Related Experiment Video
Updated: May 30, 2026

Purification of Viral DNA for the Identification of Associated Viral and Cellular Proteins
Published on: August 31, 2017
The association of viral proteins with host cell dynein components during virus infection
Javier Merino-Gracia1, María F García-Mayoral, Ignacio Rodríguez-Crespo
1Departamento de Bioquímica y Biología Molecular I, Universidad Complutense, Madrid, Spain.
Abstract:
After fusion with the cellular plasma membrane or endosomal membranes, viral particles are generally too large to diffuse freely within the crowded cytoplasm environment. Thus, they will never reach the cell nucleus or the perinuclear areas where replication or reverse transcription usually takes place. It has been proposed that many unrelated viruses are transported along microtubules in a retrograde manner using the cellular dynein machinery or, at least, some dynein components. A putative employment of the dynein motor in a dynein-mediated transport has been suggested from experiments in which viral capsid proteins were used as bait in yeast two-hybrid screens using libraries composed of cellular proteins and dynein-associated chains were retrieved as virus-interacting proteins. In most cases DYNLL1, DYNLT1 or DYNLRB1 were identified as the dynein chains that interact with viral proteins. The importance of these dynein-virus interactions has been supported, in principle, by the observation that in some cases the dynein-interacting motifs of viral proteins altered by site-directed mutagenesis result in non-infective virions. Furthermore, overexpression of p50 dynamitin, which blocks the dynein-dynactin interaction, or incubation of infected cells with peptides that compete with viral polypeptides for dynein binding have been shown to alter the viral retrograde transport. Still, it remains to be proved that dynein light chains can bind simultaneously to incoming virions and to the dynein motor for retrograde transport to take place. In this review, we will analyse the association of viral proteins with dynein polypeptides and its implications for viral infection.
Insights
Viruses use cellular dynein machinery for transport within cells. This review examines how viral proteins interact with dynein polypeptides, impacting viral infection and retrograde transport mechanisms.
Area of Science:
- Cell Biology
- Virology
- Molecular Motors
Background:
- Viral particles face transport challenges within the crowded cytoplasm after membrane fusion.
- Retrograde transport along microtubules via dynein machinery is a proposed mechanism for viral intracellular movement.
- Dynein motor involvement in viral transport is suggested by interactions between viral proteins and dynein components.
Purpose of the Study:
- To analyze the association of viral proteins with dynein polypeptides.
- To explore the implications of these dynein-virus interactions for viral infection.
- To review the evidence for dynein-mediated retrograde transport of viruses.
Main Methods:
- Yeast two-hybrid screens using viral capsid proteins to identify interacting cellular proteins.
- Site-directed mutagenesis of viral proteins to assess the impact on infectivity.
- Experiments involving overexpression of p50 dynamitin or competing peptides to disrupt dynein function.
Main Results:
- Dynein light chains, including DYNLL1, DYNLT1, and DYNLRB1, were identified as viral-interacting proteins.
- Mutations in dynein-interacting motifs of viral proteins can lead to non-infective virions.
- Disruption of dynein-dynactin interaction or dynein binding affects viral retrograde transport.
Conclusions:
- Viral proteins interact with specific dynein polypeptides, suggesting a role for dynein in viral intracellular trafficking.
- Understanding these interactions is crucial for elucidating viral infection mechanisms.
- Further research is needed to confirm simultaneous binding of dynein light chains to virions and the dynein motor for effective retrograde transport.
Related Concept Videos
Intracellular Movement of Viruses and Bacteria
Microtubule Associated Motor Proteins
The Movement of Organelles and Vesicles
Inhibitors of Virion Maturation and Assembly
Retrovirus Life Cycles
Inhibitors Of Virion Release

