毒 (HCV) 已在全球感染了近 2 亿人,通常会导致慢性肝损伤和严重并发症,如肝衰竭。目前,批准用于病毒感染的治疗方法很少。因此,丙型肝炎病毒 RNA 依赖性 RNA 聚合酶(基因产物 NS5B)已成为小分子治疗的重要靶标。潜在的治疗剂包括结合在酶活性位点远端的变构抑制剂。虽然其作用机制尚未明确,但有人认为某些抑制剂可阻止 NS5B 发生对 RNA 复制至关重要的构象变化。为了深入了解 NS5B 的长程变构抑制的分子起源,我们对有和没有结合在手拇指结构域的抑制剂的酶进行了分子动力学模拟。这些研究表明,抑制剂在手拇指结构域的存在改变了 NS5B 的结构和内部运动。主成分分析确定了抑制剂结合严重衰减的运动。这些运动可能通过促进 NS5B 与 RNA 模板或新生 RNA 双链之间的相互作用具有功能相关性,配体的存在导致酶构象具有更窄且因此更不易接近的 RNA 结合通道。这项研究首次为 NS5B 的变构抑制提供了机制基础的证据。此外,我们还提供了证据表明,NS5B 的变构抑制是由酶自由能景观的固有特征引起的,这表明不同变构配体的作用具有共同的机制。