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Biomedical subjects

D Schachter

Publications and source records attributed to D Schachter.

At least 91 records · Page 5Linked to original sources

Active transport of iron to mucosal surface of rat jejunum.

Estimations of steady-state fluxes of divalent Fe across rat intestinal segments in vitro provide evidence for two active transport mechanisms. Segments of the distal small intestine transport the mineral against electrochemical potential gradients from the serosal to the mucosal surface. Active transport in the reverse direction was confirmed with segments of proximal duodenum. The distal mechanism is dependent on cellular metabolism and is markedly decreased by metabolic inhibitors or in the absence of a metabolizable hexose. Cycloheximide, which inhibits protein biosynthesis, also blocks the active transport. Perfusion of jejunal and duodenal intestinal loops in situ in anesthetized rats provides evidence that endogenous Fe can be transferred to the lumen by a process otherthan shedding of mucosal cells. It is suggested that such transfer may occur via the active transport mechanism.

Animals↗

Vitamin D-dependent, particulate calcium-binding activity and intestinal calcium transport.

A vitamin D-dependent calcium-binding activity of relatively high molecular weight has been identified in the particulate fraction of rat small intestinal mucosa. The Ca-binding activity is sedimented at 140,000 X g after treatment of the mucosal particulate fraction with Triton X-114. Intestinal brush-border suspensions can also be used as starting material. The Ca-binding component is inactivated by heat and repeated freeze-thawing and consists of one or more protein complexes in the range of 0.5-1.0 million mol wt as indicated by gel filtration. The Ca-binding activity correlates positively with known features of the intestinal Ca transport mechanism, as demonstrated by studies of the distribution in the small intestine and the effects of vitamin D, dietary Ca, cycloheximide treatment, and rat age. It is suggested that the component might function in the transit of Ca across the brush-border surface to the cytosol of intestinal mucosal cells.

Adenosine Triphosphatases↗

Transport of monosaccharides. I. Asymmetry in the human erythrocyte mechanism.

Transport of D-glucose across human erythrocyte membranes occurs via a facilitated diffusion process which demonstrates influx-efflux asymmetry. The mechanism of the asymmetry has been studied by estimating unidirectional fluxes in the presence or absence of trans equilibrium hexose. In the absence of transhexose, the half-saturation constant for efflux at 15 degrees C was approximately 10 mM as compared with 27 mM for influx; the corresponding values for maximal transfer rates (mumol/min per ml cell H(2)O) were approximately 51 vs. 18. The estimation of kinetic parameters, including the constant F(s), which is the ratio of maximal transfer rate/half-saturation constant, indicates a unique effect of intracellular hexose on the transfer system. Further evidence to support this conclusion was obtained by studying the effects of noncompetitive inhibitors on efflux vs. influx. N-ethylmaleimide, p-chloromercuribenzenesulfonate, and dichloroallyldiethylstilbestrol all inhibited efflux much more than influx. Glucose rendered the transport system more reactive to N-ethylmaleimide as assayed by efflux, whereas influx was much less affected. The results support the hypothesis that the transport system exists in two states. Transition from one state to the other is dependent on the presence of intracellular hexose.

Biological Transport↗

Vitamin D and adenosine triphosphatase dependent on divalent cations in rat intestinal mucosa.

Intestinal brush borders prepared from vitamin D-deficient rats demonstrate increased susceptibility in vitro to fragmentation by shear forces or to loss of microvillus enzymes on treatment with EDTA. These effects are relatively nonspecific and are also observed in normal rats starved for 48 h. They may underlie prior observations that purport to demonstrate a vitamin D-dependent increase in brush border Ca-dependent ATPase. In addition, however, vitamin D increases ATPase activity dependent on certain divalent cations, including Ca and Zn, in whole-particulate suspensions pelleted by high-speed centrifugation of mucosal homogenates. This action is independent of changes in other microvillus enzymes, i.e. disaccharidases, and tissue distribution and cation specificity studies support the hypothesis that the mucosal whole-particulate ATPase is related to transport of Ca, Zn, and possibly other divalent cations.

Adenosine Triphosphatases↗

Topography and functions of sulfhydryl groups of the human erythrocyte glucose transport mechanism.

Membrane-impermeant and -permeant maleimides were applied to characterize the location and function of the sulfhydryl (SH) groups essential for the facilitated diffusion mediated by the human erythrocyte glucose transport protein. Three such classes have been identified. Type I SH is accessible to membrane-impermeant reagents at the outer (exofacial) surface of the intact erythrocyte. Alkylation of this class inhibits glucose transport; D-glucose and cytochalasin B protect against the alkylation. Type II SH is located at the inner (endofacial) surface of the membrane and is accessible to the membrane-impermeant reagent glutathione maleimide only after lysis of the erythrocyte. D-glucose enhances, while cytochalasin B reduces, the alkylation of Type II SH by maleimides. Reaction of Types I and II SH with an impermeant maleimide increases the half-saturation concentration for binding of D-glucose to erythrocyte membranes. By contrast, inactivation of Type III SH markedly decreases the half-saturation concentration for the binding of D-glucose and other transported sugars. Type III SH is inactivated by the relatively lipid-soluble reagents N-ethylmaleimide (NEM) and dipyridyl disulfide, but not by the impermeant glutathione maleimide. Type III SH is thus located in a hydrophobic membrane domain. A kinetic model constructed to explain these observations indicates that Type III SH is required for the translocation event in a hydrophobic membrane domain which leads to the dissociation of glucose bound to transport sites at the membrane surfaces.

Alkylation↗