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Updated: May 16, 2025

Protein Membrane Overlay Assay: A Protocol to Test Interaction Between Soluble and Insoluble Proteins in vitro
Published on: August 14, 2011
Studies on the Japanese soil-borne wheat mosaic virus movement protein highlight its ability to bind plant RNA
Claudia Janina Strauch1, Nico Sprotte1, Estefania Peña Lozano2
1Institute for Epidemiology and Pathogen Diagnostics, Julius Kühn Institute (JKI) - Federal Research Centre for Cultivated Plants, Messeweg 11-12, 38104, Brunswick, Germany.
Background:
Plant viral movement protein (MP) function is decisive for virus cell-to-cell movement. Often, MPs also induce membrane alterations, which are believed to play a role for the establishment of viral replication compartments. Despite these central roles in virus infection, knowledge of the underlying molecular mechanisms by which MPs cause changes in plasmodesmata (PD) size exclusion limit and contribute to the formation of viral replication compartments remain far from being complete.
Methods:
To further identify host processes subverted by viral MPs, we here characterized the MP of Japanese soil-borne wheat mosaic virus (JSBWMV). We used confocal fluorescence microscopy to study the subcellular localization of MPJSBWMV and to address its functionality in promoting virus cell-to-cell movement. Using the biochemical and biophysical methods co-immunoprecipitation, fluorescence lifetime imaging, microscale thermophoresis and RNA immunoprecipitation we investigate the capacity of MPJSBWMV to multimerize and to bind viral and cellular RNAs.
Results:
MPJSBWMV localized to PD, promoted cell-to-cell movement by complementing a movement-deficient unrelated virus, formed multimers in-vivo and bound to viral RNA with high affinity. Using RNA immunoprecipitation, we identified host RNAs associated with the viral MP. Within the MP-RNA complexes we found RNAs encoding proteins with key functions in membrane modification, signaling, protein folding, and degradation. We propose that binding of MP to these RNAs during infection and regulation of their spatio-temporal translation may represent a mechanism for MPs to achieve PD and host control during replication and movement.
Conclusion:
This study provides new insight into the complex interactions between viral MPs and host cellular processes.
Insights
Japanese soil-borne wheat mosaic virus movement protein (MP) binds host RNAs involved in membrane modification and protein processing. This interaction may regulate host processes for viral replication and cell-to-cell movement.
Area of Science:
- Plant virology
- Molecular plant pathology
Background:
- Plant viral movement proteins (MPs) are crucial for virus spread and establishing replication sites.
- MPs modify plasmodesmata (PD) and host membranes, but mechanisms remain unclear.
Purpose of the Study:
- Characterize the Japanese soil-borne wheat mosaic virus (JSBWMV) MP.
- Investigate its role in cell-to-cell movement and RNA binding.
Main Methods:
- Confocal fluorescence microscopy for subcellular localization.
- Co-immunoprecipitation, FLIM, and microscale thermophoresis for MP interactions.
- RNA immunoprecipitation to identify bound host RNAs.
Main Results:
- JSBWMV MP localizes to PD and promotes cell-to-cell movement.
- MP forms multimers in vivo and binds viral RNA with high affinity.
- MP associates with host RNAs regulating membrane modification, signaling, and protein turnover.
Conclusions:
- JSBWMV MP interacts with host RNAs to control cellular processes.
- This interaction is a potential mechanism for MPs to manipulate host functions during infection.
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