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Updated: Jun 19, 2026

Method for Measurement of Viral Fusion Kinetics at the Single Particle Level
Published on: September 7, 2009
In vitro dynamic visualization analysis of fluorescently labeled minor capsid protein IX and core protein V by
Hideyo Ugai1, Minghui Wang, Long P Le
1Division of Human Gene Therapy, Departments of Medicine, Obstetrics and Gynecology, Pathology, and Surgery, University of Alabama at Birmingham, Birmingham, AL 35294, USA.
Abstract:
Oncolytic adenoviruses represent a promising therapeutic medicine for human cancer therapy, but successful translation into human clinical trials requires careful evaluation of their viral characteristics. While the function of adenovirus proteins has been analyzed in detail, the dynamics of adenovirus infection remain largely unknown due to technological constraints that prevent adequate tracking of adenovirus particles after infection. Fluorescence labeling of adenoviral particles is one new strategy designed to directly analyze the dynamic processes of viral infection in virus-host cell interactions. We hypothesized that the double labeling of an adenovirus with fluorescent proteins would allow us to properly analyze intracellular viruses and the fate of viral proteins in a live analysis of an adenovirus as compared to single labeling. Thus, we generated a fluorescently labeled adenovirus with both a red fluorescent minor capsid protein IX (pIX) [pIX monomeric red fluorescent protein 1 (mRFP1)] and a green fluorescent minor core protein V (pV) [pV enhanced green fluorescent protein (EGFP)], resulting in Ad5-IX-mRFP1-E3-V-EGFP. The fluorescent signals for pIX-mRFP1 and pV-EGFP were detected within 10 min in living cells. However, a growth curve analysis of Ad5-IX-mRFP1-E3-V-EGFP showed an approximately 150-fold reduced production of the viral progeny at 48 h postinfection as compared to adenovirus type 5. Interestingly, pIX-mRFP1 and pV-EGFP were initially localized in the cytoplasm and nucleolus, respectively, at 18 h postinfection. These proteins were observed in the nucleus during the late stage of infection, and relocalization of the proteins was observed in an adenoviral-replication-dependent manner. These results indicate that simultaneous detection of adenoviruses using dual-fluorescent proteins is suitable for real-time analysis, including identification of infected cells and monitoring of viral spread, which will be required for a complete evaluation of oncolytic adenoviruses.
Insights
Dual-fluorescent labeling of oncolytic adenoviruses enables real-time tracking of viral dynamics and infected cells. This method aids in evaluating viral characteristics crucial for cancer therapy development.
Area of Science:
- Virology
- Molecular Biology
- Cancer Therapy
Background:
- Oncolytic adenoviruses show promise for cancer therapy, but understanding viral infection dynamics is limited.
- Technological constraints hinder the tracking of adenovirus particles during infection.
- Fluorescence labeling offers a strategy to analyze viral infection processes in real-time.
Purpose of the Study:
- To develop and evaluate a dual-fluorescent labeling method for adenoviruses to analyze intracellular virus dynamics and protein fate.
- To compare the efficacy of dual-labeling versus single-labeling for live adenovirus analysis.
Main Methods:
- Generated a dual-fluorescent adenovirus (Ad5-IX-mRFP1-E3-V-EGFP) by labeling capsid protein IX with mRFP1 and core protein V with EGFP.
- Detected fluorescent signals in living cells within 10 minutes post-infection.
- Analyzed viral progeny production, protein localization, and relocalization dynamics at different infection stages.
Main Results:
- Dual-fluorescent signals were detected rapidly in living cells.
- The dual-labeled adenovirus exhibited a 150-fold reduction in viral progeny production compared to wild-type adenovirus.
- Proteins showed distinct initial localization (cytoplasm and nucleolus) and later relocalization to the nucleus, dependent on viral replication.
Conclusions:
- Dual-fluorescent protein labeling is effective for real-time analysis of adenovirus infection, including infected cell identification and viral spread monitoring.
- This technique is essential for the comprehensive evaluation of oncolytic adenoviruses for therapeutic applications.
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