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2. Cytoplasmic pH and human erythrocyte shape. Gedde MM; Davis DK; Huestis WH Biophys J; 1997 Mar; 72(3):1234-46. PubMed ID: 9138569 [TBL] [Abstract][Full Text] [Related]
3. Low pH induced shape changes and vesiculation of human erythrocytes. Gros M; Vrhovec S; Brumen M; Svetina S; Zeks B Gen Physiol Biophys; 1996 Apr; 15(2):145-63. PubMed ID: 8899418 [TBL] [Abstract][Full Text] [Related]
4. Deformation of transforming red cells in various pH solutions. Nagasawa T Experientia; 1981; 37(9):977-8. PubMed ID: 7297661 [TBL] [Abstract][Full Text] [Related]
5. The shape of red blood cells as a function of membrane potential and temperature. Glaser R J Membr Biol; 1979 Dec; 51(3-4):217-28. PubMed ID: 43897 [TBL] [Abstract][Full Text] [Related]
6. Chloride in the human erythrocyte: distribution and transport between cellular and extracellular fluids and structural features of the cell membrane. Dalmark M Prog Biophys Mol Biol; 1976; 31(2):145-64. PubMed ID: 10601 [No Abstract] [Full Text] [Related]
7. [Inverse pH-dependent shape changes of erythrocytes in the presence of albumin]. Scheven C; Halbhuber KJ; Fröber R; Gummelt M; Geyer G Folia Haematol Int Mag Klin Morphol Blutforsch; 1980; 107(3):454-8. PubMed ID: 6159282 [TBL] [Abstract][Full Text] [Related]
8. The effect of ionic strength on cell volume, cell pH and cellular buffer capacity in human red blood cells. Dalmark M Acta Biol Med Ger; 1981; 40(6):757-63. PubMed ID: 7324706 [TBL] [Abstract][Full Text] [Related]
9. Stabilization of erythrocyte shape by a chemical increase in membrane shear stiffness. Haest CW; Fischer TM; Plasa G; Deuticke B Blood Cells; 1980; 6(3):539-53. PubMed ID: 7397401 [TBL] [Abstract][Full Text] [Related]
10. Effects of carbon dioxide and pH variations in vitro on blood respiratory functions, red blood cell volume, transmembrane pH gradients, and sickling in sickle cell anemia. Ueda Y; Bookchin RM J Lab Clin Med; 1984 Aug; 104(2):146-59. PubMed ID: 6431043 [TBL] [Abstract][Full Text] [Related]
11. Potential difference and the distribution of ions across the human red blood cell membrane; a study of the mechanism by which the fluorescent cation, diS-C3-(5) reports membrane potential. Hladky SB; Rink TJ J Physiol; 1976 Dec; 263(2):287-319. PubMed ID: 14255 [TBL] [Abstract][Full Text] [Related]
12. The influence of valinomycin induced membrane potential on erythrocyte shape. Glaser R; Gengnagel C; Donath J Biomed Biochim Acta; 1991; 50(7):869-77. PubMed ID: 1759965 [TBL] [Abstract][Full Text] [Related]
13. Shape response of human erythrocytes to altered cell pH. Gedde MM; Yang E; Huestis WH Blood; 1995 Aug; 86(4):1595-9. PubMed ID: 7632969 [TBL] [Abstract][Full Text] [Related]
14. Erythrocyte phosphate metabolism and pH in vitro: a model for clinical phosphate disorders in acidosis and alkalosis. Kemp GJ; Bevington A; Russell RG Miner Electrolyte Metab; 1988; 14(5):266-70. PubMed ID: 3173264 [TBL] [Abstract][Full Text] [Related]
15. [The effects of low temperature and extracellular ions on the membrane potential of newt red cells]. Kawano K Nihon Seirigaku Zasshi; 1983 Apr; 45(4):200-7. PubMed ID: 6887072 [TBL] [Abstract][Full Text] [Related]
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18. Maintenance and mobility of hemoglobin and water within the human erythrocyte after detergent disruption of the plasma membrane. Cameron IL; Cox LA; Liu XR; Fullerton GD J Cell Physiol; 1991 Dec; 149(3):365-74. PubMed ID: 1660478 [TBL] [Abstract][Full Text] [Related]
19. Anion transport and 2,3-diphosphoglycerate in cystic fibrosis red blood cells. Berghout AG; Bender SW Pediatr Res; 1984 Oct; 18(10):1017-20. PubMed ID: 6493845 [TBL] [Abstract][Full Text] [Related]
20. The electric potential profile across the erythrocyte membrane. Heinrich R; Gaestel M; Glaser R J Theor Biol; 1982 May; 96(2):211-31. PubMed ID: 7121027 [No Abstract] [Full Text] [Related] [Next] [New Search]