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Effect of DL-ethionine on the intestinal absorption and transport of palmitic acid-1-14C and tripalmitin-14C. Role of intramucosal factors in the uptake of luminal lipids.

The effect of DL-ethionine on the uptake and transport of lipid by the rat small intestine was investigated. A cottonseed oil emulsion containing (14)C-labeled tripalmitin or palmitic acid was administered intragastrically to rats pretreated with DL-ethionine, DL-ethionine plus methionine, or saline, and the rats were sacrificed 2, 4, and 6 hr later. Lipids from the plasma, the stomach, the colon, the luminal contents of the small intestine, and the wall of the small intestine were extracted, fractionated, and their radioactivity assayed. Ethionine markedly inhibited the uptake of lipids by the small intestine. This inhibition was not related to impairment of intraluminal lipolysis since analagous inhibitions were observed when palmitic acid or predigested triglyceride (TG), obtained through a jejunal fistula from normal animals, was administered instead of tripalmitin. Ethionine also inhibited the transport of lipid from the wall of the small intestine. A significant fraction of the administered lipid remained in the wall of the small intestine, and only a small fraction was transported to the blood stream. Although most of the wall radioactivity was in the form of TG, significant proportions were also found in the free fatty acid (FFA) and partial glyceride fractions, indicating a marked inhibition of mucosal reesterification to TG. The degree of inhibition of mucosal reesterification and the degree of inhibition of transport of wall lipids were directly related to the degree of inhibition of uptake of luminal radioactivity. This relationship suggests that the rate of reesterification, the level of mucosal FFA, and the rate of transport of intramucosal TG may be of importance in determining the extent of uptake of intraluminal lipid by the mucosal cells. Since a significant fraction of the wall radioactivity was in the form of TG, the decreased transport of wall lipids was attributed to an impairment of chylomicron completion due to inhibition of either the synthesis of chylomicron apoprotein or the association of preformed TG with the protein moiety of chylomicrons. Experiments with labeled amino acids support the first possibility.

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Intrinsic factor-mediated intestinal absorption of cobalamin in the dog.

The purpose of these studies was to determine whether gastric intrinsic factor and the ileal intrinsic factor receptor participate in the process of cobalamin absorption in the dog. Physicochemical analysis of gastrointestinal fluids and mucosal extracts obtained 3-5 h after cyano[57Co]-cobalamin was fed to dogs demonstrated that 1) all cyano-[57Co]cobalamin became bound to proteins during intraluminal transport; and 2) mucosal cyano[57Co]cobalamin in the extract of the ileal mucosa was bound to intrinsic factor, to intrinsic factor coupled to receptor protein, and to proteins with properties similar to R protein and transcobalamin II. A significant fraction of the cyano[57Co]cobalamin in the mucosal extract was membrane bound and, upon solubilization with Triton X-100, was found to contain immunoreactive intrinsic factor that, however, could no longer couple to the isolated receptor. The formation of the complex of cobalamin with intrinsic factor and the receptor protein and the selective accumulation of cobalamin in the ileum indicate that the intrinsic factor-mediated mechanism for absorption of this vitamin is active in the dog.

Animals↗

Effect of pyridoxine deficiency on intestinal absorption of calcium and oxalate: chemical composition of brush border membranes in rats.

[U-14C]oxalic acid and 45Ca uptake was measured in control and vitamin B6-deficient rats. Calcium and oxalate uptake rates were significantly increased from the intestine of vitamin B6-deficient rats as compared to pair-fed controls. Oxalate uptake in pair-fed control rats follows a passive diffusion. In pyridoxine-deficient rats, the oxalate uptake increases nonlinearly as the oxalate concentration in the incubation medium increased, indicating a two-component system--a saturable sodium-independent uptake and a linear nonsaturable passive-diffusion component. The brush border membrane composition reveals that membrane sialic acid, cholesterol, and protein contents were markedly reduced. These aberrations in the chemical composition of brush border membrane may be responsible for the enhanced oxalic acid uptake in vitamin B6-deficient rats.

Animals↗