Related Experiment Video
Updated: Apr 28, 2026

Live Cell Imaging of Alphaherpes Virus Anterograde Transport and Spread
Published on: August 16, 2013
Pinpointing retrovirus entry sites in cells expressing alternatively spliced receptor isoforms by single virus
Sergi Padilla-Parra, Mariana Marin, Naoyuki Kondo
1Division of Pediatric Infectious Diseases, Emory University Children's Center, Atlanta, GA 30322, USA. gmeliki@emory.edu.
Background:
The majority of viruses enter host cells via endocytosis. Current knowledge of viral entry pathways is largely based upon infectivity measurements following genetic and/or pharmacological interventions that disrupt vesicular trafficking and maturation. Imaging of single virus entry in living cells provides a powerful means to delineate viral trafficking pathways and entry sites under physiological conditions.
Results:
Here, we visualized single avian retrovirus co-trafficking with markers for early (Rab5) and late (Rab7) endosomes, acidification of endosomal lumen and the resulting viral fusion measured by the viral content release into the cytoplasm. Virus-carrying vesicles either merged with the existing Rab5-positive early endosomes or slowly accumulated Rab5. The Rab5 recruitment to virus-carrying endosomes correlated with acidification of their lumen. Viral fusion occurred either in early (Rab5-positive) or intermediate (Rab5- and Rab7-positive) compartments. Interestingly, different isoforms of the cognate receptor directed virus entry from distinct endosomes. In cells expressing the transmembrane receptor, viruses preferentially entered and fused with slowly maturing early endosomes prior to accumulation of Rab7. By comparison, in cells expressing the GPI-anchored receptor, viruses entered both slowly and quickly maturing endosomes and fused with early (Rab5-positive) and intermediate (Rab5- and Rab7-positive) compartments.
Conclusions:
Since the rate of low pH-triggered fusion was independent of the receptor isoform, we concluded that the sites of virus entry are determined by the kinetic competition between endosome maturation and viral fusion. Our findings demonstrate the ability of this retrovirus to enter cells via alternative endocytic pathways and establish infection by releasing its content from distinct endosomal compartments.
Insights
This study visualizes avian retrovirus entry into host cells, revealing that viruses fuse within early or intermediate endosomes. Receptor type influences entry pathway, but fusion timing, not receptor, dictates the site.
Area of Science:
- Cell Biology
- Virology
- Molecular Biology
Background:
- Viruses primarily enter host cells through endocytosis.
- Understanding viral entry mechanisms is crucial for developing antiviral strategies.
- Single-virus imaging offers a powerful tool to study viral trafficking and entry dynamics.
Purpose of the Study:
- To visualize and delineate the endocytic pathways and entry sites of avian retroviruses in living cells.
- To investigate the role of endosomal maturation and acidification in viral fusion.
- To determine how different receptor isoforms affect viral entry pathways.
Main Methods:
- Live-cell imaging of single avian retroviruses.
- Co-trafficking analysis with endosomal markers (Rab5, Rab7).
- Monitoring of endosomal acidification and viral content release.
Main Results:
- Avian retroviruses co-trafficked with early (Rab5) and late (Rab7) endosomes.
- Viral fusion occurred in early or intermediate endosomes, correlated with lumenal acidification.
- Distinct receptor isoforms (transmembrane vs. GPI-anchored) directed virus entry from different endosomal populations.
Conclusions:
- Viral entry sites are determined by the kinetic interplay between endosome maturation and viral fusion.
- Avian retroviruses utilize alternative endocytic pathways for cell entry.
- Retroviral infection is established via content release from diverse endosomal compartments.
Related Concept Videos
Retrovirus Life Cycles
Viral Recombination
Leaky Scanning
Retroviruses

