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Rescue and Characterization of Recombinant Virus from a New World Zika Virus Infectious Clone
Published on: June 7, 2017
Development and Characterization of a Genetically Stable Infectious Clone for a Genotype I Isolate of Dengue Virus
Mingyue Hu1,2, Tiantian Wu2, Yang Yang2
1College of Animal Sciences and Veterinary Medicine, Guangxi University, Nanning 530004, China.
Abstract:
Dengue virus (DENV) is primarily transmitted by the bite of an infected mosquito of Aedes aegypti and Aedes albopictus, and symptoms caused may range from mild dengue fever to severe dengue hemorrhagic fever and dengue shock syndrome. Reverse genetic system represents a valuable tool for the study of DENV virology, infection, pathogenesis, etc. Here, we generated and characterized an eukaryotic-activated full-length infectious cDNA clone for a DENV serotype 1 (DENV-1) isolate, D19044, collected in 2019. Initially, nearly the full genome was determined by sequencing overlapping RT-PCR products, and was classified to be genotype I DENV-1. D19044 wild-type cDNA clone (D19044_WT) was assembled by four subgenomic fragments, in a specific order, into a low-copy vector downstream the CMV promoter. D19044_WT released the infectious virus at a low level (1.26 × 103 focus forming units per milliliter [FFU/mL]) following plasmid transfection of BHK-21 cells. Further adaptation by consecutive virus passages up to passage 37, and seven amino acid substitutions (7M) were identified from passage-recovered viruses. The addition of 7M (D19044_7M) greatly improved viral titer (7.5 × 104 FFU/mL) in transfected BHK-21 culture, and virus infections in 293T, Huh7.5.1, and C6/36 cells were also efficient. D19044_7M plasmid was genetically stable in transformant bacteria after five transformation-purification cycles, which did not change the capacity of producing infectious virus. Moreover, the D19044_7M virus was inhibited by mycophenolic acid in a dose-dependent manner. In conclusion, we have developed a DNA-launched full-length infectious clone for a genotype I isolate of DENV-1, with genetic stability in transformant bacteria, thus providing a useful tool for the study of DENV-1.
Insights
Researchers developed a new infectious clone for Dengue virus serotype 1 (DENV-1), enhancing viral replication and stability. This tool aids in studying DENV virology and pathogenesis.
Area of Science:
- Virology
- Molecular Biology
- Infectious Diseases
Background:
- Dengue virus (DENV) causes significant global health issues, ranging from mild fever to severe hemorrhagic conditions.
- The primary vectors for DENV are Aedes aegypti and Aedes albopictus mosquitoes.
- Reverse genetics is crucial for understanding DENV's complex biology, including infection and pathogenesis.
Purpose of the Study:
- To generate and characterize a DNA-launched, eukaryotic-activated full-length infectious cDNA clone of a DENV serotype 1 (DENV-1) genotype I isolate.
- To adapt the DENV-1 clone for improved viral replication and stability.
- To establish a robust tool for DENV-1 research.
Main Methods:
- Sequencing of overlapping RT-PCR products to determine the near-full genome of the DENV-1 isolate (D19044).
- Assembly of a wild-type cDNA clone (D19044_WT) using four subgenomic fragments into a low-copy vector.
- Adaptation of the virus through serial passages and identification of key amino acid substitutions (7M) for enhanced replication.
Main Results:
- The initial D19044_WT clone produced low levels of infectious virus (1.26 × 10^3 FFU/mL).
- Adaptation led to the D19044_7M clone with significantly improved viral titer (7.5 × 10^4 FFU/mL) and efficient infection in multiple cell lines.
- The D19044_7M plasmid demonstrated genetic stability in bacteria and susceptibility to mycophenolic acid inhibition.
Conclusions:
- A stable, DNA-launched infectious clone for a genotype I DENV-1 isolate has been successfully developed.
- The adapted DENV-1 clone (D19044_7M) exhibits enhanced replication and genetic stability, making it a valuable research tool.
- This infectious clone provides a platform for further investigations into DENV-1 virology, pathogenesis, and antiviral strategies.

