The world's first wiki where authorship really matters (Nature Genetics, 2008). Due credit and reputation for authors. Imagine a global collaborative knowledge base for original thoughts. Search thousands of articles and collaborate with scientists around the globe.
wikigene or wiki gene protein drug chemical gene disease author authorship tracking collaborative publishing evolutionary knowledge reputation system wiki2.0 global collaboration genes proteins drugs chemicals diseases compound
Hoffmann, R. A wiki for the life sciences where authorship matters. Nature Genetics (2008)
 
 
 
 
 

Evidence for preferential stimulation of gastric inhibitory polypeptide secretion in the rat by actively transported carbohydrates and their analogues.

A rat intestinal perfusion technique has been used to assess the ability of a number of monosaccharides, monosaccharide analogues and disaccharides to stimulate intestinal release of immunoreactive gastric inhibitory polypeptide ( GIP). Perfusates containing glucose, sucrose, galactose, maltose, 3-O-methylglucose or alpha- or beta- methylglucoside at concentrations of 100 mmol/l in Krebs-Ringer phosphate buffer (KRP) produced significant stimulation of GIP release compared with the control perfusions with KRP alone (P less than 0.02). Mannose, 6-deoxygalactose, 2-deoxyglucose, myoinositol, fructose or lactose (100 mmol/l of each) did not stimulate GIP release compared with controls. There was no significant difference in the ability of sucrose, maltose or beta-methylglucoside (100 mmol/l of ach) to release GIP compared with 100 mmol glucose/l, but galactose, 3-O-methylglucose and alpha-methylglucoside (100 mmol/l of each) produced significantly lower GIP responses than did glucose (P less than 0.02). Addition of 5 mmol phloridzin/l to a perfusate containing 50 mmol glucose/l prevented intestinal absorption of glucose and abolished the GIP response. The molecular configuration of monosaccharides which have the ability to stimulate GIP release agreed well with the structural requirements for active transport by the sodium-dependent hexose pathway.[1]

References

 
WikiGenes - Universities