Related Experiment Video
Updated: Oct 30, 2025

Modeling The Lifecycle Of Ebola Virus Under Biosafety Level 2 Conditions With Virus-like Particles Containing Tetracistronic Minigenomes
Published on: September 27, 2014
A Novel Plasmid DNA-Based Foot and Mouth Disease Virus Minigenome for Intracytoplasmic mRNA Production
Ploypailin Semkum1,2,3, Challika Kaewborisuth4, Nattarat Thangthamniyom2
1Interdisciplinary Graduate Program in Genetic Engineering, The Graduate School, Kasetsart University, Bangkok 10900, Thailand.
Abstract:
Picornaviruses are non-enveloped, single-stranded RNA viruses that cause highly contagious diseases, such as polio and hand, foot-and-mouth disease (HFMD) in human, and foot-and-mouth disease (FMD) in animals. Reverse genetics and minigenome of picornaviruses mainly depend on in vitro transcription and RNA transfection; however, this approach is inefficient due to the rapid degradation of RNA template. Although DNA-based reverse genetics systems driven by mammalian RNA polymerase I and/or II promoters display the advantage of rescuing the engineered FMDV, the enzymatic functions are restricted in the nuclear compartment. To overcome these limitations, we successfully established a novel DNA-based vector, namely pKLS3, an FMDV minigenome containing the minimum cis-acting elements of FMDV essential for intracytoplasmic transcription and translation of a foreign gene. A combination of pKLS3 minigenome and the helper plasmids yielded the efficient production of uncapped-green florescent protein (GFP) mRNA visualized in the transfected cells. We have demonstrated the application of the pKLS3 for cell-based antiviral drug screening. Not only is the DNA-based FMDV minigenome system useful for the FMDV research and development but it could be implemented for generating other picornavirus minigenomes. Additionally, the prospective applications of this viral minigenome system as a vector for DNA and mRNA vaccines are also discussed.
Insights
Researchers developed a novel DNA-based vector, pKLS3, for efficient picornavirus research. This new FMDV minigenome system enables intracytoplasmic gene expression and antiviral drug screening.
Area of Science:
- Virology
- Molecular Biology
- Biotechnology
Background:
- Picornaviruses cause significant human and animal diseases like polio, HFMD, and FMD.
- Current reverse genetics methods for picornaviruses are inefficient due to RNA degradation.
- Existing DNA-based systems have limitations due to nuclear compartment enzyme functions.
Purpose of the Study:
- To establish a novel DNA-based vector for efficient picornavirus research.
- To overcome limitations of existing reverse genetics systems for picornaviruses.
- To demonstrate the utility of the new system for antiviral drug screening and vaccine development.
Main Methods:
- Development of a DNA-based FMDV minigenome vector (pKLS3).
- Utilizing intracytoplasmic transcription and translation for foreign gene expression.
- Transfection of cells with pKLS3 and helper plasmids.
Main Results:
- Efficient production of uncapped mRNA (GFP) in transfected cells.
- Demonstrated application of the pKLS3 system for cell-based antiviral drug screening.
- Successful generation of a functional FMDV minigenome system.
Conclusions:
- The pKLS3 vector provides an efficient DNA-based system for FMDV research.
- This minigenome system can be adapted for other picornaviruses.
- Potential applications include generating picornavirus minigenomes and developing DNA/mRNA vaccines.
More Related Videos
12:20Bacterial Artificial Chromosomes: A Functional Genomics Tool for the Study of Positive-strand RNA Viruses
Published on: December 29, 2015
12:30Use of a Recombinant Mosquito Densovirus As a Gene Delivery Vector for the Functional Analysis of Genes in Mosquito Larvae
Published on: October 6, 2017