One hundred years of membrane permeability: does Overton still rule?
about
Understanding biocatalyst inhibition by carboxylic acidsMetabolomics and systems pharmacology: why and how to model the human metabolic network for drug discoveryStructured water layers adjacent to biological membranes.Quantitative visualization of passive transport across bilayer lipid membranes.A biophysical model for integration of electrical, osmotic, and pH regulation in the human bronchial epithelium.Imaging molecular transport across lipid bilayersCompound prioritization methods increase rates of chemical probe discovery in model organisms.Finding novel pharmaceuticals in the systems biology era using multiple effective drug targets, phenotypic screening and knowledge of transporters: where drug discovery went wrong and how to fix it.Challenges for blood-brain barrier (BBB) screening.An analysis of a 'community-driven' reconstruction of the human metabolic networkA novel mouse model of lipotoxic cardiomyopathy.Synthetic, biologically active amphiphilic peptidesDefined lipid analogues induce transient channels to facilitate drug-membrane traversal and circumvent cancer therapy resistanceNo facilitator required for membrane transport of hydrogen sulfide.Long-term adaptive evolution of Leuconostoc mesenteroides for enhancement of lactic acid tolerance and productionInfluence of the partitioning of osmolytes by the cytoplasm on the passive response of cells to osmotic loading.Resistances along the CO2 diffusion pathway inside leaves.110 years of the Meyer-Overton rule: predicting membrane permeability of gases and other small compounds.Everted gut sac model as a tool in pharmaceutical research: limitations and applications.Expression and regulation of drug transporters in vertebrate neutrophils.Role of Passive Diffusion, Transporters, and Membrane Trafficking-Mediated Processes in Cellular Drug Transport.Coordination and transport of alkali metal cations through phospholipid bilayer membranes by hydraphile channels.Cholesterol's decoupling effect on membrane partitioning and permeability revisited: is there anything beyond Fick's law of diffusion?A new model of weak acid permeation through membranes revisited: does Overton still rule?Real-time detection of viable microorganisms by intracellular phototautomerism.The human tumour suppressor gene SLC5A8 expresses a Na+-monocarboxylate cotransporter.Predicting apparent passive permeability of Caco-2 and MDCK cell-monolayers: A mechanistic model.The early modern kidney--nephrology in and about the nineteenth century (part 2).
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P2860
One hundred years of membrane permeability: does Overton still rule?
description
1999 nî lūn-bûn
@nan
1999 թուականի Դեկտեմբերին հրատարակուած գիտական յօդուած
@hyw
1999 թվականի դեկտեմբերին հրատարակված գիտական հոդված
@hy
1999年の論文
@ja
1999年論文
@yue
1999年論文
@zh-hant
1999年論文
@zh-hk
1999年論文
@zh-mo
1999年論文
@zh-tw
1999年论文
@wuu
name
One hundred years of membrane permeability: does Overton still rule?
@ast
One hundred years of membrane permeability: does Overton still rule?
@en
type
label
One hundred years of membrane permeability: does Overton still rule?
@ast
One hundred years of membrane permeability: does Overton still rule?
@en
prefLabel
One hundred years of membrane permeability: does Overton still rule?
@ast
One hundred years of membrane permeability: does Overton still rule?
@en
P2860
P356
P1433
P1476
One hundred years of membrane permeability: does Overton still rule?
@en
P2093
Al-Awqati Q
P2860
P2888
P304
P356
10.1038/70230
P577
1999-12-01T00:00:00Z
P5875
P6179
1037100806