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Biophys J. 1994 July; 67(1): 208–216.
doi: 10.1016/S0006-3495(94)80471-0.
PMCID: PMC1225351
Dual-wavelength ratiometric fluorescence measurement of the membrane dipole potential.
E. Gross, R. S. Bedlack, Jr, and L. M. Loew
Department of Physiology, University of Connecticut Health Center, Farmington 06030.
Abstract
The electrostatic potentials associated with cell membranes include the transmembrane potential (delta psi), the surface potential (psi s), and the dipole potential (psi D). psi D, which originates from oriented dipoles at the surface of the membrane, rises steeply just within the membrane to approximately 300 mV. Here we show that the potential-sensitive fluorescent dye 1-(3-sulfonatopropyl)-4-[beta[2-(di-n-octylamino)-6- naphthyl]vinyl]pyridinium betaine (di-8-ANEPPS) can be used to measure changes in the intramembrane dipole potential. Increasing the content of cholesterol and 6-ketocholestanol (KC), which are known to increase psi D in the bilayer, results in an increase in the ratio, R, of the dye fluorescence excited at 440 nm to that excited at 530 nm in a lipid vesicle suspension; increasing the content of phloretin, which lowers psi D, decreases R. Control experiments show that the ratio is insensitive to changes in the membrane's microviscosity. The lack of an isosbestic point in the fluorescence excitation and emission spectra of the dye at various concentrations of KC and phloretin argues against 1:1 chemical complexation between the dye and KC or phloretin. The macromolecular nonionic surfactant Pluronic F127 catalyzes the insertion of KC and phloretin into lipid vesicle and cell membranes, permitting convenient and controlled modulation of dipole potential. The sensitivity of R to psi D is 10-fold larger than to delta psi, whereas it is insensitive to changes in psi S. This can be understood in terms of the location of the dye chromophore with respect to the electric field profile associated with each of these potentials. These results suggest that the gradient in dipole potential occurs over a span s5 A, a short distance below the membrane-water interface. These approaches are easily adaptable to study the influence of dipole potentials on cell membrane physiology.
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  • Bangham AD, Mason W. The effect of some general anaesthetics on the surface potential of lipid monolayers. Br J Pharmacol. 1979 Jun;66(2):259–265. [PubMed]
  • Bechinger B, Seelig J. Interaction of electric dipoles with phospholipid head groups. A 2H and 31P NMR study of phloretin and phloretin analogues in phosphatidylcholine membranes. Biochemistry. 1991 Apr 23;30(16):3923–3929. [PubMed]
  • Bedlack RS, Jr, Wei M, Loew LM. Localized membrane depolarizations and localized calcium influx during electric field-guided neurite growth. Neuron. 1992 Sep;9(3):393–403. [PubMed]
  • Cohen LB, Salzberg BM. Optical measurement of membrane potential. Rev Physiol Biochem Pharmacol. 1978;83:35–88. [PubMed]
  • Dani JA. Ion-channel entrances influence permeation. Net charge, size, shape, and binding considerations. Biophys J. 1986 Mar;49(3):607–618. [PubMed]
  • Davila HV, Salzberg BM, Cohen LB, Waggoner AS. A large change in axon fluorescence that provides a promising method for measuring membrane potential. Nat New Biol. 1973 Jan 31;241(109):159–160. [PubMed]
  • Flewelling RF, Hubbell WL. The membrane dipole potential in a total membrane potential model. Applications to hydrophobic ion interactions with membranes. Biophys J. 1986 Feb;49(2):541–552. [PubMed]
  • Fluhler E, Burnham VG, Loew LM. Spectra, membrane binding, and potentiometric responses of new charge shift probes. Biochemistry. 1985 Oct 8;24(21):5749–5755. [PubMed]
  • Franklin JC, Cafiso DS. Internal electrostatic potentials in bilayers: measuring and controlling dipole potentials in lipid vesicles. Biophys J. 1993 Jul;65(1):289–299. [PubMed]
  • Franklin JC, Cafiso DS, Flewelling RF, Hubbell WL. Probes of membrane electrostatics: synthesis and voltage-dependent partitioning of negative hydrophobic ion spin labels in lipid vesicles. Biophys J. 1993 Mar;64(3):642–653. [PubMed]
  • Gabev E, Kasianowicz J, Abbott T, McLaughlin S. Binding of neomycin to phosphatidylinositol 4,5-bisphosphate (PIP2). Biochim Biophys Acta. 1989 Feb 13;979(1):105–112. [PubMed]
  • Gilson MK, Honig BH. Energetics of charge-charge interactions in proteins. Proteins. 1988;3(1):32–52. [PubMed]
  • Green WN, Andersen OS. Surface charges near the guanidinium neurotoxin binding site. Ann N Y Acad Sci. 1986;479:306–312. [PubMed]
  • Green WN, Weiss LB, Andersen OS. Batrachotoxin-modified sodium channels in planar lipid bilayers. Ion permeation and block. J Gen Physiol. 1987 Jun;89(6):841–872. [PubMed]
  • Gross D, Loew LM. Fluorescent indicators of membrane potential: microspectrofluorometry and imaging. Methods Cell Biol. 1989;30:193–218. [PubMed]
  • Gross E, Malik Z, Ehrenberg B. Effects of membrane physical parameters on hematoporphyrin-derivative binding to liposomes: a spectroscopic study. J Membr Biol. 1987;97(3):215–221. [PubMed]
  • Haydon DA, Elliott JR. Surface potential changes in lipid monolayers and the 'cut-off' in anaesthetic effects of N-alkanols. Biochim Biophys Acta. 1986 Dec 16;863(2):337–340. [PubMed]
  • Honig BH, Hubbell WL, Flewelling RF. Electrostatic interactions in membranes and proteins. Annu Rev Biophys Biophys Chem. 1986;15:163–193. [PubMed]
  • Hwang JK, Warshel A. Why ion pair reversal by protein engineering is unlikely to succeed. Nature. 1988 Jul 21;334(6179):270–272. [PubMed]
  • Jordan PC. How pore mouth charge distributions alter the permeability of transmembrane ionic channels. Biophys J. 1987 Feb;51(2):297–311. [PubMed]
  • Kell MJ, DeFelice LJ. Surface charge near the cardiac inward-rectifier channel measured from single-channel conductance. J Membr Biol. 1988 Apr;102(1):1–10. [PubMed]
  • Levine YK, Wilkins MH. Structure of oriented lipid bilayers. Nat New Biol. 1971 Mar 17;230(11):69–72. [PubMed]
  • Loew LM, Bonneville GW, Surow J. Charge shift optical probes of membrane potential. Theory. Biochemistry. 1978 Sep 19;17(19):4065–4071. [PubMed]
  • Loew LM, Cohen LB, Dix J, Fluhler EN, Montana V, Salama G, Wu JY. A naphthyl analog of the aminostyryl pyridinium class of potentiometric membrane dyes shows consistent sensitivity in a variety of tissue, cell, and model membrane preparations. J Membr Biol. 1992 Oct;130(1):1–10. [PubMed]
  • Loew LM, Cohen LB, Salzberg BM, Obaid AL, Bezanilla F. Charge-shift probes of membrane potential. Characterization of aminostyrylpyridinium dyes on the squid giant axon. Biophys J. 1985 Jan;47(1):71–77. [PubMed]
  • Loew LM, Scully S, Simpson L, Waggoner AS. Evidence for a charge-shift electrochromic mechanism in a probe of membrane potential. Nature. 1979 Oct 11;281(5731):497–499. [PubMed]
  • Loew LM, Simpson LL. Charge-shift probes of membrane potential: a probable electrochromic mechanism for p-aminostyrylpyridinium probes on a hemispherical lipid bilayer. Biophys J. 1981 Jun;34(3):353–365. [PubMed]
  • McLaughlin S. The electrostatic properties of membranes. Annu Rev Biophys Biophys Chem. 1989;18:113–136. [PubMed]
  • Moczydlowski E, Alvarez O, Vergara C, Latorre R. Effect of phospholipid surface charge on the conductance and gating of a Ca2+-activated K+ channel in planar lipid bilayers. J Membr Biol. 1985;83(3):273–282. [PubMed]
  • Montana V, Farkas DL, Loew LM. Dual-wavelength ratiometric fluorescence measurements of membrane potential. Biochemistry. 1989 May 30;28(11):4536–4539. [PubMed]
  • Peitzsch RM, McLaughlin S. Binding of acylated peptides and fatty acids to phospholipid vesicles: pertinence to myristoylated proteins. Biochemistry. 1993 Oct 5;32(39):10436–10443. [PubMed]
  • Perutz MF. Electrostatic effects in proteins. Science. 1978 Sep 29;201(4362):1187–1191. [PubMed]
  • Shinitzky M, Inbar M. Microviscosity parameters and protein mobility in biological membranes. Biochim Biophys Acta. 1976 Apr 16;433(1):133–149. [PubMed]
  • Smith-Maxwell C, Begenisich T. Guanidinium analogues as probes of the squid axon sodium pore. Evidence for internal surface charges. J Gen Physiol. 1987 Sep;90(3):361–374. [PubMed]
  • Szabo G. Dual mechanism for the action of cholesterol on membrane permeability. Nature. 1974 Nov 1;252(5478):47–49. [PubMed]
  • Vergara Cecilia, Moczydlowski Edward, Latorre Ramon. Conduction, Blockade and Gating in a Ca -activated K Channel Incorporated into Planar Lipid Bilayers. Biophys J. 1984 Jan;45(1):73–76. [PubMed]
  • Zheng C, Vanderkooi G. Molecular origin of the internal dipole potential in lipid bilayers: calculation of the electrostatic potential. Biophys J. 1992 Oct;63(4):935–941. [PubMed]