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Updated: Jun 27, 2025

Temporal Analysis of the Nuclear-to-cytoplasmic Translocation of a Herpes Simplex Virus 1 Protein by Immunofluorescent Confocal Microscopy
Published on: November 4, 2018
The HSV-1 pUL37 protein promotes cell invasion by regulating the kinesin-1 motor
DongHo Kim1, Michael A Cianfrocco2, Kristen J Verhey3
1Department of Microbiology-Immunology, Northwestern University Feinberg School of Medicine, Chicago, IL 60611.
Abstract:
Neurotropic alphaherpesviruses, including herpes simplex virus type 1 (HSV-1), recruit microtubule motor proteins to invade cells. The incoming viral particle traffics to nuclei in a two-step process. First, the particle uses the dynein-dynactin motor to sustain transport to the centrosome. In neurons, this step is responsible for long-distance retrograde axonal transport and is an important component of the neuroinvasive property shared by these viruses. Second, a kinesin-dependent mechanism redirects the particle from the centrosome to the nucleus. We have reported that the kinesin motor used during the second step of invasion is assimilated into nascent virions during the previous round of infection. Here, we report that the HSV-1 pUL37 tegument protein suppresses the assimilated kinesin-1 motor during retrograde axonal transport. Region 2 (R2) of pUL37 was required for suppression and functioned independently of the autoinhibitory mechanism native to kinesin-1. Furthermore, the motor domain and proximal coiled coil of kinesin-1 were sufficient for HSV-1 assimilation, pUL37 suppression, and nuclear trafficking. pUL37 localized to the centrosome, the site of assimilated kinesin-1 activation during infection, when expressed in cells in the absence of other viral proteins; however, pUL37 did not suppress kinesin-1 in this context. These results indicate that the pUL37 tegument protein spatially and temporally regulates kinesin-1 via the amino-terminal motor region in the context of the incoming viral particle.
Insights
Herpes simplex virus type 1 (HSV-1) uses the pUL37 protein to suppress kinesin-1 motor activity during cell invasion. This regulation is crucial for viral transport and neuroinvasion.
Area of Science:
- Virology
- Cell Biology
- Neuroscience
Background:
- Neurotropic alphaherpesviruses, like HSV-1, utilize host cell machinery for invasion.
- Viral particles are transported via microtubule motor proteins during cell entry.
Purpose of the Study:
- To investigate the role of HSV-1 pUL37 tegument protein in regulating kinesin-1 motor function during viral cell entry.
- To elucidate the mechanism by which pUL37 suppresses kinesin-1 during retrograde axonal transport.
Main Methods:
- Investigated the interaction between HSV-1 pUL37 and kinesin-1 in infected cells.
- Utilized protein expression and localization studies to determine functional domains.
- Assessed the impact of pUL37 on kinesin-1 activity and viral trafficking.
Main Results:
- HSV-1 pUL37 suppresses the kinesin-1 motor during retrograde axonal transport.
- Region 2 (R2) of pUL37 is essential for this suppression.
- The motor domain and proximal coiled coil of kinesin-1 are sufficient for viral assimilation and pUL37-mediated suppression.
Conclusions:
- HSV-1 pUL37 spatially and temporally regulates kinesin-1 activity.
- Regulation occurs via the amino-terminal motor region of kinesin-1 within the context of the incoming viral particle.
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