Nanoparticle transport across model cellular membranes: when do solubility-diffusion models break down?. (28th June 2018)
- Record Type:
- Journal Article
- Title:
- Nanoparticle transport across model cellular membranes: when do solubility-diffusion models break down?. (28th June 2018)
- Main Title:
- Nanoparticle transport across model cellular membranes: when do solubility-diffusion models break down?
- Authors:
- Smith, David J
Leal, L Gary
Mitragotri, Samir
Shell, M Scott - Abstract:
- Abstract: The interactions of nanoparticles (NPs) with cellular membranes and subsequent transport processes have major implications for the biology, toxicology, and pharmacology of nanoscale materials. Moreover, understanding and predicting the behaviors of diverse NP designs in a physiological setting is of increasing technological and regulatory importance. Still, the current complexity of experiments and lack of a consensus in modeling and simulation preclude a clear picture of relevant NP-membrane interaction modes and mechanisms, particularly for particles on the ~1–10 nm scale. Here, we leverage detailed coarse-grained molecular dynamics simulations with advanced sampling strategies to uncover the thermodynamic driving forces and possible kinetic pathways of approximately 0.5–2.0 nm hydrophilic, hydrophobic, and 'interfacially active' particles with model lipid bilayer membranes. Using the simulations, we test the applicability of well-established theoretical models for the permeability of small molecule transport—Overton's rule and the inhomogeneous solubility-diffusion model—and conclude that the former is overly-simplified for fluctuating lipid bilayers, while the latter breaks down at the larger particle sizes due to the influence of other physics like membrane undulations. We place this work in the context of recent simulation studies, and conclude with critical physical and methodological insights to guide future thermodynamic and kinetic studies of NP-membraneAbstract: The interactions of nanoparticles (NPs) with cellular membranes and subsequent transport processes have major implications for the biology, toxicology, and pharmacology of nanoscale materials. Moreover, understanding and predicting the behaviors of diverse NP designs in a physiological setting is of increasing technological and regulatory importance. Still, the current complexity of experiments and lack of a consensus in modeling and simulation preclude a clear picture of relevant NP-membrane interaction modes and mechanisms, particularly for particles on the ~1–10 nm scale. Here, we leverage detailed coarse-grained molecular dynamics simulations with advanced sampling strategies to uncover the thermodynamic driving forces and possible kinetic pathways of approximately 0.5–2.0 nm hydrophilic, hydrophobic, and 'interfacially active' particles with model lipid bilayer membranes. Using the simulations, we test the applicability of well-established theoretical models for the permeability of small molecule transport—Overton's rule and the inhomogeneous solubility-diffusion model—and conclude that the former is overly-simplified for fluctuating lipid bilayers, while the latter breaks down at the larger particle sizes due to the influence of other physics like membrane undulations. We place this work in the context of recent simulation studies, and conclude with critical physical and methodological insights to guide future thermodynamic and kinetic studies of NP-membrane interactions. … (more)
- Is Part Of:
- Journal of physics. Volume 51:Number 29(2018)
- Journal:
- Journal of physics
- Issue:
- Volume 51:Number 29(2018)
- Issue Display:
- Volume 51, Issue 29 (2018)
- Year:
- 2018
- Volume:
- 51
- Issue:
- 29
- Issue Sort Value:
- 2018-0051-0029-0000
- Page Start:
- Page End:
- Publication Date:
- 2018-06-28
- Subjects:
- nanoparticles -- lipid membranes -- molecular dynamics simulations -- simple diffusion -- passive permeability -- free energy calculations
Physics -- Periodicals
530 - Journal URLs:
- http://ioppublishing.org/ ↗
http://iopscience.iop.org/0022-3727 ↗ - DOI:
- 10.1088/1361-6463/aacac9 ↗
- Languages:
- English
- ISSNs:
- 0022-3727
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 14077.xml