On a phase field model for RNA-Protein dynamics
Maurizio Grasselli, Luca Scarpa, Andrea Signori

TL;DR
This paper develops and analyzes a phase field model for RNA-protein interactions involving complex coupled reaction-diffusion and Cahn-Hilliard equations, establishing existence, regularity, and unique continuation properties.
Contribution
It introduces a novel approach to handle coupled Cahn-Hilliard systems with zero initial conditions for complexes, extending mathematical techniques to biological phase segregation models.
Findings
Proved existence of global weak solutions in 2D and 3D.
Established regularity and separation properties of complexes.
Developed a new estimation method for chemical potential in singular potentials.
Abstract
A phase field model which describes the formation of protein-RNA complexes subject to phase segregation is analyzed. A single protein, two RNA species, and two complexes are considered. Protein and RNA species are governed by coupled reaction-diffusion equations which also depend on the two complexes. The latter ones are driven by two Cahn-Hilliard equations with Flory-Huggins potential and reaction terms depending on the solution variables. The resulting nonlinear coupled system is equipped with no-flux boundary conditions and suitable initial conditions. The former ones entail some mass conservation constraints which are also due to the nature of the reaction terms. The existence of global weak solutions in a bounded (two- or) three-dimensional domain is established. In dimension two, some weighted-in-time regularity properties are shown. In particular, the complexes instantaneously…
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Taxonomy
TopicsSolidification and crystal growth phenomena · Advanced Mathematical Modeling in Engineering · Aluminum Alloy Microstructure Properties
