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A Cell-to-cell Macromolecular Transport Assay in Planta Utilizing Biolistic Bombardment
Published on: August 27, 2010
Disruption of microtubule organization and centrosome function by expression of tobacco mosaic virus movement protein
Jacqueline Ferralli1, Jamie Ashby, Monika Fasler
1Friedrich Miescher Institute for Biomedical Research, Basel, Switzerland.
Abstract:
The movement protein (MP) of Tobacco mosaic virus mediates the cell-to-cell transport of viral RNA through plasmodesmata, cytoplasmic cell wall channels for direct cell-to-cell communication between adjacent cells. Previous in vivo studies demonstrated that the RNA transport function of the protein correlates with its association with microtubules, although the exact role of microtubules in the movement process remains unknown. Since the binding of MP to microtubules is conserved in transfected mammalian cells, we took advantage of available mammalian cell biology reagents and tools to further address the interaction in flat-growing and transparent COS-7 cells. We demonstrate that neither actin, nor endoplasmic reticulum (ER), nor dynein motor complexes are involved in the apparent alignment of MP with microtubules. Together with results of in vitro coprecipitation experiments, these findings indicate that MP binds microtubules directly. Unlike microtubules associated with neuronal MAP2c, MP-associated microtubules are resistant to disruption by microtubule-disrupting agents or cold, suggesting that MP is a specialized microtubule binding protein that forms unusually stable complexes with microtubules. MP-associated microtubules accumulate ER membranes, which is consistent with a proposed role for MP in the recruitment of membranes in infected plant cells and may suggest that microtubules are involved in this process. The ability of MP to interfere with centrosomal gamma-tubulin is independent of microtubule association with MP, does not involve the removal of other tested centrosomal markers, and correlates with inhibition of centrosomal microtubule nucleation activity. These observations suggest that the function of MP in viral movement may involve interaction with the microtubule-nucleating machinery.
Insights
Tobacco mosaic virus movement protein (MP) directly binds microtubules, forming stable complexes. This interaction, independent of actin or ER, may involve microtubule nucleation for viral RNA transport.
Area of Science:
- Plant Virology
- Cell Biology
- Molecular Biology
Background:
- Tobacco mosaic virus movement protein (MP) facilitates viral RNA transport via plasmodesmata.
- MP's association with microtubules is linked to its RNA transport function, but the precise role of microtubules is unclear.
- MP-microtubule binding is conserved in mammalian cells, enabling study using established cell biology tools.
Purpose of the Study:
- To investigate the direct interaction between Tobacco mosaic virus movement protein (MP) and microtubules in mammalian cells.
- To elucidate the role of microtubules and associated cellular components in MP function.
- To understand how MP influences microtubule stability and nucleation.
Main Methods:
- Utilized COS-7 mammalian cells for in vivo studies.
- Performed in vitro coprecipitation assays.
- Investigated interactions with actin, endoplasmic reticulum (ER), and dynein motor complexes.
- Assessed microtubule stability under disruptive conditions (cold, chemical agents).
- Examined MP's effect on centrosomal gamma-tubulin and microtubule nucleation.
Main Results:
- MP directly binds to microtubules, independent of actin, ER, or dynein.
- MP-associated microtubules exhibit unusual stability, resisting cold and disruptive agents.
- MP binding to microtubules leads to ER membrane accumulation.
- MP interferes with centrosomal gamma-tubulin, inhibiting microtubule nucleation, independent of its microtubule association.
Conclusions:
- MP is a specialized microtubule-binding protein forming stable complexes.
- Microtubules likely play a role in MP-mediated membrane recruitment.
- MP's interaction with the microtubule-nucleating machinery may be crucial for viral movement.
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