Literature DB >> 2291945

Adsorption to dipalmitoylphosphatidylcholine membranes in gel and fluid state: pentachlorophenolate, dipicrylamine, and tetraphenylborate.

P Smejtek1, S R Wang.   

Abstract

UNLABELLED: We measured the dependence of electrophoretic mobility of dipalmitoylphosphatidylcholine (DPPC) vesicles on the aqueous concentration of negatively charged ions of pentachlorophenol (PCP), dipicrylamine (DPA), and tetraphenylborate (TPhB). The objective was to determine how the physical state of hydrocarbon chains of lipids affects adsorption of lipophilic ions. The studies were done at 25 and 42 degrees C to determine adsorption properties of DPPC membrane in the gel and fluid state, respectively. From the analysis of zeta-potential isotherms in terms of Langmuir-Stern-Grahame model we obtained the association constant, K, the area of the adsorption site, Ps, and the linear partition coefficient, beta.
RESULTS: K, (x 10(4)M-1): K(gel): PCP (0.49 +/- 0.28), DPA (25 +/- 10), TPhB (31 +/- 10); K(fluid): PCP (4.5 +/- 0.9), DPA (74 +/- 21), TPhB (59 +/- 14); Ps, (nm2): Ps(gel): PCP (5.4 +/- 2.3), DPA (5.9 +/- 2), TPhB (5.0 +/- 1.7); Ps(fluid): PCP (4.5 +/- 0.4), DPA (5.2 +/- 0.4), TPhB (4.1 +/- 0.2); beta, (x 10(-5) m): beta(gel): PCP (0.15 +/- 0.09), DPA (7.1 +/- 0.3), TPhB (10 +/- 7); beta(fluid): PCP (1.7 +/- 0.3), DPA (24 +/- 7), TPhB (24 +/- 6). It was interesting to find that the adsorption site area for PCP, DPA, and TPhB were very similar for both the gel and fluid membranes; also, the areas were independent of the size and molecular structure of the adsorbing species. Using a simple discrete charge model the adsorption site areas for all species were consistent with a dielectric constant of 8-10 and with an ion adsorption depth of 0.4-0.6 nm below the water/dielectric interface. The delta delta G0 = delta G0(gel) - delta G0(fluid) was found to be about twice as large for PCP than for DPA and TPhB. This indicates that PCP will be significantly more adsorbed in the fluid and disordered regions of biomembranes, whereas the distribution of DPA and TPhB is expected to be relatively more even.

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Year:  1990        PMID: 2291945      PMCID: PMC1281072          DOI: 10.1016/S0006-3495(90)82468-1

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  29 in total

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Authors:  R F Flewelling; W L Hubbell
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2.  The membrane dipole potential in a total membrane potential model. Applications to hydrophobic ion interactions with membranes.

Authors:  R F Flewelling; W L Hubbell
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3.  Perturbations of membrane structure by optical probes: I. Location and structural sensitivity of merocyanine 540 bound to phospholipid membranes.

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4.  Ion repulsion within membranes.

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5.  Lipid conformation in model membranes and biological membranes.

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6.  A virial expansion for discrete charges buried in a membrane.

Authors:  R Y Tsien
Journal:  Biophys J       Date:  1978-11       Impact factor: 4.033

7.  Electrical conductivity in lipid bilayer membranes induced by pentachlorophenol.

Authors:  P Smejtek; K Hsu; W H Perman
Journal:  Biophys J       Date:  1976-04       Impact factor: 4.033

8.  On the position of the hydro-phobic/philic boundary in lipid bilayers.

Authors:  J R Scherer
Journal:  Biophys J       Date:  1989-05       Impact factor: 4.033

9.  Interactions between neutral phospholipid bilayer membranes.

Authors:  L J Lis; M McAlister; N Fuller; R P Rand; V A Parsegian
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10.  Modification of ion transport in lipid bilayer membranes in the presence of 2,4-dichlorophenoxyacetic acid. II. Suppression of tetraphenylborate conductance and changes of interfacial potentials.

Authors:  P Smejtek; M Paulis-Illangasekare
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  11 in total

1.  Phospholipid-subclass-specific partitioning of lipophilic ions in membrane-water systems.

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2.  A combined patch-clamp and electrorotation study of the voltage- and frequency-dependent membrane capacitance caused by structurally dissimilar lipophilic anions.

Authors:  D Zimmermann; M Kiesel; U Terpitz; A Zhou; R Reuss; J Kraus; W A Schenk; E Bamberg; V L Sukhorukov
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3.  Sterically stabilized liposomes. Reduction in electrophoretic mobility but not electrostatic surface potential.

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4.  The interaction of polyphenols with bilayers: conditions for increasing bilayer adhesion.

Authors:  N W Huh; N A Porter; T J McIntosh; S A Simon
Journal:  Biophys J       Date:  1996-12       Impact factor: 4.033

5.  Adsorption of ruthenium red to phospholipid membranes.

Authors:  D Voelker; P Smejtek
Journal:  Biophys J       Date:  1996-02       Impact factor: 4.033

6.  Partitioning of tetrachlorophenol into lipid bilayers and sarcoplasmic reticulum: effect of length of acyl chains, carbonyl group of lipids and biomembrane structure.

Authors:  R C Word; P Smejtek
Journal:  J Membr Biol       Date:  2005-02       Impact factor: 1.843

7.  Distribution of hydrophobic ionizable xenobiotics between water and lipid membranes: pentachlorophenol and pentachlorophenate. A comparison with octanol-water partition.

Authors:  P Smejtek; S Wang
Journal:  Arch Environ Contam Toxicol       Date:  1993-09       Impact factor: 2.804

8.  Domains and anomalous adsorption isotherms of dipalmitoylphosphatidylcholine membranes and lipophilic ions: pentachlorophenolate, tetraphenylborate, and dipicrylamine.

Authors:  P Smejtek; S Wang
Journal:  Biophys J       Date:  1991-05       Impact factor: 4.033

9.  Increased adhesion between neutral lipid bilayers: interbilayer bridges formed by tannic acid.

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Journal:  Biophys J       Date:  1994-06       Impact factor: 4.033

10.  Voltage sensitivity of the fluorescent probe RH421 in a model membrane system.

Authors:  R J Clarke; A Zouni; J F Holzwarth
Journal:  Biophys J       Date:  1995-04       Impact factor: 4.033

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