TY - JOUR
T1 - A novel modelling and simulation approach for the hindered mobility of charged particles in biological hydrogels
AU - Grill, Maximilian J.
AU - Eichinger, Jonas F.
AU - Koban, Jonas
AU - Meier, Christoph
AU - Lieleg, Oliver
AU - Wall, Wolfgang A.
N1 - Publisher Copyright:
© 2021 The Author(s).
PY - 2021/5/26
Y1 - 2021/5/26
N2 - This article presents a novel computational model to study the selective filtering of biological hydrogels due to the surface charge and size of diffusing particles. It is the first model that includes the random three-dimensional fibre orientation and connectivity of the biopolymer network and that accounts for elastic deformations of the fibres by means of beam theory. As a key component of the model, novel formulations are proposed both for the electrostatic and repulsive steric interactions between a spherical particle and a beam. In addition to providing a thorough validation of the model, the presented computational studies yield new insights into the underlying mechanisms of hindered particle mobility, especially regarding the influence of the aforementioned aspects that are unique to this model. It is found that the precise distribution of fibre and thus charge agglomerations in the network have a crucial influence on the mobility of oppositely charged particles and gives rise to distinct motion patterns. Considering the high practical significance for instance with respect to targeted drug release or infection defence, the provided proof of concept motivates further advances of the model towards a truly predictive computational tool that allows a case- and patient-specific assessment for real (biological) systems.
AB - This article presents a novel computational model to study the selective filtering of biological hydrogels due to the surface charge and size of diffusing particles. It is the first model that includes the random three-dimensional fibre orientation and connectivity of the biopolymer network and that accounts for elastic deformations of the fibres by means of beam theory. As a key component of the model, novel formulations are proposed both for the electrostatic and repulsive steric interactions between a spherical particle and a beam. In addition to providing a thorough validation of the model, the presented computational studies yield new insights into the underlying mechanisms of hindered particle mobility, especially regarding the influence of the aforementioned aspects that are unique to this model. It is found that the precise distribution of fibre and thus charge agglomerations in the network have a crucial influence on the mobility of oppositely charged particles and gives rise to distinct motion patterns. Considering the high practical significance for instance with respect to targeted drug release or infection defence, the provided proof of concept motivates further advances of the model towards a truly predictive computational tool that allows a case- and patient-specific assessment for real (biological) systems.
KW - beam theory
KW - biological hydrogels
KW - deformable fibre network
KW - electrostatic interaction
KW - finite-element method
KW - hindered particle diffusion
UR - http://www.scopus.com/inward/record.url?scp=85107673908&partnerID=8YFLogxK
U2 - 10.1098/rspa.2021.0039
DO - 10.1098/rspa.2021.0039
M3 - Article
AN - SCOPUS:85107673908
SN - 1364-5021
VL - 477
JO - Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences
JF - Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences
IS - 2249
M1 - 20210039
ER -