Intermolecular interactions play a role in the distribution and transport of charged contrast agents in a cartilage model.

The transport and distribution of charged molecules in polyelectrolyte solutions are of both fundamental and practical importance. A practical example, which is the specific subject addressed in the present paper, is the transport and distribution of charged species into cartilage. The charged speci...

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Main Authors: Jenny Algotsson, Peter Jönsson, Jan Forsman, Daniel Topgaard, Olle Söderman
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0215047
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spelling doaj-0773242493ab4685802c88f164e855632021-03-03T21:06:45ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-011410e021504710.1371/journal.pone.0215047Intermolecular interactions play a role in the distribution and transport of charged contrast agents in a cartilage model.Jenny AlgotssonPeter JönssonJan ForsmanDaniel TopgaardOlle SödermanThe transport and distribution of charged molecules in polyelectrolyte solutions are of both fundamental and practical importance. A practical example, which is the specific subject addressed in the present paper, is the transport and distribution of charged species into cartilage. The charged species could be a contrast agent or a drug molecule involved in diagnosis or treatment of the widespread degenerative disease osteoarthritis, which leads to degradation of articular cartilage. Associated scientific issues include the rate of transport and the equilibrium concentrations of the charged species in the cartilage and the synovial fluid. To address these questions, we present results from magnetic resonance micro-imaging experiments on a model system of articular cartilage. The experiments yield temporally and spatially resolved data on the transport of a negatively charged contrast agent (charge = -2), used in medical examinations of cartilage, into a polyelectrolyte solution, which is designed to capture the electrostatic interactions in cartilage. Also presented is a theoretical analysis of the transport where the relevant differential equations are solved using finite element techniques as well as treated with approximate analytical expressions. In the analysis, non-ideal effects are included in the treatment of the mobile species in the system. This is made possible by using results from previous Monte Carlo simulations. The results demonstrate the importance of taking non-idealities into account when data from measurements of transport of charged solutes in a system with fixed charges from biological polyelectrolytes are analyzed.https://doi.org/10.1371/journal.pone.0215047
collection DOAJ
language English
format Article
sources DOAJ
author Jenny Algotsson
Peter Jönsson
Jan Forsman
Daniel Topgaard
Olle Söderman
spellingShingle Jenny Algotsson
Peter Jönsson
Jan Forsman
Daniel Topgaard
Olle Söderman
Intermolecular interactions play a role in the distribution and transport of charged contrast agents in a cartilage model.
PLoS ONE
author_facet Jenny Algotsson
Peter Jönsson
Jan Forsman
Daniel Topgaard
Olle Söderman
author_sort Jenny Algotsson
title Intermolecular interactions play a role in the distribution and transport of charged contrast agents in a cartilage model.
title_short Intermolecular interactions play a role in the distribution and transport of charged contrast agents in a cartilage model.
title_full Intermolecular interactions play a role in the distribution and transport of charged contrast agents in a cartilage model.
title_fullStr Intermolecular interactions play a role in the distribution and transport of charged contrast agents in a cartilage model.
title_full_unstemmed Intermolecular interactions play a role in the distribution and transport of charged contrast agents in a cartilage model.
title_sort intermolecular interactions play a role in the distribution and transport of charged contrast agents in a cartilage model.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2019-01-01
description The transport and distribution of charged molecules in polyelectrolyte solutions are of both fundamental and practical importance. A practical example, which is the specific subject addressed in the present paper, is the transport and distribution of charged species into cartilage. The charged species could be a contrast agent or a drug molecule involved in diagnosis or treatment of the widespread degenerative disease osteoarthritis, which leads to degradation of articular cartilage. Associated scientific issues include the rate of transport and the equilibrium concentrations of the charged species in the cartilage and the synovial fluid. To address these questions, we present results from magnetic resonance micro-imaging experiments on a model system of articular cartilage. The experiments yield temporally and spatially resolved data on the transport of a negatively charged contrast agent (charge = -2), used in medical examinations of cartilage, into a polyelectrolyte solution, which is designed to capture the electrostatic interactions in cartilage. Also presented is a theoretical analysis of the transport where the relevant differential equations are solved using finite element techniques as well as treated with approximate analytical expressions. In the analysis, non-ideal effects are included in the treatment of the mobile species in the system. This is made possible by using results from previous Monte Carlo simulations. The results demonstrate the importance of taking non-idealities into account when data from measurements of transport of charged solutes in a system with fixed charges from biological polyelectrolytes are analyzed.
url https://doi.org/10.1371/journal.pone.0215047
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