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I Benes

Publications and source records attributed to I Benes.

48 records · Page 3Linked to original sources

Transport of glucose and galactose in kidney-cortex cells.

1. The aerobic transport of d-glucose and d-galactose in rabbit kidney tissue at 25 degrees was studied. 2. In slices forming glucose from added substrates an accumulation of glucose against its concentration gradient was found. The apparent ratio of intracellular ([S](i)) and extracellular ([S](o)) glucose concentrations was increased by 0.4mm-phlorrhizin and 0.3mm-ouabain. 3. Slices and isolated renal tubules actively accumulated glucose from the saline; the apparent [S](i)/[S](o) fell below 1.0 only at [S](o) higher than 0.5mm. 4. The rate of glucose oxidation by slices was characterized by the following parameters: K(m) 1.16mm; V(max.) 4.5mumoles/g. wet wt./hr. 5. The active accumulation of glucose from the saline was decreased by 0.1mm-2,4-dinitrophenol, 0.4mm-phlorrhizin and by the absence of external Na(+). 6. The kinetic parameters of galactose entry into the cells were: K(m) 1.5mm; V(max) 10mumoles/g. wet wt./hr. 7. The efflux kinetics from slices indicated two intracellular compartments for d-galactose. The galactose efflux was greatly diminished at 0 degrees , was inhibited by 0.4mm-phlorrhizin, but was insensitive to ouabain. 8. The following mechanism of glucose and galactose transport in renal tubular cells is suggested: (a) at the tubular membrane, these sugars are actively transported into the cells by a metabolically- and Na(+)-dependent phlorrhizin-sensitive mechanism; (b) at the basal cell membrane, these sugars are transported in accordance with their concentration gradient by a phlorrhizin-sensitive Na(+)-independent facilitated diffusion. The steady-state intracellular sugar concentration is determined by the kinetic parameters of active entry, passive outflow and intracellular utilization.

Animals↗

Transport of monosaccharides in kidney-cortex cells.

1. The aerobic accumulation of various monosaccharides in slices of rabbit kidney cortex at 25 degrees was studied. 2. d-Fructose and alpha-methyl d-glucoside were readily accumulated against their concentration gradient by a phlorrhizin-sensitive Na(+)-dependent active transport. In the absence of external Na(+) the maximal rate of alpha-methyl glucoside transport was decreased tenfold, the K(m) of entry into the cells (8.2mm) not being affected. Phlorrhizin and d-galactose inhibited the entry of alpha-methyl glucoside also in the absence of external Na(+). 3. d-Xylose, 6-deoxy-d-glucose and 6-deoxy-d-galactose were poorly accumulated ([S](i)/[S](o) ratios slightly above 1.0); this transport was inhibited by phlorrhizin and by the absence of Na(+). 4. 3-O-Methyl-d-glucose, d-arabinose and l-arabinose were not actively transported, [S](i)/[S](o) ratios never exceeding 1.0. 5. 2-Deoxy-d-glucose and 2-deoxy-d-galactose were readily accumulated against a high concentration gradient, this transport being Na(+)-independent and only slightly sensitive to phlorrhizin. External Na(+) was not required for an inhibitory action of phlorrhizin and d-galactose on the entry of 2-deoxy-d-galactose into the cells. 6. Interference for entry into the cells between the following saccharides was found: d-galactose inhibited alpha-methyl d-glucoside transport; d-xylose entry was inhibited by d-glucose; d-galactose transport was inhibited by d-xylose; a mutual interference between d-galactose and its 2-deoxy analogue was found. 7. It is concluded that d-glucose, d-galactose, alpha-methyl d-glucoside, d-xylose and possibly also some other monosaccharides share a common active transport system. 8. The specificity of the Na(+)-dependent phlorrhizin-sensitive active transport system for monosaccharides in kidney-cortex cells differs from that in intestinal epithelial cells.

Animals↗

[Cycloserine].

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Chemistry, Pharmaceutical↗

[Diphesatin].

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Chemistry, Pharmaceutical↗

[Disulfiram].

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Chemistry, Pharmaceutical↗

[Methionine].

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Chemistry, Pharmaceutical↗