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Biomedical subjects

Laurie Drozdowski

Publications and source records attributed to Laurie Drozdowski.

9 recordsLinked to original sources

Nutritional modulation of the inflammatory response in inflammatory bowel disease--from the molecular to the integrative to the clinical.

Nutrient deficiencies are common in patients with inflammatory bowel disease (IBD). Both total parenteral and enteral nutrition provide important supportive therapy for IBD patients, but in adults these are not useful for primary therapy. Dietary intervention with omega-3 polyunsaturated fatty acids contained in fish oil may be useful for the care of IBD patients, and recent studies have stressed the role of PPAR on NFkappaB activity on the potential beneficial effect of dietary lipids on intestinal function.

Enteral Nutrition↗

Aging and the intestine.

Over the lifetime of the animal, there are many changes in the function of the body's organ systems. In the gastrointestinal tract there is a general modest decline in the function of the esophagus, stomach, colon, pancreas and liver. In the small intestine, there may be subtle alterations in the intestinal morphology, as well as a decline in the uptake of fatty acids and sugars. The malabsorption may be partially reversed by aging glucagon-like peptide 2 (GLP2) or dexamethasone. Modifications in the type of lipids in the diet will influence the intestinal absorption of nutrients: for example, in mature rats a diet enriched with saturated as compared with polysaturated fatty acids will enhance lipid and sugar uptake, whereas in older animals the opposite effect is observed. Thus, the results of studies of the intestinal adaptation performed in mature rats does not necessarily apply in older animals. The age-associated malabsorption of nutrients that occurs with aging may be one of the several factors which contribute to the malnutrition that occurs with aging.

Aged↗

Intestinal mucosal adaptation.

Intestinal failure is a condition characterized by malnutrition and/or dehydration as a result of the inadequate digestion and absorption of nutrients. The most common cause of intestinal failure is short bowel syndrome, which occurs when the functional gut mass is reduced below the level necessary for adequate nutrient and water absorption. This condition may be congenital, or may be acquired as a result of a massive resection of the small bowel. Following resection, the intestine is capable of adaptation in response to enteral nutrients as well as other trophic stimuli. Identifying factors that may enhance the process of intestinal adaptation is an exciting area of research with important potential clinical applications.

Adaptation, Physiological↗

Treatment of suckling rats with GLP-2 plus dexamethasone increases the ileal uptake of fatty acids in later life.

Glucocorticosteroids such as dexamethasone (Dex) increase sugar and lipid uptake in adult animals and accelerate the development of the immature intestine. The effect of Dex on the ontogeny of lipid absorption is unknown. In adult rats, glucagon-like peptide-2 (GLP-2) has a trophic effect on the intestine and enhances nutrient absorption. This study was undertaken to determine the effect of GLP-2 and Dex on the intestine uptake of lipids in suckling rats and to determine whether any such effect persists into the postweanling period. Sixty-four suckling rats were randomized into four groups. They were treated from days 11 to 21 with GLP-2 (0.1 microg.g(-1).day(-1) sc), Dex (0.128 microg.g(-1).day(-1) sc), GLP-2 plus Dex (GLP-2 0.1 microg.g(-1).day(-1) sc + Dex 0.128 microg.g(-1).day(-1) sc), or placebo. One-half the pups were killed at days 19-21 ("sucklings"), and one-half were killed 4 wk later ("weanlings"). The rate of intestinal uptake of six fatty acids (12:0, lauric; 16:0, palmitic; 18:0, stearic; 18:1, oleic; 18:2, linoleic; and 18:3, linolenic) and cholesterol was assessed using an in vitro ring technique. GLP-2 had no effect on lipid uptake. Dex increased the uptake of 18:3 in sucklings, and the ileal uptake of 18:0 was increased in weanlings. The combination of GLP-2 plus Dex had no effect in sucklings and increased the ileal uptake of 12:0, 18:0, 18:1, 18:2, and 18:3 in weanlings. The enhanced uptake of fatty acids with GLP-2 plus Dex was not explained by alterations in the animals' body or intestinal weights, intestinal morphology, or intestinal- or liver-fatty acid binding proteins. Unlike adults, GLP-2 does not enhance lipid uptake in sucklings. Dex has a modest enhancing effect on selected fatty acid uptake both in sucklings as well as weanlings. GLP-2 plus Dex has an enhancing effect on the ileal uptake of fatty acids in weanlings 4 wk after their previous injection with GLP-2 plus Dex. It remains to be established what is the nutritional importance of this late effect of prior exposure to Dex or GLP-2 plus Dex on the intestinal uptake of lipids.

Absorption↗

Acid inhibitory potency of twice a day omeprazole is not affected by eradication of Helicobacter pylori in healthy volunteers.

BACKGROUND AND AIMS: The acid inhibitory effect of proton pump inhibitors is reported to be greater in the presence than in the absence of an H. pylori infection. This study was undertaken to test the hypothesis that the acid inhibitory effect of omeprazole given twice a day is greater in H. pylori infected healthy volunteers than in the same individuals following eradication because of differences in the pharmacodynamics of omeprazole, greater duodenogastric reflux, the effects of ammonia produced by the H. pylori, or lower gastric juice concentrations of selected cytokines, which may inhibit gastric acid secretion. MATERIALS AND METHODS: We undertook 24-hour pH-metry in 12 H. pylori-positive healthy volunteers: (1) when on no omeprazole; (2) when on omeprazole 20 mg bid for 8 days; (3) 2 months after eradication of H. pylori and when on no omeprazole; and (4) after eradication of H. pylori and when on omeprazole 20 mg twice a day. RESULTS: In subjects given omeprazole, eradication of H. pylori reduced pH and percentage pH >or= 3, as well as increasing the area under the H+ concentration-time curve. These differences were not due to alterations in (1) gastric juice concentrations of IL-1alpha, IL-8, IL-13, epidermal growth factor, or bile acids; (2) serum gastrin concentrations; or (3) the pharmacokinetics of omeprazole. There was no change in the difference in the H+ concentration-time curve 'without omeprazole' minus 'with omeprazole', when comparing 'after' versus 'before' eradication of H. pylori. CONCLUSIONS: Eradication of H. pylori was not associated with an alteration in the acid inhibitory potency when comparing the difference in gastric acidity 'with' versus 'without' omeprazole. When the results were expressed by simply taking into account the acid measurements while on omeprazole before versus after eradication of H. pylori, the acid inhibition with omeprazole was greater in the presence than in the absence of a H. pylori infection. The clinical significance of the small difference is not clear.

Adult↗

Dexamethasone plus glucagon-like peptide 2 given to lactating rat dams has a late effect on intestinal lipid uptake in the weanling offspring.

BACKGROUND: Glucagon-like peptide 2 (GLP-2) has a trophic effect on the intestine and enhances intestinal absorption in adult animals, but its effect in young rats is unknown. Glucocorticosteroids accelerate the ontogeny of the intestine, and in adult animals they increase the uptake of sugars and lipids. We hypothesized that GLP-2 and dexamethasone (DEX), when administrated to lactating rat dams, will enhance lipid uptake in the suckling and weanling offspring. METHODS: Eight nursing rats were treated during lactation, 19 to 21 days, with GLP-2 (0.1 microg/g/d subcutaneously [s.c.]), DEX (0.128 microg/g/d s.c.), GLP-2 + DEX (GLP-2 0.1 microg/g/d s.c. plus DEX 0.128 microg/g/d s.c.), or placebo. Half of the offspring ("sucklings") were killed at 19 to 21 days of age, and half were killed 4 weeks later ("weanlings"). The rate of intestinal uptake of fatty acids (12:0, lauric; 16:0, palmitic; 18:0, stearic; 18:1, oleic; 18:2, linoleic; and 18:3, linolenic) and cholesterol were assessed using an in vitro ring technique. RESULTS: GLP-2 and DEX resulted in loss of body weight in sucklings, which was prevented by giving the combination GLP-2 + DEX. The jejunal atrophy in sucklings given DEX was prevented by giving GLP-2 + DEX, but GLP-2 + DEX did not prevent the decline in jejunal and ileal villous height and crypt depth observed in weanlings given DEX. GLP-2 had little effect on lipid uptake in sucklings, whereas DEX or GLP-2 + DEX increased the uptake of lipids. In contrast, in weanlings there was malabsorption of several lipids with GLP-2 or GLP-2 + DEX, but not with DEX. Lipid uptake was lower in weanlings than in sucklings, and this age-associated decline was not altered by GLP-2 or DEX. CONCLUSIONS: The loss of body weight and the jejunal atrophy induced by DEX in sucklings is prevented by adding GLP-2. Giving DEX or GLP-2 + DEX to lactating mothers enhances lipid uptake in their suckling offspring. In marked contrast, a month after lactating dams were given GLP-2 or GLP-2 + DEX, there was reduced lipid absorption in the postweaning animals. Thus, giving GLP-2 + DEX during lactation may be useful to enhance lipid uptake in the suckling offspring, without adverse effects on body weight or intestinal characteristics. However, the late effects of this treatment on lipid absorption were of concern, and could be potentially deleterious to the nutritional well-being of the animal.

Animals↗