Abstract
Free full text
Identification and differential subcellular localization of the neuronal class C and class D L-type calcium channel alpha 1 subunits
Abstract
To identify and localize the protein products of genes encoding distinct L-type calcium channels in central neurons, anti-peptide antibodies specific for the class C and class D alpha 1 subunits were produced. Anti-CNC1 directed against class C immunoprecipitated 75% of the L-type channels solubilized from rat cerebral cortex and hippocampus. Anti-CND1 directed against class D immunoprecipitated only 20% of the L-type calcium channels. Immunoblotting revealed two size forms of the class C L-type alpha 1 subunit, LC1 and LC2, and two size forms of the class D L-type alpha 1 subunit, LD1 and LD2. The larger isoforms had apparent molecular masses of approximately 200-210 kD while the smaller isoforms were 180-190 kD, as estimated from electrophoresis in gels polymerized from 5% acrylamide. Immunocytochemical studies using CNC1 and CND1 antibodies revealed that the alpha 1 subunits of both L-type calcium channel subtypes are localized mainly in neuronal cell bodies and proximal dendrites. Relatively dense labeling was observed at the base of major dendrites in many neurons. Staining in more distal dendritic regions was faint or undetectable with CND1, while a more significant level of staining of distal dendrites was observed with CNC1, particularly in the dentate gyrus and the CA2 and CA3 areas of the hippocampus. Class C calcium channels were concentrated in clusters, while class D calcium channels were generally distributed in the cell surface membrane of cell bodies and proximal dendrites. Our results demonstrate multiple size forms and differential localization of two subtypes of L-type calcium channels in the cell bodies and proximal dendrites of central neurons. The differential localization and multiple size forms may allow these two channel subtypes to participate in distinct aspects of electrical signal integration and intracellular calcium signaling in neuronal cell bodies. The preferential localization of these calcium channels in cell bodies and proximal dendrites implies their involvement in regulation of calcium-dependent functions occurring in those cellular compartments such as protein phosphorylation, enzyme activity, and gene expression.
Full Text
Selected References
These references are in PubMed. This may not be the complete list of references from this article.
- Adams BA, Beam KG. Muscular dysgenesis in mice: a model system for studying excitation-contraction coupling. FASEB J. 1990 Jul;4(10):2809–2816. [Abstract] [Google Scholar]
- Ahlijanian MK, Westenbroek RE, Catterall WA. Subunit structure and localization of dihydropyridine-sensitive calcium channels in mammalian brain, spinal cord, and retina. Neuron. 1990 Jun;4(6):819–832. [Abstract] [Google Scholar]
- Aosaki T, Kasai H. Characterization of two kinds of high-voltage-activated Ca-channel currents in chick sensory neurons. Differential sensitivity to dihydropyridines and omega-conotoxin GVIA. Pflugers Arch. 1989 Jun;414(2):150–156. [Abstract] [Google Scholar]
- Bean BP. Classes of calcium channels in vertebrate cells. Annu Rev Physiol. 1989;51:367–384. [Abstract] [Google Scholar]
- Campbell KP, Leung AT, Sharp AH. The biochemistry and molecular biology of the dihydropyridine-sensitive calcium channel. Trends Neurosci. 1988 Oct;11(10):425–430. [Abstract] [Google Scholar]
- Catterall WA, Seagar MJ, Takahashi M. Molecular properties of dihydropyridine-sensitive calcium channels in skeletal muscle. J Biol Chem. 1988 Mar 15;263(8):3535–3538. [Abstract] [Google Scholar]
- Chin HM, Kozak CA, Kim HL, Mock B, McBride OW. A brain L-type calcium channel alpha 1 subunit gene (CCHL1A2) maps to mouse chromosome 14 and human chromosome 3. Genomics. 1991 Dec;11(4):914–919. [Abstract] [Google Scholar]
- Chin H, Smith MA, Kim HL, Kim H. Expression of dihydropyridine-sensitive brain calcium channels in the rat central nervous system. FEBS Lett. 1992 Mar 24;299(1):69–74. [Abstract] [Google Scholar]
- De Jongh KS, Merrick DK, Catterall WA. Subunits of purified calcium channels: a 212-kDa form of alpha 1 and partial amino acid sequence of a phosphorylation site of an independent beta subunit. Proc Natl Acad Sci U S A. 1989 Nov;86(21):8585–8589. [Europe PMC free article] [Abstract] [Google Scholar]
- De Jongh KS, Warner C, Catterall WA. Subunits of purified calcium channels. Alpha 2 and delta are encoded by the same gene. J Biol Chem. 1990 Sep 5;265(25):14738–14741. [Abstract] [Google Scholar]
- De Jongh KS, Warner C, Colvin AA, Catterall WA. Characterization of the two size forms of the alpha 1 subunit of skeletal muscle L-type calcium channels. Proc Natl Acad Sci U S A. 1991 Dec 1;88(23):10778–10782. [Europe PMC free article] [Abstract] [Google Scholar]
- Dubel SJ, Starr TV, Hell J, Ahlijanian MK, Enyeart JJ, Catterall WA, Snutch TP. Molecular cloning of the alpha-1 subunit of an omega-conotoxin-sensitive calcium channel. Proc Natl Acad Sci U S A. 1992 Jun 1;89(11):5058–5062. [Europe PMC free article] [Abstract] [Google Scholar]
- Ellis SB, Williams ME, Ways NR, Brenner R, Sharp AH, Leung AT, Campbell KP, McKenna E, Koch WJ, Hui A, et al. Sequence and expression of mRNAs encoding the alpha 1 and alpha 2 subunits of a DHP-sensitive calcium channel. Science. 1988 Sep 23;241(4873):1661–1664. [Abstract] [Google Scholar]
- Ellisman MH, Deerinck TJ, Ouyang Y, Beck CF, Tanksley SJ, Walton PD, Airey JA, Sutko JL. Identification and localization of ryanodine binding proteins in the avian central nervous system. Neuron. 1990 Aug;5(2):135–146. [Abstract] [Google Scholar]
- Fabiato A, Fabiato F. Calcium and cardiac excitation-contraction coupling. Annu Rev Physiol. 1979;41:473–484. [Abstract] [Google Scholar]
- Fleischer S, Inui M. Biochemistry and biophysics of excitation-contraction coupling. Annu Rev Biophys Biophys Chem. 1989;18:333–364. [Abstract] [Google Scholar]
- Glossmann H, Striessnig J. Molecular properties of calcium channels. Rev Physiol Biochem Pharmacol. 1990;114:1–105. [Abstract] [Google Scholar]
- Henkart M, Landis DM, Reese TS. Similarity of junctions between plasma membranes and endoplasmic reticulum in muscle and neurons. J Cell Biol. 1976 Aug;70(2 Pt 1):338–347. [Europe PMC free article] [Abstract] [Google Scholar]
- Hess P. Calcium channels in vertebrate cells. Annu Rev Neurosci. 1990;13:337–356. [Abstract] [Google Scholar]
- Hui A, Ellinor PT, Krizanova O, Wang JJ, Diebold RJ, Schwartz A. Molecular cloning of multiple subtypes of a novel rat brain isoform of the alpha 1 subunit of the voltage-dependent calcium channel. Neuron. 1991 Jul;7(1):35–44. [Abstract] [Google Scholar]
- Jay SD, Ellis SB, McCue AF, Williams ME, Vedvick TS, Harpold MM, Campbell KP. Primary structure of the gamma subunit of the DHP-sensitive calcium channel from skeletal muscle. Science. 1990 Apr 27;248(4954):490–492. [Abstract] [Google Scholar]
- Jay SD, Sharp AH, Kahl SD, Vedvick TS, Harpold MM, Campbell KP. Structural characterization of the dihydropyridine-sensitive calcium channel alpha 2-subunit and the associated delta peptides. J Biol Chem. 1991 Feb 15;266(5):3287–3293. [Abstract] [Google Scholar]
- Kennedy MB. Regulation of neuronal function by calcium. Trends Neurosci. 1989 Nov;12(11):417–420. [Abstract] [Google Scholar]
- Kim HL, Kim H, Lee P, King RG, Chin H. Rat brain expresses an alternatively spliced form of the dihydropyridine-sensitive L-type calcium channel alpha 2 subunit. Proc Natl Acad Sci U S A. 1992 Apr 15;89(8):3251–3255. [Europe PMC free article] [Abstract] [Google Scholar]
- Kuwajima G, Futatsugi A, Niinobe M, Nakanishi S, Mikoshiba K. Two types of ryanodine receptors in mouse brain: skeletal muscle type exclusively in Purkinje cells and cardiac muscle type in various neurons. Neuron. 1992 Dec;9(6):1133–1142. [Abstract] [Google Scholar]
- Laemmli UK. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature. 1970 Aug 15;227(5259):680–685. [Abstract] [Google Scholar]
- Lai Y, Seagar MJ, Takahashi M, Catterall WA. Cyclic AMP-dependent phosphorylation of two size forms of alpha 1 subunits of L-type calcium channels in rat skeletal muscle cells. J Biol Chem. 1990 Dec 5;265(34):20839–20848. [Abstract] [Google Scholar]
- Llinás R, Sugimori M, Lin JW, Cherksey B. Blocking and isolation of a calcium channel from neurons in mammals and cephalopods utilizing a toxin fraction (FTX) from funnel-web spider poison. Proc Natl Acad Sci U S A. 1989 Mar;86(5):1689–1693. [Europe PMC free article] [Abstract] [Google Scholar]
- McLean IW, Nakane PK. Periodate-lysine-paraformaldehyde fixative. A new fixation for immunoelectron microscopy. J Histochem Cytochem. 1974 Dec;22(12):1077–1083. [Abstract] [Google Scholar]
- McPherson PS, Campbell KP. Solubilization and biochemical characterization of the high affinity [3H]ryanodine receptor from rabbit brain membranes. J Biol Chem. 1990 Oct 25;265(30):18454–18460. [Abstract] [Google Scholar]
- Mikami A, Imoto K, Tanabe T, Niidome T, Mori Y, Takeshima H, Narumiya S, Numa S. Primary structure and functional expression of the cardiac dihydropyridine-sensitive calcium channel. Nature. 1989 Jul 20;340(6230):230–233. [Abstract] [Google Scholar]
- Miller RJ. Multiple calcium channels and neuronal function. Science. 1987 Jan 2;235(4784):46–52. [Abstract] [Google Scholar]
- Mintz IM, Venema VJ, Swiderek KM, Lee TD, Bean BP, Adams ME. P-type calcium channels blocked by the spider toxin omega-Aga-IVA. Nature. 1992 Feb 27;355(6363):827–829. [Abstract] [Google Scholar]
- Mintz IM, Adams ME, Bean BP. P-type calcium channels in rat central and peripheral neurons. Neuron. 1992 Jul;9(1):85–95. [Abstract] [Google Scholar]
- Morgan JI, Curran T. Role of ion flux in the control of c-fos expression. Nature. 1986 Aug 7;322(6079):552–555. [Abstract] [Google Scholar]
- Mori Y, Friedrich T, Kim MS, Mikami A, Nakai J, Ruth P, Bosse E, Hofmann F, Flockerzi V, Furuichi T, et al. Primary structure and functional expression from complementary DNA of a brain calcium channel. Nature. 1991 Apr 4;350(6317):398–402. [Abstract] [Google Scholar]
- Murphy TH, Worley PF, Baraban JM. L-type voltage-sensitive calcium channels mediate synaptic activation of immediate early genes. Neuron. 1991 Oct;7(4):625–635. [Abstract] [Google Scholar]
- Niidome T, Kim MS, Friedrich T, Mori Y. Molecular cloning and characterization of a novel calcium channel from rabbit brain. FEBS Lett. 1992 Aug 10;308(1):7–13. [Abstract] [Google Scholar]
- Padua RA, Wan WH, Nagy JI, Geiger JD. [3H]ryanodine binding sites in rat brain demonstrated by membrane binding and autoradiography. Brain Res. 1991 Feb 22;542(1):135–140. [Abstract] [Google Scholar]
- Perez-Reyes E, Kim HS, Lacerda AE, Horne W, Wei XY, Rampe D, Campbell KP, Brown AM, Birnbaumer L. Induction of calcium currents by the expression of the alpha 1-subunit of the dihydropyridine receptor from skeletal muscle. Nature. 1989 Jul 20;340(6230):233–236. [Abstract] [Google Scholar]
- Plummer MR, Logothetis DE, Hess P. Elementary properties and pharmacological sensitivities of calcium channels in mammalian peripheral neurons. Neuron. 1989 May;2(5):1453–1463. [Abstract] [Google Scholar]
- Regan LJ, Sah DW, Bean BP. Ca2+ channels in rat central and peripheral neurons: high-threshold current resistant to dihydropyridine blockers and omega-conotoxin. Neuron. 1991 Feb;6(2):269–280. [Abstract] [Google Scholar]
- ROSENBLUTH J. Subsurface cisterns and their relationship to the neuronal plasma membrane. J Cell Biol. 1962 Jun;13:405–421. [Europe PMC free article] [Abstract] [Google Scholar]
- Rotman EI, De Jongh KS, Florio V, Lai Y, Catterall WA. Specific phosphorylation of a COOH-terminal site on the full-length form of the alpha 1 subunit of the skeletal muscle calcium channel by cAMP-dependent protein kinase. J Biol Chem. 1992 Aug 15;267(23):16100–16105. [Abstract] [Google Scholar]
- Ruth P, Röhrkasten A, Biel M, Bosse E, Regulla S, Meyer HE, Flockerzi V, Hofmann F. Primary structure of the beta subunit of the DHP-sensitive calcium channel from skeletal muscle. Science. 1989 Sep 8;245(4922):1115–1118. [Abstract] [Google Scholar]
- Sakamoto J, Campbell KP. A monoclonal antibody to the beta subunit of the skeletal muscle dihydropyridine receptor immunoprecipitates the brain omega-conotoxin GVIA receptor. J Biol Chem. 1991 Oct 5;266(28):18914–18919. [Abstract] [Google Scholar]
- Seino S, Chen L, Seino M, Blondel O, Takeda J, Johnson JH, Bell GI. Cloning of the alpha 1 subunit of a voltage-dependent calcium channel expressed in pancreatic beta cells. Proc Natl Acad Sci U S A. 1992 Jan 15;89(2):584–588. [Europe PMC free article] [Abstract] [Google Scholar]
- Sheng M, Greenberg ME. The regulation and function of c-fos and other immediate early genes in the nervous system. Neuron. 1990 Apr;4(4):477–485. [Abstract] [Google Scholar]
- Siegesmund KA. The fine structure of subsurface cisterns. Anat Rec. 1968 Oct;162(2):187–196. [Abstract] [Google Scholar]
- Singer D, Biel M, Lotan I, Flockerzi V, Hofmann F, Dascal N. The roles of the subunits in the function of the calcium channel. Science. 1991 Sep 27;253(5027):1553–1557. [Abstract] [Google Scholar]
- Snutch TP, Leonard JP, Gilbert MM, Lester HA, Davidson N. Rat brain expresses a heterogeneous family of calcium channels. Proc Natl Acad Sci U S A. 1990 May;87(9):3391–3395. [Europe PMC free article] [Abstract] [Google Scholar]
- Snutch TP, Tomlinson WJ, Leonard JP, Gilbert MM. Distinct calcium channels are generated by alternative splicing and are differentially expressed in the mammalian CNS. Neuron. 1991 Jul;7(1):45–57. [Abstract] [Google Scholar]
- Soong TW, Stea A, Hodson CD, Dubel SJ, Vincent SR, Snutch TP. Structure and functional expression of a member of the low voltage-activated calcium channel family. Science. 1993 May 21;260(5111):1133–1136. [Abstract] [Google Scholar]
- Starr TV, Prystay W, Snutch TP. Primary structure of a calcium channel that is highly expressed in the rat cerebellum. Proc Natl Acad Sci U S A. 1991 Jul 1;88(13):5621–5625. [Europe PMC free article] [Abstract] [Google Scholar]
- Takahashi M, Catterall WA. Identification of an alpha subunit of dihydropyridine-sensitive brain calcium channels. Science. 1987 Apr 3;236(4797):88–91. [Abstract] [Google Scholar]
- Takahashi M, Seagar MJ, Jones JF, Reber BF, Catterall WA. Subunit structure of dihydropyridine-sensitive calcium channels from skeletal muscle. Proc Natl Acad Sci U S A. 1987 Aug;84(15):5478–5482. [Europe PMC free article] [Abstract] [Google Scholar]
- Tanabe T, Takeshima H, Mikami A, Flockerzi V, Takahashi H, Kangawa K, Kojima M, Matsuo H, Hirose T, Numa S. Primary structure of the receptor for calcium channel blockers from skeletal muscle. Nature. 1987 Jul 23;328(6128):313–318. [Abstract] [Google Scholar]
- Tsien RW, Ellinor PT, Horne WA. Molecular diversity of voltage-dependent Ca2+ channels. Trends Pharmacol Sci. 1991 Sep;12(9):349–354. [Abstract] [Google Scholar]
- Varadi G, Lory P, Schultz D, Varadi M, Schwartz A. Acceleration of activation and inactivation by the beta subunit of the skeletal muscle calcium channel. Nature. 1991 Jul 11;352(6331):159–162. [Abstract] [Google Scholar]
- Wei XY, Perez-Reyes E, Lacerda AE, Schuster G, Brown AM, Birnbaumer L. Heterologous regulation of the cardiac Ca2+ channel alpha 1 subunit by skeletal muscle beta and gamma subunits. Implications for the structure of cardiac L-type Ca2+ channels. J Biol Chem. 1991 Nov 15;266(32):21943–21947. [Abstract] [Google Scholar]
- Westenbroek RE, Ahlijanian MK, Catterall WA. Clustering of L-type Ca2+ channels at the base of major dendrites in hippocampal pyramidal neurons. Nature. 1990 Sep 20;347(6290):281–284. [Abstract] [Google Scholar]
- Westenbroek RE, Hell JW, Warner C, Dubel SJ, Snutch TP, Catterall WA. Biochemical properties and subcellular distribution of an N-type calcium channel alpha 1 subunit. Neuron. 1992 Dec;9(6):1099–1115. [Abstract] [Google Scholar]
- Williams ME, Feldman DH, McCue AF, Brenner R, Velicelebi G, Ellis SB, Harpold MM. Structure and functional expression of alpha 1, alpha 2, and beta subunits of a novel human neuronal calcium channel subtype. Neuron. 1992 Jan;8(1):71–84. [Abstract] [Google Scholar]
- Williams ME, Brust PF, Feldman DH, Patthi S, Simerson S, Maroufi A, McCue AF, Veliçelebi G, Ellis SB, Harpold MM. Structure and functional expression of an omega-conotoxin-sensitive human N-type calcium channel. Science. 1992 Jul 17;257(5068):389–395. [Abstract] [Google Scholar]
Articles from The Journal of Cell Biology are provided here courtesy of The Rockefeller University Press
Full text links
Read article at publisher's site: https://doi.org/10.1083/jcb.123.4.949
Read article for free, from open access legal sources, via Unpaywall: https://rupress.org/jcb/article-pdf/123/4/949/1260829/949.pdf
Citations & impact
Impact metrics
Citations of article over time
Alternative metrics
Discover the attention surrounding your research
https://www.altmetric.com/details/740422
Smart citations by scite.ai
Explore citation contexts and check if this article has been
supported or disputed.
https://scite.ai/reports/10.1083/jcb.123.4.949
Article citations
A biophysical minimal model to investigate age-related changes in CA1 pyramidal cell electrical activity.
PLoS One, 19(9):e0308809, 04 Sep 2024
Cited by: 0 articles | PMID: 39231135 | PMCID: PMC11373847
Optimization of an anatomically and electrically detailed rodent subthalamic nucleus neuron model.
J Neurophysiol, 132(1):136-146, 12 Jun 2024
Cited by: 0 articles | PMID: 38863430 | PMCID: PMC11383608
Nano-organization of synaptic calcium signaling.
Biochem Soc Trans, 52(3):1459-1471, 01 Jun 2024
Cited by: 0 articles | PMID: 38752834 | PMCID: PMC11346461
Review Free full text in Europe PMC
Structural bases of inhibitory mechanism of CaV1.2 channel inhibitors.
Nat Commun, 15(1):2772, 30 Mar 2024
Cited by: 1 article | PMID: 38555290 | PMCID: PMC10981686
A biochemical description of postsynaptic plasticity-with timescales ranging from milliseconds to seconds.
Proc Natl Acad Sci U S A, 121(7):e2311709121, 07 Feb 2024
Cited by: 1 article | PMID: 38324573 | PMCID: PMC10873618
Go to all (530) article citations
Similar Articles
To arrive at the top five similar articles we use a word-weighted algorithm to compare words from the Title and Abstract of each citation.
Immunohistochemical localization of voltage-gated calcium channels in substantia nigra dopamine neurons.
Eur J Neurosci, 13(4):757-762, 01 Feb 2001
Cited by: 36 articles | PMID: 11207810
Biochemical properties and subcellular distribution of the BI and rbA isoforms of alpha 1A subunits of brain calcium channels.
J Cell Biol, 134(2):511-528, 01 Jul 1996
Cited by: 57 articles | PMID: 8707834 | PMCID: PMC2120867
Biochemical properties and subcellular distribution of an N-type calcium channel alpha 1 subunit.
Neuron, 9(6):1099-1115, 01 Dec 1992
Cited by: 371 articles | PMID: 1334419
Funding
Funders who supported this work.
NINDS NIH HHS (2)
Grant ID: P01 NS20482
Grant ID: R01 NS22625