Abstract
Lens fibers are coupled by communicating junctions, clusters of cell-to-cell channels composed of a 28-kD intrinsic membrane protein (MIP26). Evidence suggests that these and other cell-to-cell channels may close as a result of protein conformational change induced by activated calmodulin. To test the validity of this hypothesis, we have measured the intrinsic fluorescence emission and far-ultraviolet circular dichroism of the isolated components MIP26, calmodulin, and the MIP26-calmodulin complex, both in the absence and presence of Ca++, an uncoupling agent. MIP26 shows no change in either fluorescence emission (primarily tryptophan and a measure of aromatic constitutivity) or in its circular dichroism spectrum. Calmodulin exhibits a 32% increase in fluorescence emission intensity with constant emission wavelength, entirely tyrosine, and a 44% increase in alpha-helicity, changes previously described. The MIP26-calmodulin complex, on the other hand, displays fluorescence emission and circular dichroism spectra which are slightly different from the sum of the two single components, but shows marked differences in both spectra upon Ca++ addition. This indicates a change in conformation in one or both of the two components. Spectral changes include a 5-nm blue-shift, a 50% increase in tyrosine fluorescence emission, a 25% decrease in tryptophan fluorescence emission, and a 5% increase in the alpha-helicity of the complex. These changes also occur about an isosbestic point and are fully reversible. These data provide additional evidence that activated calmodulin may modulate gating of cell-to-cell channels by affecting channel protein.
MeSH Terms
Animals
Aquaporins
Calmodulin/pharmacology
Cattle
Circular Dichroism
Eye Proteins/metabolism
Intercellular Junctions/drug effects,metabolism,ultrastructure
Kinetics
Lens, Crystalline/drug effects,metabolism,ultrastructure
Membrane Glycoproteins
Membrane Proteins/metabolism
Protein Conformation
Spectrometry, Fluorescence
Spectrophotometry, Ultraviolet
Chemicals
Aquaporins
Calmodulin
Eye Proteins
Membrane Glycoproteins
Membrane Proteins
aquaporin 0
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Girsch S J
Peracchia C
References (21)
21 references, click to expand
-
Divalent cation binding properties of bovine brain Ca2+-dependent regulator protein.
J Biol Chem. 1977 Jun 25;252(12):4108-17
PMID: 193856
-
Liver gap junctions and lens fiber junctions: comparative analysis and calmodulin interaction.
Cold Spring Harb Symp Quant Biol. 1982;46 Pt 2:639-45
PMID: 6955103
-
The dependence of the molecular dynamics of calmodulin upon pH and ionic strength.
Arch Biochem Biophys. 1983 Apr 1;222(1):158-69
PMID: 6838218
-
Junctional intercellular communication: the cell-to-cell membrane channel.
Physiol Rev. 1981 Oct;61(4):829-913
PMID: 6270711
-
Two configurations of a channel-forming membrane protein.
Nature. 1984 Feb 16-22;307(5952):609-13
PMID: 6320017
-
Gap junction dynamics: reversible effects of divalent cations.
J Cell Biol. 1980 Dec;87(3 Pt 1):708-18
PMID: 7462321
-
Is calmodulin involved in the regulation of gap junction permeability?
Pflugers Arch. 1983 Oct;399(2):152-4
PMID: 6316253
-
Lens cell-to-cell channel protein: I. Self-assembly into liposomes and permeability regulation by calmodulin.
J Membr Biol. 1985;83(3):217-25
PMID: 3999121
-
Carbon dioxide reversibly abolishes ionic communication between cells of early amphibian embryo.
Nature. 1977 Nov 3;270(5632):56-7
PMID: 22047
-
Gap junctional conductance is a simple and sensitive function of intracellular pH.
Science. 1981 Feb 13;211(4483):712-5
PMID: 6779379
-
Calcium effects on gap junction structure and cell coupling.
Nature. 1978 Feb 16;271(5646):669-71
PMID: 625335
-
Permeability of the cell-to-cell membrane channels in mammalian cell juncton.
Science. 1979 Jul 27;205(4404):404-7
PMID: 377490
-
Calmodulin binds to chick lens gap junction protein in a calcium-independent manner.
Science. 1982 May 7;216(4546):642-4
PMID: 6280283
-
Gap junctional conductance: comparison of sensitivities to H and Ca ions.
Proc Natl Acad Sci U S A. 1982 Jan;79(2):441-5
PMID: 6281771
-
The connexon order in isolated lens gap junctions.
J Ultrastruct Res. 1980 Jul;72(1):27-38
PMID: 7411683
-
Intracellular pH in early Xenopus embryos: its effect on current flow between blastomeres.
J Physiol. 1980 Mar;300:489-504
PMID: 6770084
-
Gap junction dynamics: reversible effects of hydrogen ions.
J Cell Biol. 1980 Dec;87(3 Pt 1):719-27
PMID: 7462322
-
Communicating junctions and calmodulin: inhibition of electrical uncoupling in Xenopus embryo by calmidazolium.
J Membr Biol. 1984;81(1):49-58
PMID: 6492129
-
Fluorescence and conformational changes caused by proton binding to troponin C.
Biochem Biophys Res Commun. 1974 May 7;58(1):159-65
PMID: 4831064
-
Permeability of a cell junction and the local cytoplasmic free ionized calcium concentration: a study with aequorin.
J Membr Biol. 1976 Aug 27;28(1):87-119
PMID: 787527
-
Circular dichroism studies of native and chemically modified Ca2+-dependent protein modulator.
Can J Biochem. 1979 Mar;57(3):267-78
PMID: 436009