Related Experiment Video
Updated: Jan 14, 2026

Bacterial Artificial Chromosomes: A Functional Genomics Tool for the Study of Positive-strand RNA Viruses
Published on: December 29, 2015
RNAi therapeutics targeting Japanese encephalitis virus: Gene targets, delivery platforms, and translational barriers
Maneesh Kumar1, Pratima Gupta2, Suman Kumar2
1State VRDL, Department of Microbiology, All India Institute of Medical Sciences, Deoghar, 814152, Jharkhand, India.
Insights
RNA interference (RNAi) offers a promising antiviral strategy against Japanese encephalitis virus (JEV) by targeting conserved genes. Advances in delivery systems enhance efficacy, though clinical translation requires overcoming challenges like delivery efficiency and immune response.
Area of Science:
- Virology
- Molecular Biology
- Neuroscience
Background:
- Japanese encephalitis virus (JEV) is a major cause of viral encephalitis in Asia, particularly in children.
- Current vaccines and vector control have limitations against new JEV genotypes and incomplete coverage.
- RNA interference (RNAi) presents a novel therapeutic approach targeting viral replication.
Purpose of the Study:
- To review RNAi-based therapeutics for JEV.
- To highlight conserved viral gene targets for RNAi.
- To discuss advancements in RNAi delivery platforms and translational challenges.
Main Methods:
- Review of current literature on RNAi for JEV.
- Analysis of conserved JEV gene targets (C, E, NS3, NS5).
- Evaluation of novel RNAi delivery systems (lipid nanoparticles, viral vectors).
Main Results:
- Preclinical studies show >90% viral RNA suppression and reduced brain viral load in murine models.
- Conserved JEV genes are effective targets across genotypes.
- Delivery platforms demonstrate improved stability and blood-brain barrier penetration.
Conclusions:
- RNAi is a potent strategy against JEV, with promising preclinical results.
- Delivery innovations are crucial for therapeutic success.
- Clinical translation requires addressing challenges such as delivery efficiency, immune response, and viral escape.
Abstract:
Japanese encephalitis virus (JEV), a neurotropic flavivirus, is a leading cause of viral encephalitis in Asia, particularly affecting children and causing significant morbidity and mortality. Despite the availability of vaccines and vector control strategies, their limited efficacy against emerging genotypes and incomplete coverage necessitate alternative antiviral approaches. RNA interference (RNAi) has emerged as a promising therapeutic modality by exploiting post-transcriptional gene silencing to inhibit viral replication. Notably, conserved viral genes-such as capsid (C), envelope (E), NS3, and NS5-represent optimal RNAi targets across JEV genotypes due to their essential roles in the viral life cycle and minimal sequence variability. Recent advances in delivery platforms, including lipid nanoparticles, lentiviral vectors, and artificial microRNAs, have significantly improved RNAi stability, blood-brain barrier (BBB) penetration, and cell-specific targeting. Comparative insights from related flaviviruses such as Dengue and Zika have further informed effective RNAi design. Preclinical studies have demonstrated potent antiviral effects, with >90 % suppression of viral RNA, substantial reductions in brain viral load, and enhanced survival in murine models. However, clinical translation remains challenged by delivery efficiency, immune activation, off-target effects, and the potential for viral escape mutations. This review summarizes the current landscape of RNAi-based therapeutics for JEV, emphasizing conserved gene targets, delivery innovations, and translational hurdles, and outlines future directions for integrating RNAi into next-generation antiviral strategies.
Related Concept Videos
Experimental RNAi
RNA Interference
This process occurs naturally in cells, often through the activity of genomically-encoded microRNAs. Researchers can take advantage of this mechanism by introducing synthetic RNAs to deactivate specific genes for research or therapeutic purposes. For example, RNAi could be used...
siRNA - Small Interfering RNAs
In the cytoplasm, siRNA is processed from a double-stranded RNA, which comes from either endogenous DNA transcription or exogenous sources like a virus. This double-stranded RNA is then cleaved by the...
Microorganisms in Medicine and Therapeutics
Leaky Scanning

