Literature DB >> 6885812

Membrane potential and surface potential in mitochondria. Fluorescence and binding of 1-anilinonaphthalene-8-sulfonate.

D E Robertson, H Rottenberg.   

Abstract

The effects of surface potential and transmembrane potential on the binding and fluorescence of 1-anilinonaphthalene-8-sulfonate (ANS) in suspensions of rat liver mitochondria was investigated. The binding of ANS is characterized by two classes of binding site: a high affinity (Kd = 10-50 microM), low capacity (n = 3-8 nmol/mg of protein) class in which bound ANS fluoresces strongly, and a low affinity (greater than 500 microM), high capacity (greater than 50 nmol/mg of protein) class with little fluorescence. The dissociation constant, Kd, of the high affinity site strongly depends on the surface potential of the external surface of the inner mitochondrial membrane. Hence, the binding and fluorescence of ANS can be used to estimate the surface potential. The dependence of ANS binding on the medium salt concentration is compatible with the Gouy-Chapman theory and allows accurate determination of surface potential and surface charge. The generation of transmembrane potential, either by oxidizable substrates, ATP, or potassium gradient leads to a decrease in the fluorescence. This decrease is the result of reduced ANS binding. However, the external surface potential as estimated from the charge screening effect of salt solutions is unchanged in energized membranes. The extent of decreased fluorescence correlates reasonably well with the magnitude of the transmembrane potential. The potential-induced quenching depends on pre-equilibration of ANS with the mitochondria, suggesting that the response is due to extrusion of ANS from the mitochondrial matrix. These findings do not support the suggestion that ANS quenching in energized mitochondria is due to an increase in the negative surface charge of the cytosolic surface of the inner membrane. The results are compatible with the suggestion that the response to energization is largely due to the formation of delta psi. However, because of the complex nature of the ANS response, it is concluded that neither the magnitude of surface potential nor the magnitude of membrane potential can be determined from the ANS response in energized mitochondria.

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Year:  1983        PMID: 6885812

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  10 in total

1.  Model for the electrolytic environment and electrostatic properties of biomembranes.

Authors:  D E Amory; J E Dufey
Journal:  J Bioenerg Biomembr       Date:  1985-06       Impact factor: 2.945

2.  Effect of phloretin on the binding of 1-anilino-8-naphtalene sulfonate (ANS) to 1,2-Dimyristoyl-sn-glycero-3-phosphocoline (DMPC) vesicles in the gel and liquid-crystalline state.

Authors:  Andrea C Cutró; Guillermo Montich; Oscar A Roveri
Journal:  J Membr Biol       Date:  2014-11-08       Impact factor: 1.843

3.  Effect of surface-potential modulators on the opening of lipid pores in liposomal and mitochondrial inner membranes induced by palmitate and calcium ions.

Authors:  Konstantin N Belosludtsev; Natalia V Belosludtseva; Alexey V Agafonov; Nikita V Penkov; Victor N Samartsev; John J Lemasters; Galina D Mironova
Journal:  Biochim Biophys Acta       Date:  2015-05-23

4.  Structure-activity relationships of mitochondria-targeted tetrapeptide pharmacological compounds.

Authors:  Wayne Mitchell; Jeffrey D Tamucci; Emery L Ng; Shaoyi Liu; Alexander V Birk; Hazel H Szeto; Eric R May; Andrei T Alexandrescu; Nathan N Alder
Journal:  Elife       Date:  2022-08-01       Impact factor: 8.713

5.  Effect of carbonylcyanide-4-(trifluoromethoxy)phenylhydrazone (FCCP) on the interaction of 1-anilino-8-naphthalene sulfonate (ANS) with phosphatidylcholine liposomes.

Authors:  Andrea C Cutró; Guillermo G Montich; Oscar A Roveri
Journal:  J Bioenerg Biomembr       Date:  2014-02-26       Impact factor: 2.945

6.  Membrane permeability transition promoted by phosphate enhances 1-anilino-8-naphthalene sulfonate fluorescence in calcium-loaded liver mitochondria.

Authors:  V T Maddaiah; U Kumbar
Journal:  J Bioenerg Biomembr       Date:  1993-08       Impact factor: 2.945

7.  Response of the electrochromic dye, merocyanine 540, to membrane potential in rat liver mitochondria.

Authors:  A Kalenak; R J McKenzie; T E Conover
Journal:  J Membr Biol       Date:  1991-07       Impact factor: 1.843

8.  Membrane potential and surface potential in mitochondria: uptake and binding of lipophilic cations.

Authors:  H Rottenberg
Journal:  J Membr Biol       Date:  1984       Impact factor: 1.843

9.  Computational Modeling of In Vitro Swelling of Mitochondria: A Biophysical Approach.

Authors:  Vladimir I Makarov; Igor Khmelinskii; Sabzali Javadov
Journal:  Molecules       Date:  2018-03-28       Impact factor: 4.411

10.  Impact of ciprofloxacin and chloramphenicol on the lipid bilayer of Staphylococcus aureus: changes in membrane potential.

Authors:  Paulina L Páez; María C Becerra; Inés Albesa
Journal:  Biomed Res Int       Date:  2013-05-23       Impact factor: 3.411

  10 in total

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