On the mechanism of ATP-induced shape changes in human erythrocyte membranes. I. The role of the spectrin complex
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S J Singer | M. Sheetz | S. Singer | M P Sheetz | M. P. Sheetz | S. Singer
[1] L. Forni,et al. The dynamic state of the lymphocyte membrane. Factors affecting the distribution and turnover of surface immunoglobulins , 1972, European journal of immunology.
[2] D. Wallach,et al. Electrophoretic analysis of the major polypeptides of the human erythrocyte membrane. , 1971, Biochemistry.
[3] S. Shohet,et al. Stages in the incorporation of fatty acids into red blood cells. , 1968, The Journal of clinical investigation.
[4] M. Sheetz,et al. Relationships of the spectrin complex of human erythrocyte membranes to the actomyosins of muscle cells. , 1976, Biochemistry.
[5] J. Dodge,et al. The preparation and chemical characteristics of hemoglobin-free ghosts of human erythrocytes. , 1963, Archives of biochemistry and biophysics.
[6] S. Singer. Molecular biology of cellular membranes with applications to immunology. , 1974, Advances in immunology.
[7] P. Canham. The minimum energy of bending as a possible explanation of the biconcave shape of the human red blood cell. , 1970, Journal of theoretical biology.
[8] P. Detmers,et al. Actin in erythrocyte ghosts and its association with spectrin. Evidence for a nonfilamentous form of these two molecules in situ , 1975, The Journal of cell biology.
[9] D. Branton,et al. INTRAMEMBRANE PARTICLE AGGREGATION IN ERYTHROCYTE GHOSTS , 1974, The Journal of cell biology.
[10] W. Birchmeier,et al. On the mechanism of ATP-induced shape changes in the human erythrocyte membranes: the role of ATP , 1977, The Journal of cell biology.
[11] J. Avruch,et al. Phosphorylation of endogenous substrates by erythrocyte membrane protein kinases. I. A monovalent cation-stimulated reaction. , 1974, Biochemistry.
[12] E. Merrill,et al. Metabolic dependence of red cell deformability. , 1969, The Journal of clinical investigation.
[13] J. T. Penniston,et al. The conformational basis of energy transformations in membrane systems. IV. Energized states and pinocytosis in erythrocyte ghosts. , 1968, Archives of biochemistry and biophysics.
[14] T D Pollard,et al. Actin and myosin and cell movement. , 1974, CRC critical reviews in biochemistry.
[15] J. Hoffman. PHYSIOLOGICAL CHARACTERISTICS OF HUMAN RED BLOOD CELL GHOSTS , 1958, The Journal of general physiology.
[16] R. Porter. The hydrolysis of rabbit y-globulin and antibodies with crystalline papain. , 1959, The Biochemical journal.
[17] S. Singer,et al. THE LOCALIZATION OF SPECTRIN ON THE INNER SURFACE OF HUMAN RED BLOOD CELL MEMBRANES BY FERRITIN-CONJUGATED ANTIBODIES , 1971, The Journal of cell biology.
[18] M. Sheetz,et al. Equilibrium and kinetic effects of drugs on the shapes of human erythrocytes , 1976, The Journal of cell biology.
[19] M. Sheetz,et al. Biological membranes as bilayer couples. III. Compensatory shape changes induced in membranes , 1976, The Journal of cell biology.
[20] J. Hoffman. The cellular functions of membrane transport , 1963 .
[21] R. Williams,et al. The phosphorylation and isolation of two erythrocyte membrane proteins in vitro. , 1972, Biochemical and biophysical research communications.
[22] M. Sheetz,et al. Biological membranes as bilayer couples. A molecular mechanism of drug-erythrocyte interactions. , 1974, Proceedings of the National Academy of Sciences of the United States of America.
[23] B. Roelofsen,et al. Preferential incorporation of fatty acids at the inside of human erythrocyte membranes. , 1974, Biochimica et biophysica acta.
[24] G. Nicolson,et al. Anionic sites of human erythrocyte membranes. II. Antispectrin-induced transmembrane aggregation of the binding sites for positively charged colloidal particles. , 1973 .