We present a statistical mechanical model based on the principle of mass action that explains the main features of the in vitro aggregation behavior of the coat protein of tobacco mosaic virus (TMV). By comparing our model to experimentally obtained stability diagrams, titration experiments, and calorimetric data, we pin down three competing factors that regulate the transitions between the different kinds of aggregated state of the coat protein. These are hydrophobic interactions, electrostatic interactions, and the formation of so-called "Caspar" carboxylate pairs. We suggest that these factors could be universal and relevant to a large class of virus coat proteins
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
\u3cp\u3eThe spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of sim...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
AbstractWe present a statistical mechanical model based on the principle of mass action that explain...
AbstractWe present a statistical mechanical model based on the principle of mass action that explain...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
\u3cp\u3eThe spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of sim...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
We present a statistical mechanical model based on the principle of mass action that explains the ma...
AbstractWe present a statistical mechanical model based on the principle of mass action that explain...
AbstractWe present a statistical mechanical model based on the principle of mass action that explain...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
The spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of simple icosa...
\u3cp\u3eThe spontaneous encapsulation of genomic and non-genomic polyanions by coat proteins of sim...