Coacervation drives morphological diversity of mRNA encapsulating nanoparticles

E Emmit K. Pert (Department of Chemistry, Stanford University , Stanford, California 94305,) P Paul J. Hurst (Department of Chemistry, Stanford University , Stanford, California 94305,) R Robert M. Waymouth (Department of Chemistry) G Grant M. Rotskoff (Department of Chemistry, Stanford University 1 , Stanford, California 94305,)

Abstract

The spatial arrangement of components within an mRNA encapsulating nanoparticle has consequences for its thermal stability, which is a key parameter for therapeutic utility. The mesostructure of mRNA nanoparticles formed with cationic polymers has several distinct putative structures: here, we develop a field theoretic simulation model to compute the phase diagram for amphiphilic block copolymers that balance coacervation and hydrophobicity as driving forces for assembly. We predict several distinct morphologies for the mesostructure of these nanoparticles, depending on salt conditions and hydrophobicity. We compare our predictions with cryogenic-electron microscopy images of mRNA encapsulated by charge altering releasable transporters. In addition, we provide a graphics processing unit-accelerated, open-source codebase for general purpose field theoretic simulations, which we anticipate will be a useful tool for the community.

Article Details

Volume / Issue Vol. 162, Issue 7
Published February 21, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (4)

E

Emmit K. Pert

Department of Chemistry, Stanford University , Stanford, California 94305,

P

Paul J. Hurst

Department of Chemistry, Stanford University , Stanford, California 94305,

R

Robert M. Waymouth

Department of Chemistry

G

Grant M. Rotskoff

Department of Chemistry, Stanford University 1 , Stanford, California 94305,