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Updated: Mar 2, 2026

Reverse Genetics to Engineer Positive-Sense RNA Virus Variants
Published on: June 9, 2022
Efficient Reverse Genetic Systems for Rapid Genetic Manipulation of Emergent and Preemergent Infectious Coronaviruses
Adam S Cockrell1, Anne Beall2, Boyd Yount1
1Department of Epidemiology, University of North Carolina-Chapel Hill, Chapel Hill, NC, USA.
Abstract:
Emergent and preemergent coronaviruses (CoVs) pose a global threat that requires immediate intervention. Rapid intervention necessitates the capacity to generate, grow, and genetically manipulate infectious CoVs in order to rapidly evaluate pathogenic mechanisms, host and tissue permissibility, and candidate antiviral therapeutic efficacy. CoVs encode the largest viral RNA genomes at about 28-32,000 nucleotides in length, and thereby complicate efficient engineering of the genome. Deconstructing the genome into manageable fragments affords the plasticity necessary to rapidly introduce targeted genetic changes in parallel and assort mutated fragments while maximizing genome stability over time. In this protocol we describe a well-developed reverse genetic platform strategy for CoVs that is comprised of partitioning the viral genome into 5-7 independent DNA fragments (depending on the CoV genome), each subcloned into a plasmid for increased stability and ease of genetic manipulation and amplification. Coronavirus genomes are conveniently partitioned by introducing type IIS or IIG restriction enzyme recognition sites that confer directional cloning. Since each restriction site leaves a unique overhang between adjoining fragments, reconstruction of the full-length genome can be achieved through a standard DNA ligation comprised of equal molar ratios of each fragment. Using this method, recombinant CoVs can be rapidly generated and used to investigate host range, gene function, pathogenesis, and candidate therapeutics for emerging and preemergent CoVs both in vitro and in vivo.
Insights
This study presents a novel reverse genetics platform for rapidly engineering coronaviruses (CoVs). This method facilitates swift evaluation of viral mechanisms and therapeutic efficacy for emergent and preemergent CoVs.
Area of Science:
- Virology
- Molecular Biology
- Genetics
Background:
- Coronaviruses (CoVs) represent a significant global health threat.
- Rapid intervention requires efficient methods for generating, growing, and genetically manipulating CoVs.
- The large RNA genomes of CoVs complicate genetic engineering efforts.
Purpose of the Study:
- To describe a robust reverse genetics platform for coronaviruses.
- To enable rapid genetic manipulation of CoV genomes for research and therapeutic development.
- To facilitate the study of CoV pathogenesis and antiviral efficacy.
Main Methods:
- Deconstructing the CoV genome into 5-7 DNA fragments cloned into plasmids.
- Utilizing type IIS or IIG restriction enzyme sites for directional cloning of fragments.
- Reconstructing the full-length viral genome via DNA ligation of the partitioned fragments.
Main Results:
- A stable and efficient platform for generating recombinant CoVs.
- Facilitation of parallel genetic modifications and fragment assortment.
- Enabling rapid generation of engineered CoVs for diverse research applications.
Conclusions:
- The described reverse genetics platform offers a versatile strategy for CoV research.
- This method accelerates the investigation of emergent and preemergent CoVs.
- It supports the evaluation of host range, gene function, pathogenesis, and antiviral therapeutics.

