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Updated: Jun 17, 2025

Simple and Robust in vivo and in vitro Approach for Studying Virus Assembly
Published on: March 1, 2012
In vitro reconstitution reveals membrane clustering and RNA recruitment by the enteroviral AAA+ ATPase 2C
Kasturika Shankar1,2,3,4, Marie N Sorin1,2,3,4, Himanshu Sharma1,2,3,4
1Department of Medical Biochemistry and Biophysics, Umeå University, Umeå, Sweden.
Abstract:
Enteroviruses are a vast genus of positive-sense RNA viruses that cause diseases ranging from common cold to poliomyelitis and viral myocarditis. They encode a membrane-bound AAA+ ATPase, 2C, that has been suggested to serve several roles in virus replication, e.g. as an RNA helicase and capsid assembly factor. Here, we report the reconstitution of full-length, poliovirus 2C's association with membranes. We show that the N-terminal membrane-binding domain of 2C contains a conserved glycine, which is suggested by structure predictions to divide the domain into two amphipathic helix regions, which we name AH1 and AH2. AH2 is the main mediator of 2C oligomerization, and is necessary and sufficient for its membrane binding. AH1 is the main mediator of a novel function of 2C: clustering of membranes. Cryo-electron tomography reveal that several 2C copies mediate this function by localizing to vesicle-vesicle interfaces. 2C-mediated clustering is partially outcompeted by RNA, suggesting a way by which 2C can switch from an early role in coalescing replication organelles and lipid droplets, to a later role where 2C assists RNA replication and particle assembly. 2C is sufficient to recruit RNA to membranes, with a preference for double-stranded RNA (the replicating form of the viral genome). Finally, the in vitro reconstitution revealed that full-length, membrane-bound 2C has ATPase activity and ATP-independent, single-strand ribonuclease activity, but no detectable helicase activity. Together, this study suggests novel roles for 2C in membrane clustering, RNA membrane recruitment and cleavage, and calls into question a role of 2C as an RNA helicase. The reconstitution of functional, 2C-decorated vesicles provides a platform for further biochemical studies into this protein and its roles in enterovirus replication.
Insights
Enterovirus protein 2C binds membranes and clusters vesicles, recruiting RNA for replication. This study reveals new functions for 2C, questioning its role as an RNA helicase.
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Enteroviruses cause various diseases and utilize a protein called 2C for replication.
- Protein 2C, an AAA+ ATPase, is thought to function as an RNA helicase and in capsid assembly.
Purpose of the Study:
- To reconstitute and characterize the membrane association and functions of poliovirus 2C.
- To investigate the roles of different domains of 2C in its interactions with membranes and RNA.
Main Methods:
- Reconstitution of full-length poliovirus 2C with membranes.
- Structure prediction and mutational analysis of the 2C N-terminal domain.
- Cryo-electron tomography to visualize 2C-mediated membrane clustering.
- In vitro biochemical assays for ATPase, ribonuclease, and helicase activities.
Main Results:
- The N-terminal domain of 2C, specifically helix AH2, mediates membrane binding and oligomerization.
- Helix AH1 is responsible for a novel function: clustering of membranes by recruiting vesicles.
- 2C recruits RNA to membranes, particularly double-stranded RNA, and exhibits ATPase and ribonuclease activities but not helicase activity.
Conclusions:
- Poliovirus 2C plays novel roles in membrane clustering and RNA recruitment to membranes.
- The findings challenge the established role of 2C as an RNA helicase.
- Reconstituted 2C-decorated vesicles offer a platform for further enterovirus replication studies.
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