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Published on: June 28, 2013
Crystal Structure and Thermostability Characterization of Enterovirus D68 3Dpol
Chunnian Wang1,2, Caiyan Wang3,2, Qing Li1,2
1School of Pharmaceutical Sciences, The Sun Yat-Sen University, Guangzhou, Guangdong, People's Republic of China.
Abstract:
Enterovirus D68 (EV-D68) is one of the many nonpolio enteroviruses that cause mild to severe respiratory illness. The nonstructural protein 3Dpol is an RNA-dependent RNA polymerase (RdRP) of EV-D68 which plays a critical role in the replication of the viral genome and represents a promising drug target. Here, we report the first three-dimensional crystal structure of the RdRP from EV-D68 in complex with the substrate GTP to 2.3-Å resolution. The RdRP structure is similar to structures of other viral RdRPs, where the three domains, termed the palm, fingers, and thumb, form a structure resembling a cupped right hand. Particularly, an N-terminal fragment (Gly1 to Phe30) bridges the fingers and the thumb domains, which accounts for the enhanced stability of the full-length enzyme over the truncation mutant, as assessed by our thermal shift assays and the dynamic light scattering studies. Additionally, the GTP molecule bound proximal to the active site interacts with both the palm and fingers domains to stabilize the core structure of 3Dpol Interestingly, using limited proteolysis assays, we found that different nucleoside triphosphates (NTPs) stabilize the polymerase structure by various degrees, with GTP and CTP being the most and least stabilizing nucleosides, respectively. Lastly, we derived a model of the core structure of 3Dpol stabilized by GTP, according to our proteolytic studies. The biochemical and biophysical characterizations conducted in this study help us to understand the stability of EV-D68-3Dpol, which may extend to other RdRPs as well.IMPORTANCE Enterovirus D68 (EV-D68) is an emerging viral pathogen, which caused sporadic infections around the world. In recent years, epidemiology studies have reported an increasing number of patients with respiratory diseases globally due to the EV-D68 infection. Moreover, the infection has been associated with acute flaccid paralysis and cranial nerve dysfunction in children. However, there are no vaccines and antiviral treatments specifically targeting the virus to date. In this study, we solved the crystal structure of the RNA-dependent RNA polymerase of EV-D68 and carried out systematic biophysical and biochemical characterizations on the overall and local structural stability of the wild-type (WT) enzyme and several variants, which yields a clear view on the structure-activity relationship of the EV-D68 RNA polymerase.
Insights
Researchers determined the crystal structure of Enterovirus D68's RNA-dependent RNA polymerase (RdRP), a key viral enzyme. This structural insight into EV-D68 3Dpol provides a foundation for developing antiviral therapies against this emerging pathogen.
Area of Science:
- Structural Biology
- Virology
- Drug Discovery
Background:
- Enterovirus D68 (EV-D68) causes respiratory illness and neurological complications, with no current vaccines or treatments.
- The EV-D68 nonstructural protein 3Dpol, an RNA-dependent RNA polymerase (RdRP), is crucial for viral replication and a potential drug target.
Purpose of the Study:
- To determine the three-dimensional crystal structure of the EV-D68 3Dpol.
- To investigate the structural stability of EV-D68 3Dpol in complex with GTP and other nucleoside triphosphates (NTPs).
Main Methods:
- X-ray crystallography to determine the 3D structure of EV-D68 3Dpol at 2.3-Å resolution.
- Thermal shift assays and dynamic light scattering to assess enzyme stability.
- Limited proteolysis assays to evaluate the stabilizing effects of different NTPs.
Main Results:
- The EV-D68 RdRP structure resembles a cupped right hand, with an N-terminal fragment enhancing stability.
- GTP binding stabilizes the polymerase core by interacting with palm and fingers domains.
- GTP and ATP were found to be the most stabilizing NTPs, while CTP was the least.
Conclusions:
- The determined structure provides a molecular basis for understanding EV-D68 3Dpol stability and function.
- Insights into EV-D68 3Dpol stabilization by NTPs can inform the design of antiviral drugs.
- The findings contribute to the development of therapeutic strategies against EV-D68 infections.
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