Physiochemical Modeling of Vesicle Dynamics upon Osmotic Upshift

Matteo Gabba, Bert Poolman*

*Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

10 Citations (Scopus)
136 Downloads (Pure)

Abstract

We modeled the relaxation dynamics of (lipid) vesicles upon osmotic upshift, taking into account volume variation, chemical reaction kinetics, and passive transport across the membrane. We focused on the relaxation kinetics upon addition of impermeable osmolytes such as KCl and membrane-permeable solutes such as weak acids. We studied the effect of the most relevant physical parameters on the dynamic behavior of the system, as well as on the relaxation rates. We observe that 1) the dynamic complexity of the relaxation kinetics depends on the number of permeable species; 2) the permeability coefficients (P) and the weak acid strength (pKa-values) determine the dynamic behavior of the system; 3) the vesicle size does not affect the dynamics, but only the relaxation rates of the system; and 4) heterogeneities in the vesicle size provoke stretching of the relaxation curves. The model was successfully benchmarked for determining permeability coefficients by fitting of our experimental relaxation curves and by comparison of the data with literature values (in this issue of Biophysical Journal). To describe the dynamics of yeast cells upon osmotic upshift, we extended the model to account for turgor pressure and nonosmotic volume.

Original languageEnglish
Article numberbpj.2019.11.3383
Pages (from-to)435-447
Number of pages13
JournalBiophysical Journal
Volume118
Issue number2
Early online date14-Dec-2019
DOIs
Publication statusPublished - 21-Jan-2020

Fingerprint

Dive into the research topics of 'Physiochemical Modeling of Vesicle Dynamics upon Osmotic Upshift'. Together they form a unique fingerprint.

Cite this