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2. Efflux of inorganic phosphate from mammalian non-myelinated nerve fibres. Ferrero J; Jirounek P; Rouiller M; Straub RW J Physiol; 1978 Sep; 282():507-19. PubMed ID: 722557 [TBL] [Abstract][Full Text] [Related]
3. Observations on the mechanism for the active extrusion of lithium in mammalian non-myelinated nerve fibres. Ritchie JM; Straub RW J Physiol; 1980 Jul; 304():123-34. PubMed ID: 7441529 [TBL] [Abstract][Full Text] [Related]
5. Release of inorganic phosphate during activity in mammalian non-myelinated nerve fibres. Maire JC; Straub RW J Physiol; 1980 Jul; 304():135-43. PubMed ID: 7441530 [TBL] [Abstract][Full Text] [Related]
6. Uptake of adenosine and release of adenine derivatives in mammalian non-myelinated nerve fibres at rest and during activity. Maire JC; Medilanski J; Straub RW J Physiol; 1982 Feb; 323():589-602. PubMed ID: 7097586 [TBL] [Abstract][Full Text] [Related]
7. Involvement of intracellular calcium in the phosphate efflux from mammalian nonmyelinated nerve fibers. Jirounek P; Vitus J; Jones GJ; Pralong WF; Straub RW J Membr Biol; 1984; 79(1):87-95. PubMed ID: 6429334 [TBL] [Abstract][Full Text] [Related]
8. The ionic content of mammalian non-myelinated nerve fibres and its alteration as a result of electrical activity. Rang HP; Ritchie JM J Physiol; 1968 May; 196(1):223-36. PubMed ID: 5659847 [TBL] [Abstract][Full Text] [Related]
9. Post-tetanic hyperpolarization, sodium-potassium-activated adenosine triphosphatase and high energy phosphate levels in garfish olfactory nerve. McDougal DB; Osborn LA J Physiol; 1976 Mar; 256(1):41-60. PubMed ID: 132526 [TBL] [Abstract][Full Text] [Related]
10. Effects of calcium and lanthanum on phosphate efflux from nonmyelinated nerve fibers. Jirounek P; Rouiller M; Jones GJ; Straub RW J Membr Biol; 1982; 65(1-2):125-30. PubMed ID: 7057456 [TBL] [Abstract][Full Text] [Related]
11. The oxygen consumption of mammalian non-myelinated nerve fibres at rest and during activity. Ritchie JM J Physiol; 1967 Feb; 188(3):309-29. PubMed ID: 6032203 [TBL] [Abstract][Full Text] [Related]
12. Efflux of inorganic phosphate from rabbit vagus in Locke and Na-free Locke [proceedings]. Ferrero J; Jirounek P; Rouiller M; Salamin A; Straub RW J Physiol; 1976 Dec; 263(1):215P-216P. PubMed ID: 1011156 [No Abstract] [Full Text] [Related]
13. Increase in efflux of inorganic phosphate during electrical activity in small non-myelinated nerve fibres. Ritchie JM; Straub RW J Physiol; 1978 Jan; 274():539-48. PubMed ID: 625007 [TBL] [Abstract][Full Text] [Related]
16. The influence of sodium on calcium fluxes in pinched-off nerve terminals in vitro. Blaustein MP; Oborn CJ J Physiol; 1975 Jun; 247(3):657-86. PubMed ID: 238034 [TBL] [Abstract][Full Text] [Related]
17. Phosphate from the phosphointermediate (EP) of the human red blood cell Na/K pump is coeffluxed with Na, in the absence of external K. MarĂn R; Hoffman JF J Gen Physiol; 1994 Jul; 104(1):1-32. PubMed ID: 7964591 [TBL] [Abstract][Full Text] [Related]
18. Lithium transport pathways in human red blood cells. Pandey GN; Sarkadi B; Haas M; Gunn RB; Davis JM; Tosteson DC J Gen Physiol; 1978 Aug; 72(2):233-47. PubMed ID: 690597 [TBL] [Abstract][Full Text] [Related]
19. A furosemide-sensitive cotransport of sodium plus potassium in the human red cell. Wiley JS; Cooper RA J Clin Invest; 1974 Mar; 53(3):745-55. PubMed ID: 4812437 [TBL] [Abstract][Full Text] [Related]
20. Regulatory interaction of ATP Na+ and Cl- in the turnover cycle of the NaK2Cl cotransporter. Whisenant N; Khademazad M; Muallem S J Gen Physiol; 1993 Jun; 101(6):889-908. PubMed ID: 8392531 [TBL] [Abstract][Full Text] [Related] [Next] [New Search]