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A Primary Neuron Culture System for the Study of Herpes Simplex Virus Latency and Reactivation
Published on: April 2, 2012
Herpes Simplex Virus 1 Spread in Oligodendrocytic Cells Is Highly Dependent on MAL Proteolipid
José Antonio López-Guerrero1,2, Carmen de la Nuez1, Beatriz Praena1,2
1Universidad Autónoma de Madrid, Departamento de Biología Molecular, Madrid, Spain.
Abstract:
Myelin and lymphocyte protein (MAL) is a tetraspan integral membrane protein that resides in detergent-insoluble membrane fractions enriched in condensed membranes. MAL is expressed in oligodendrocytes, in Schwann cells, where it is essential for the stability of myelin, and at the apical membrane of epithelial cells, where it has a critical role in transport. In T lymphocytes, MAL is found at the immunological synapse and plays a crucial role in exosome secretion. However, no involvement of MAL in viral infections has been reported so far. Here, we show that herpes simplex virus 1 (HSV-1) virions travel in association with MAL-positive structures to reach the end of cellular processes, which contact uninfected oligodendrocytes. Importantly, the depletion of MAL led to a significant decrease in infection, with a drastic reduction in the number of lytic plaques in MAL-silenced cells. These results suggest a significant role for MAL in viral spread at cell contacts. The participation of MAL in the cell-to-cell spread of HSV-1 may shed light on the involvement of proteolipids in this process.IMPORTANCE Herpes simplex virus 1 (HSV-1) is a neurotropic pathogen that can infect many types of cells and establish latent infections in neurons. HSV-1 may spread from infected to uninfected cells by two main routes: by cell-free virus or by cell-to-cell spread. In the first case, virions exit into the extracellular space and then infect another cell from the outside. In the second case, viral transmission occurs through cell-to-cell contacts via a mechanism that is still poorly understood. A third mode of spread, using extracellular vesicles, also exists. In this study, we demonstrate the important role for a myelin protein, myelin and lymphocyte protein (MAL), in the process of cell-to-cell viral spread in oligodendrocytes. We show that MAL is involved in trafficking of virions along cell processes and that MAL depletion produces a significant alteration in the viral cycle, which reduces cell-to cell spread of HSV-1.
Insights
Myelin and lymphocyte protein (MAL) is crucial for herpes simplex virus 1 (HSV-1) cell-to-cell spread in oligodendrocytes. Depleting MAL significantly reduces HSV-1 infection and viral spread.
Area of Science:
- Neurovirology
- Cellular Biology
- Membrane Protein Function
Background:
- Myelin and lymphocyte protein (MAL) is an integral membrane protein vital for myelin stability in oligodendrocytes and Schwann cells.
- MAL also plays roles in epithelial cell transport and T lymphocyte function, including exosome secretion.
- Its involvement in viral infections, particularly herpes simplex virus 1 (HSV-1), has not been previously reported.
Purpose of the Study:
- To investigate the potential role of MAL in the spread of herpes simplex virus 1 (HSV-1).
- To determine if MAL influences HSV-1 trafficking and infection dynamics in oligodendrocytes.
Main Methods:
- Utilized immunofluorescence to track HSV-1 virions in association with MAL-positive structures.
- Employed MAL depletion techniques (silencing) to assess its impact on viral infection.
- Quantified lytic plaques to measure the reduction in HSV-1 spread.
Main Results:
- HSV-1 virions were observed to travel along cellular processes in association with MAL-positive structures.
- Depletion of MAL led to a significant decrease in HSV-1 infection rates.
- A drastic reduction in the number of lytic plaques was observed in MAL-silenced oligodendrocytes.
Conclusions:
- MAL plays a significant role in the cell-to-cell spread of HSV-1 in oligodendrocytes.
- MAL is involved in the trafficking of HSV-1 virions along cell processes, facilitating viral transmission.
- These findings highlight the potential involvement of proteolipids in viral spread mechanisms.
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