Thermodynamic analysis of the permeability of biological membranes to non-electrolytes.
Explore this paper's citation graph
Summary
The equations derived here have been applied to various permeability measurements found in the literature, such as the penetration of heavy water into animal cells, permeability of blood vessels, threshold concentration of plasmolysis and relaxation experiments with artificial membranes.
- Type
- article
- Published
- 1958-01-01
- Cited by
- 2,074
- References
- 10
- OpenAlex
- https://openalex.org/W2107618142
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:31062670
Keywords
Membrane, Permeability (electromagnetism), Thermodynamics, Electrolyte, Chemistry
References
- PERMEABILITY OF NATURAL MEMBRANES
- The Kinetics of Membrane Processes. III. The Diffusion of Various Non‐Electrolytes through Collodion Membranes
- A METHOD FOR THE DETERMINATION OF DIFFUSION CONSTANTS AND THE CALCULATION OF THE RADIUS AND WEIGHT OF THE HEMOGLOBIN MOLECULE
- Physical Chemistry of Cells and Tissues
- The Kinetics of Membrane Processes. I. The Mechanism and the Kinetic Laws for Diffusion through Membranes
- Non-equilibrium thermodynamics of membrane processes
- Ion transport across membranes
- Comparison of water diffusion and water filtration across cell surfaces.
- Filtration, diffusion and molecular sieving through peripheral capillary membranes; a contribution to the pore theory of capillary permeability.
- Physical Chemistry of Cells and Tissues.
Cited by
- The Coupling of Solute Fluxes in Membranes
- The symplast concept. A general theory of symplastic transport according to the thermodynamics of irreversible processes.
- Irreversible thermodynamics and frictional models of membrane processes, with particular reference to the cell membrane.
- Yeast cell responses to water potential variations.
- Temperature dependence of mature mouse oocyte membrane permeabilities in the presence of cryoprotectant.
- Physiological transport properties of cultured retinal microvascular endothelial cell monolayers.
- Osmotic Characteristics of Mouse Spermatozoa in the Presence of Extenders and Sugars1
- Cryopreservation of umbilical cord blood: 1. Osmotically inactive volume, hydraulic conductivity and permeability of CD34(+) cells to dimethyl sulphoxide.
- Biological barriers and material transfer.
- Measurement and simulation of water and methanol transport in algal cells.
- Requirements on Models and Models of Active Transport of Ions in Biomembranes
- Multiscale Model of Liver DCE-MRI Towards a Better Understanding of Tumor Complexity
- Mechanobiology of low-density lipoprotein transport within an arterial wall--impact of hyperthermia and coupling effects.
- Rationally optimized cryopreservation of multiple mouse embryonic stem cell lines: I—Comparative Fundamental Cryobiology of Multiple Mouse Embryonic Stem Cell Lines and the Implications for Embryonic Stem Cell Cryopreservation Protocols
- Modeling the transport of drugs eluted from stents: physical phenomena driving drug distribution in the arterial wall
- Simulation of Complex Transport of Nanoparticles around a Tumor Using Tumor-Microenvironment-on-Chip
- A structural model for the in vivo human cornea including collagen-swelling interaction
- Permeability of the corneal endothelium to nonelectrolytes.
- Model of osmosis in a single-file pore.
- Mathematical models and membrane permeability.
Related papers
- Drug permeation through thin model membranes. I. Development of a polymeric model biomembrane.
- A note on the diffusion of drugs through artificial phospholipid membranes
- Drug permeation through thin model membranes. II. Permeation characteristics of a polymeric model biomembrane.
- Biological implications of the use of surfactants in medicines: and the biphasic effects of surfactants in biological systems
- Bioinspired polymer vesicles and membranes for biological and medical applications.
- The mechanism of water transport in membranes.
- Transfer of bioactive compounds into biomembrane systems and induction of their biological activities.
- Artificial biomembrane models using polymer giant vesicles: Morphological changes and enhanced permeability of the vesicles by incorporation of ionic segments into the polymer amphiphiles
- A comparative "in vitro" study of permeability with different synthetic and biological membranes.