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PMID: 7131536 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Role of the bilayer in the shape of the isolated erythrocyte membrane.

The Journal of membrane biology ·Vol. 69 ·No. 2 ·1982-00-00 ·Pages 113-23

Lange Y, Gough A, Steck TL

Abstract

The determinants of cell shape were explored in a study of the crenation (spiculation) of the isolated erythrocyte membrane. Standard ghosts prepared in 5 mM NaPi (pH 8) were plump, dimpled disks even when prepared from echinocytic (spiculated) red cells. These ghosts became crenated in the presence of isotonic saline, millimolar levels of divalent cations, 1 mM 2,4-dinitrophenol or 0.1 mM lysolecithin. Crenation was suppressed in ghosts generated under conditions of minimal osmotic stress, in ghosts from red cells partially depleted of cholesterol, and, paradoxically, in ghosts from red cells crenated by lysolecithin. The susceptibility of ghosts to crenation was lost with time; this process was potentiated by elevated temperature, low ionic strength, and traces of detergents or chlorpromazine. In that ghost shape was influenced by a variety of amphipaths, our results favor the premise that the bilayer and not the subjacent protein reticulum drives ghost crenation. The data also suggest that vigorous osmotic hemolysis induces a redistribution of lipids between the two leaflets of the bilayer which affects membrane contour through a bilayer couple mechanism. Subsequent relaxation of that metastable distribution could account for the observed loss of crenatability.

MeSH Terms
Chlorpromazine/pharmacology Erythrocyte Membrane/drug effects,ultrastructure Erythrocytes/ultrastructure Humans Lipid Bilayers Lysophosphatidylcholines/pharmacology Membrane Lipids/blood Osmolar Concentration Sodium Chloride/pharmacology
Chemicals
Lipid Bilayers Lysophosphatidylcholines Membrane Lipids Sodium Chloride Chlorpromazine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Lange Y
Gough A
Steck T L
References (35)
35 references, click to expand
  1. The solubility of amphipathic molecules in biological membranes and lipid bilayers and its implications for membrane structure.
    Biochemistry. 1981 Feb 17;20(4):808-18 PMID: 7213615
  2. Interaction of cytoskeletal proteins on the human erythrocyte membrane.
    Cell. 1981 Apr;24(1):24-32 PMID: 6453651
  3. Electrophoretic analysis of the major polypeptides of the human erythrocyte membrane.
    Biochemistry. 1971 Jun 22;10(13):2606-17 PMID: 4326772
  4. The molecular basis for membrane - cytoskeleton association in human erythrocytes.
    J Cell Biochem. 1982;18(1):49-65 PMID: 6461664
  5. Role of the reticulum in the stability and shape of the isolated human erythrocyte membrane.
    J Cell Biol. 1982 Mar;92(3):714-21 PMID: 7085754
  6. Red blood cell shapes as explained on the basis of curvature elasticity.
    Biophys J. 1976 Aug;16(8):861-8 PMID: 938726
  7. Control of red cell deformability and shape.
    Curr Top Hematol. 1978;1:71-125 PMID: 400531
  8. Phosphatidyl-ethanolamine: differential labelling in intact cells and cell ghosts of human erythrocytes by a membrane-impermeable reagent.
    J Mol Biol. 1972 Nov 28;71(3):523-8 PMID: 4648341
  9. The effect of cholesterol and other intercalated amphipaths on the contour and stability of the isolated red cell membrane.
    J Biol Chem. 1980 Oct 10;255(19):9331-7 PMID: 7410427
  10. Spectrin-actin membrane skeleton of normal and abnormal red blood cells.
    Semin Hematol. 1979 Jan;16(1):21-51 PMID: 370983
  11. Biological membranes as bilayer couples. A molecular mechanism of drug-erythrocyte interactions.
    Proc Natl Acad Sci U S A. 1974 Nov;71(11):4457-61 PMID: 4530994
  12. Shape and stability changes in human erythrocyte membranes induced by metal cations.
    Biochim Biophys Acta. 1978 Sep 22;512(2):270-83 PMID: 708726
  13. Bilayer balance and regulation of red cell shape changes.
    J Supramol Struct. 1978;9(3):453-8 PMID: 748684
  14. The minimum energy of bending as a possible explanation of the biconcave shape of the human red blood cell.
    J Theor Biol. 1970 Jan;26(1):61-81 PMID: 5411112
  15. Bending resistance and chemically induced moments in membrane bilayers.
    Biophys J. 1974 Dec;14(12):923-31 PMID: 4429770
  16. Dynamics of the holes in human erythrocyte membrane ghosts.
    J Biol Chem. 1982 Oct 10;257(19):11660-6 PMID: 6811585
  17. Shape and volume changes in erythrocyte ghosts and spectrin-actin networks.
    J Cell Biol. 1980 Aug;86(2):371-6 PMID: 6893198
  18. Transformation and restoration of biconcave shape of human erythrocytes induced by amphiphilic agents and changes of ionic environment.
    Biochim Biophys Acta. 1968 Dec 10;163(4):494-500 PMID: 4387277
  19. Distribution of shape-changing compounds across the red cell membrane.
    Biochemistry. 1980 Jul 22;19(15):3414-22 PMID: 7407050
  20. A solid-liquid composite model of the red cell membrane.
    J Membr Biol. 1977 Jan 28;30(4):351-62 PMID: 839527
  21. Rapid transbilayer diffusion of 1,2-diacylglycerol and its relevance to control of membrane curvature.
    Nature. 1978 Nov 16;276(5685):289-90 PMID: 714162
  22. Spectrin phosphorylation and shape change of human erythrocyte ghosts.
    J Cell Biol. 1981 Feb;88(2):430-40 PMID: 7204501
  23. A description of the holes in human erythrocyte membrane ghosts.
    J Biol Chem. 1982 Oct 10;257(19):11651-9 PMID: 7118901
  24. Equilibrium and kinetic effects of drugs on the shapes of human erythrocytes.
    J Cell Biol. 1976 Jul;70(1):247-51 PMID: 932100
  25. Evidence for a large internal pressure in biological membranes.
    Proc Natl Acad Sci U S A. 1979 Oct;76(10):5202-6 PMID: 315559
  26. Alterations in human erythrocyte shape and the state of spectrin and phospholipid phosphorylation induced by cholesterol depletion.
    Biochim Biophys Acta. 1981 May 20;643(3):636-41 PMID: 7248290
  27. Control of the erythrocyte membrane shape: recovery from the effect of crenating agents.
    J Cell Biol. 1981 Dec;91(3 Pt 1):884-8 PMID: 7328127
  28. Lipid asymmetry in membranes.
    Annu Rev Biochem. 1979;48:47-71 PMID: 382989
  29. Biological membranes as bilayer couples. III. Compensatory shape changes induced in membranes.
    J Cell Biol. 1976 Jul;70(1):193-203 PMID: 945277
  30. Metabolic dependence of red cell deformability.
    J Clin Invest. 1969 May;48(5):795-809 PMID: 4388591
  31. Morphological changes in asymmetric erythrocyte membranes induced by electrolytes.
    Biochem Biophys Res Commun. 1976 Jun 7;70(3):925-31 PMID: 820345
  32. Irreversible deformation of the spectrin-actin lattice in irreversibly sickled cells.
    J Clin Invest. 1976 Oct;58(4):955-63 PMID: 965498
  33. Relations between membrane monolayers in some red cell shape transformations.
    J Theor Biol. 1978 Dec 21;75(4):487-501 PMID: 745454
  34. The organization of proteins in the human red blood cell membrane. A review.
    J Cell Biol. 1974 Jul;62(1):1-19 PMID: 4600883
  35. On the mechanism of ATP-induced shape changes in human erythrocyte membranes. II. The role of ATP.
    J Cell Biol. 1977 Jun;73(3):647-59 PMID: 194904
Article Info
Journal
The Journal of membrane biology
Abbr.
J Membr Biol
ISSN
0022-2631
Published
1982-00-00
Pages
113-23
Language
English
Region
United States
NLM ID
0211301
Subset
IM
Grants
NHLBI NIH HHS · HL 00481 · United States
NHLBI NIH HHS · HL 20303 · United States
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