SummaryChemical and genetic modifications on the surface of viral protein cages confer unique properties to the virus particles with potential nano and biotechnological applications. The enclosed space in the interior of the virus particles further increases its versatility as a nanomaterial. In this paper, we report a simple method to generate a high yield of stable cowpea mosaic virus (CPMV) empty capsids from their native nucleoprotein counterparts by removing the encapsidated viral genome without compromising the integrity of the protein coat. Biochemical and structural comparison of artificially generated empty particles did not reveal any distinguishable differences from CPMV particles containing viral RNA. Preliminary results on the ...
Virus capsids, i.e., viruses devoid of their genetic material, are suitable nanocarriers for biomedi...
Protein cages hold much promise as carrier systems in nanomedicine, due to their well-defined size, ...
Virus-like particles are very interesting tools for application in bionanotechnology, due to their m...
SummaryChemical and genetic modifications on the surface of viral protein cages confer unique proper...
The development of methods for the production of empty Cowpea mosaic virus (CPMV) virus-like particl...
AbstractCowpea mosaic virus (CPMV) can be isolated in gram quantities, possesses a structure that is...
The structure of Cowpea mosaic virus (CPMV) is known to high resolution, thereby enabling the ration...
Particles of cowpea mosaic virus (CPMV) have enjoyed considerable success as nanoparticles. The deve...
AbstractCowpea mosaic virus (CPMV) is a robust, icosahedrally symmetric platform successfully used f...
The packaging of proteins into discrete compartments is an essential feature for cellular efficiency...
Cowpea mosaic virus (CPMV) is a picorna-like plant virus. As well as an intrinsic interest in CPMV a...
Using the components of a particularly well-studied plant virus, cowpea chlorotic mottle virus (CCMV...
AbstractCapsids of spherical viruses share a common architecture: an icosahedral arrangement of iden...
Empty virus-like particles (eVLPs) of Cowpea mosaic virus (CPMV) are currently being utilized as rea...
Cowpea mosaic virus is a plant-infecting member of the Picornavirales and is of major interest in th...
Virus capsids, i.e., viruses devoid of their genetic material, are suitable nanocarriers for biomedi...
Protein cages hold much promise as carrier systems in nanomedicine, due to their well-defined size, ...
Virus-like particles are very interesting tools for application in bionanotechnology, due to their m...
SummaryChemical and genetic modifications on the surface of viral protein cages confer unique proper...
The development of methods for the production of empty Cowpea mosaic virus (CPMV) virus-like particl...
AbstractCowpea mosaic virus (CPMV) can be isolated in gram quantities, possesses a structure that is...
The structure of Cowpea mosaic virus (CPMV) is known to high resolution, thereby enabling the ration...
Particles of cowpea mosaic virus (CPMV) have enjoyed considerable success as nanoparticles. The deve...
AbstractCowpea mosaic virus (CPMV) is a robust, icosahedrally symmetric platform successfully used f...
The packaging of proteins into discrete compartments is an essential feature for cellular efficiency...
Cowpea mosaic virus (CPMV) is a picorna-like plant virus. As well as an intrinsic interest in CPMV a...
Using the components of a particularly well-studied plant virus, cowpea chlorotic mottle virus (CCMV...
AbstractCapsids of spherical viruses share a common architecture: an icosahedral arrangement of iden...
Empty virus-like particles (eVLPs) of Cowpea mosaic virus (CPMV) are currently being utilized as rea...
Cowpea mosaic virus is a plant-infecting member of the Picornavirales and is of major interest in th...
Virus capsids, i.e., viruses devoid of their genetic material, are suitable nanocarriers for biomedi...
Protein cages hold much promise as carrier systems in nanomedicine, due to their well-defined size, ...
Virus-like particles are very interesting tools for application in bionanotechnology, due to their m...