Home LiteratureArticle Details
PMID: 1646660 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Diffusion around a cardiac calcium channel and the role of surface bound calcium.

Biophysical journal ·Vol. 59 ·No. 3 ·1991-03-00 ·Pages 703-21

Bers DM, Peskoff A

Abstract

The diffusion of Ca as it converges to the external mouth of a Ca channel is examined. Diffusional limitation on Ca ions entering Ca channels during current flow, cause local extracellular Ca depletions. Such extracellular Ca depletions have been reported in cardiac muscle. The cardiac sarcolemma has a large number of low-affinity Ca binding sites that can buffer these local Ca depletions. For a hemisphere of extracellular space (of radius less than 0.33 microns) centered on the external mouth of a Ca channel the amount of Ca bound at the membrane surface exceeds that which is free within the associated hemisphere. The ratio of bound Ca/free Ca increases as r decreases, such that the [Ca] nearest the Ca channel is the most strongly buffered by sarcolemmal bound Ca. It is demonstrated that Ca ions coming from these sarcolemmal Ca binding sites contribute quantitatively to the integrated Ca current. The electric field generated by the local depletion of Ca near the channel mouth has little impact on the extent of Ca depletion, but if an additional electric field exists at the mouth of the channel, Ca depletion can be significantly altered. Other low-affinity Ca binding sites in the interstitium may also contribute to the buffering of extracellular Ca. The complex geometry of the extracellular space in cardiac muscle (e.g., transverse tubules and restrictions of extracellular space between cells) increases both the predicted Ca depletions (in the absence of binding) and the bound/free ratio. Thus, the impact of this surface Ca binding is greatly increased. By considering arrays of Ca channels in transverse tubules or in parallel planes (e.g., membranes of neighboring cells), extracellular Ca depletions are predicted which agree with those measured experimentally. Membrane Ca binding may also be expected to buffer increases in [Ca] around the inner mouth of Ca channels. It is demonstrated that in the absence of other intracellular systems most of the Ca entering the cell via Ca channels might be expected to be bound to the inner sarcolemmal surface. It is concluded that surface Ca binding may have a substantial impact on the processes of extracellular Ca depletion (and intracellular Ca accumulation).

MeSH Terms
Animals Binding Sites Biophysical Phenomena Biophysics Calcium/metabolism Calcium Channels/metabolism Diffusion Extracellular Space/metabolism In Vitro Techniques Intracellular Fluid/metabolism Kinetics Models, Biological Myocardium/metabolism Rabbits Sarcolemma/metabolism
Chemicals
Calcium Channels Calcium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Bers D M
Division of Biomedical Science, University of California, Riverside 92521.
Peskoff A
References (41)
41 references, click to expand
  1. Movements of labelled calcium in squid giant axons.
    J Physiol. 1957 Sep 30;138(2):253-81 PMID: 13526124
  2. Beta-adrenergic increase in the calcium conductance of cardiac myocytes studied with the patch clamp.
    Pflugers Arch. 1984 Jun;401(2):111-8 PMID: 6089094
  3. Phospholipid asymmetry in cardiac sarcolemma. Analysis of intact cells and 'gas-dissected' membranes.
    Biochim Biophys Acta. 1988 Aug 18;943(2):256-66 PMID: 3401480
  4. Calcium at the surface of cardiac plasma membrane vesicles: cation binding, surface charge screening, and Na-Ca exchange.
    J Membr Biol. 1985;85(3):251-61 PMID: 4032459
  5. Calcium binding to cardiac sarcolemmal vesicles: potential role as a modifier of contraction.
    Am J Physiol. 1986 Dec;251(6 Pt 1):C861-71 PMID: 3024498
  6. Ultrastructure and calcium exchange of the sarcolemma, sarcoplasmic reticulum and mitochondria of the myocardium.
    Pharmacol Ther. 1982;16(3):331-76 PMID: 6291075
  7. Variation of intracellular Ca2+ following Ca2+ current in heart. A theoretical study of ionic diffusion inside a cylindrical cell.
    Biophys J. 1983 Mar;41(3):341-8 PMID: 6838972
  8. Early transient depletion of extracellular Ca during individual cardiac muscle contractions.
    Am J Physiol. 1983 Mar;244(3):H462-8 PMID: 6829789
  9. Cardiac contractility and sarcolemmal calcium binding in several cardiac muscle preparations.
    Am J Physiol. 1981 Apr;240(4):H576-83 PMID: 6971579
  10. The role of phospholipids in the Ca2+ binding of isolated cardiac sarcolemma.
    J Mol Cell Cardiol. 1980 Nov;12(11):1159-73 PMID: 7441765
  11. Binding of Ca2+ and Na+ to sarcolemmal membranes: relation to control of myocardial contractility.
    Am J Physiol. 1980 Mar;238(3):H373-8 PMID: 7369383
  12. Quantitative ultrastructural analysis in cardiac membrane physiology.
    Am J Physiol. 1978 Nov;235(5):C147-58 PMID: 364994
  13. Uncoupling cation effects on cardiac contractility and sarcolemmal Ca2+ binding.
    Am J Physiol. 1979 Sep;237(3):H332-41 PMID: 474771
  14. Calcium diffusion in transient and steady states in muscle.
    Biophys J. 1977 Oct;20(1):113-36 PMID: 901900
  15. Localization of red cell membrane constituents.
    Biochim Biophys Acta. 1973 Sep 10;300(2):159-82 PMID: 4276919
  16. The myocardial interstitium: its structure and its role in ionic exchange.
    J Cell Biol. 1974 Mar;60(3):586-601 PMID: 4824287
  17. Sterological measurements of cardiac ultrastructures implicated in excitation-contraction coupling.
    Proc Natl Acad Sci U S A. 1971 Jul;68(7):1465-6 PMID: 5283936
  18. Membrane currents and tension in cat ventricular muscle treated with cardiac glycosides.
    Circ Res. 1975 Nov;37(5):674-82 PMID: 1192564
  19. Ionic mobility in muscle cells.
    Science. 1969 Dec 5;166(3910):1297-8 PMID: 5350329
  20. Electrodiffusion of ions approaching the mouth of a conducting membrane channel.
    Biophys J. 1988 Jun;53(6):863-75 PMID: 2456103
  21. Effects of double-layer polarization on ion transport.
    Biophys J. 1987 Jan;51(1):27-36 PMID: 2432953
  22. Contraction in voltage-clamped, internally perfused single heart cells.
    J Gen Physiol. 1986 Oct;88(4):475-505 PMID: 2431095
  23. Voltage-dependent properties of macroscopic and elementary calcium channel currents in guinea pig ventricular myocytes.
    Pflugers Arch. 1986 May;406(5):437-48 PMID: 2423956
  24. Insulation of the conduction pathway of muscle transverse tubule calcium channels from the surface charge of bilayer phospholipid.
    J Gen Physiol. 1986 Jun;87(6):933-53 PMID: 2425043
  25. The Ca channel in skeletal muscle is a large pore.
    Proc Natl Acad Sci U S A. 1985 Oct;82(20):7149-53 PMID: 2413461
  26. Ca influx and sarcoplasmic reticulum Ca release in cardiac muscle activation during postrest recovery.
    Am J Physiol. 1985 Mar;248(3 Pt 2):H366-81 PMID: 2579587
  27. Rat vs. rabbit ventricle: Ca flux and intracellular Na assessed by ion-selective microelectrodes.
    Am J Physiol. 1989 Apr;256(4 Pt 1):C813-22 PMID: 2705515
  28. Different modes of Ca channel gating behaviour favoured by dihydropyridine Ca agonists and antagonists.
    Nature. 1984 Oct 11-17;311(5986):538-44 PMID: 6207437
  29. Optical measurements of extracellular calcium depletion during a single heartbeat.
    Science. 1984 Oct 12;226(4671):174-7 PMID: 6091269
  30. Mechanisms contributing to the cardiac inotropic effect of Na pump inhibition and reduction of extracellular Na.
    J Gen Physiol. 1987 Oct;90(4):479-504 PMID: 3681259
  31. Extracellular calcium transients at single excitations in rabbit atrium measured with tetramethylmurexide.
    J Gen Physiol. 1986 May;87(5):707-35 PMID: 3723105
  32. Extracellular calcium ion depletion in frog cardiac ventricular muscle.
    Biophys J. 1985 Jul;48(1):33-45 PMID: 3874655
  33. The rate of diffusion of Ca2+ and Ba2+ in a nerve cell body.
    Biophys J. 1985 May;47(5):735-8 PMID: 4016193
  34. Permeation in the dihydropyridine-sensitive calcium channel. Multi-ion occupancy but no anomalous mole-fraction effect between Ba2+ and Ca2+.
    J Gen Physiol. 1990 May;95(5):911-39 PMID: 2163433
  35. Calcium depletion in frog muscle tubules: the decline of calcium current under maintained depolarization.
    J Physiol. 1981 Mar;312:177-207 PMID: 6267262
  36. Sodium and calcium channels in bovine chromaffin cells.
    J Physiol. 1982 Oct;331:599-635 PMID: 6296372
  37. Ion movement through gramicidin A channels. Interfacial polarization effects on single-channel current measurements.
    Biophys J. 1983 Feb;41(2):135-46 PMID: 6188501
  38. Ca2+ channel modulation by 8-bromocyclic AMP in cultured heart cells.
    Nature. 1983 Aug 4-10;304(5925):462-4 PMID: 6308462
  39. Calcium channels: mechanisms of beta-adrenergic modulation and ion permeation.
    Cold Spring Harb Symp Quant Biol. 1983;48 Pt 1:201-12 PMID: 6327154
  40. Beta-adrenergic modulation of calcium channels in frog ventricular heart cells.
    Nature. 1984 Jan 26-Feb 1;307(5949):371-5 PMID: 6320002
  41. The rate of action of calcium ions on the contraction of the heart.
    J Physiol. 1957 Oct 30;138(3):506-15 PMID: 13481890
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
1991-03-00
Pages
703-21
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1281233
Subset
IM
Grants
NHLBI NIH HHS · HL01526 · United States
NHLBI NIH HHS · HL30077 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com