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2. A thermodynamic and kinetic approach to the study of biological models, with particular reference to membranes containing immobilized enzyme. Caplan SR Biochimie; 1973; 55(8):967-73. PubMed ID: 4772298 [No Abstract] [Full Text] [Related]
3. Influence of membrane heterogeneity on kinetics of nonelectrolyte tracer flows. Li JH; Essig A J Membr Biol; 1976 Nov; 29(3):255-64. PubMed ID: 994179 [TBL] [Abstract][Full Text] [Related]
4. Kinetic and thermodynamic aspects of lipid translocation in biological membranes. Frickenhaus S; Heinrich R Biophys J; 1999 Mar; 76(3):1293-309. PubMed ID: 10049313 [TBL] [Abstract][Full Text] [Related]
5. Kinetic models and phenomenological analysis of passive lipid translocation in single-file. Frickenhaus S; Heinrich R J Theor Biol; 1999 Mar; 197(2):175-91. PubMed ID: 10074392 [TBL] [Abstract][Full Text] [Related]
6. Active transport: conditions for linearity and symmetry far from equilibrium. Essig A; Caplan SR Proc Natl Acad Sci U S A; 1981 Mar; 78(3):1647-51. PubMed ID: 6940178 [TBL] [Abstract][Full Text] [Related]
7. Passive sodium fluxes across toad bladder in the presence of simultaneous transepithellal gradients of concentration and potential. Chen JS; Walser M J Membr Biol; 1977 Apr; 32(3-4):319-30. PubMed ID: 864681 [TBL] [Abstract][Full Text] [Related]
8. A simple network thermodynamic method for series-parallel coupled flows. III. Application to coupled solute and volume flows through epithelial membranes. Mikulecky DC; Thomas SR J Theor Biol; 1978 Aug; 73(4):697-710. PubMed ID: 703342 [No Abstract] [Full Text] [Related]
9. Diffusion and convective flow across membranes: irreversible the thermodynamic approach. Bresler EH; Wendt RP Science; 1969 Feb; 163(3870):944-5. PubMed ID: 5763878 [TBL] [Abstract][Full Text] [Related]
10. Steady-state analysis of ion fluxes in Necturus gall-bladder epithelial cells. Hill AE; Hill BS J Physiol; 1987 Jan; 382():15-34. PubMed ID: 2442358 [TBL] [Abstract][Full Text] [Related]
11. Flux ratio theorems for nonlinear membrane transport under nonstationary conditions. Bass L; McNabb A J Theor Biol; 1988 Jul; 133(2):185-91. PubMed ID: 3236892 [TBL] [Abstract][Full Text] [Related]
12. Energetics of active transport processes. Essig A Biophys J; 1975 Jul; 15(7):651-65. PubMed ID: 1139035 [TBL] [Abstract][Full Text] [Related]
13. On equations for combined convective and diffusive transport of neutral solute across porous membranes. Bresler EH; Groome LJ Am J Physiol; 1981 Nov; 241(5):F469-76. PubMed ID: 7304743 [TBL] [Abstract][Full Text] [Related]
14. A thermodynamic analysis of fluxes and flux-ratios in bioligical membranes. Coster HG; George EP Biophys J; 1968 Apr; 8(4):457-69. PubMed ID: 5643275 [TBL] [Abstract][Full Text] [Related]
15. On the derivation of the Kargol's mechanistic transport equations from the Kedem-Katchalsky phenomenological equations. Suchanek G Gen Physiol Biophys; 2005 Jun; 24(2):247-58. PubMed ID: 16118476 [TBL] [Abstract][Full Text] [Related]
16. The physico-chemical mechanism of mediated transport. II. Osmotic and isosmotic volume flow. Massaldi HA J Theor Biol; 1984 Sep; 110(1):35-57. PubMed ID: 6492825 [TBL] [Abstract][Full Text] [Related]
17. Heterogeneity of membrane transport quantified by the analysis of a unidirectional flux transient of charged tracer. Bass L; Maloney LV; Young MO Math Biosci; 1989 May; 94(1):31-44. PubMed ID: 2520165 [TBL] [Abstract][Full Text] [Related]
18. Ion tracer flows and flux ratios in heterogeneous membranes. Li JH; Essig A Biochim Biophys Acta; 1977 Mar; 465(2):421-5. PubMed ID: 16250353 [TBL] [Abstract][Full Text] [Related]
19. The relation between osmotic flow and tracer solvent diffusion for single-file transport. Manning GS Biophys Chem; 1975 Apr; 3(2):147-52. PubMed ID: 1148370 [TBL] [Abstract][Full Text] [Related]
20. A thermodynamic analysis of the correlation between active Na+ transport and the rate of oxygen consumption in epithelia. Lahav J; Michaeli I J Membr Biol; 1978 Jul; 42(1):1-18. PubMed ID: 671527 [TBL] [Abstract][Full Text] [Related] [Next] [New Search]