Affiliation:
1. Department of Biochemistry, State University of Maringá, Maringá 87020900, Brazil
Abstract
The actions of Eli Lilly-rDNA glucagon and Novo Nordisk-rDNA glucagon on glycogen catabolism and related parameters were investigated using the bivascularly perfused rat liver. The technique allows glucagon to be supplied to a selective portion of the hepatic periportal region (≈39%) when the former is infused into the hepatic artery in retrograde perfusion. Both glucagon preparations were equally effective in influencing metabolism (glucose output, glycolysis and O2 uptake) when supplied to all cells along the liver sinusoids. When only a selective periportal region of the liver was supplied with the hormone, however, the action of Novo Nordisk-rDNA glucagon was proportional to the accessible cell space, whereas the action of Eli Lilly-rDNA glucagon greatly exceeded the action that was expected for the accessible space. Chromatographically, both rDNA preparations were not pure, but their impurities were not the same. The impurities in Eli Lilly-rDNA glucagon resembled those found in the similarly acting pancreatic Eli Lilly glucagon. It was concluded that the space-extrapolating action of Eli Lilly-rDNA glucagon is caused by a yet-to-be-identified impurity. The hypothesis was raised that an impurity in certain glucagon preparations can enhance cell-to-cell propagation of the glucagon signal, possibly via gap junctional communication.
Funder
Conselho Nacional de Desenvolvimento Cientifico e Tecnológico
Reference35 articles.
1. Combined hepatic arterial-portal venous and hepatic arterial-hepatic venous perfusion to probe the abundance of drug metabolizing activities: Perihepatic venous O-deethylation activity for phenacetin and periportal sulfation activity for acetaminophen in the once-through rat liver preparation;Pang;J. Pharmacol. Exp. Ther.,1988
2. Zonation of the metabolic action of vasopressin in the bivascularly perfused rat liver;Schmeisch;Regul. Pept.,2005
3. The hemodynamic effects of ATP in retrograde perfusion of the bivascularly perfused rat liver;Fernandes;Liver Int.,2003
4. Jungermann, K., Kauffman, F.C., and Thurman, R.G. (1986). Regulation of Hepatic Metabolism (Intra- and Intercellular Compart-Mentation), Plenum Press. [1st ed.].
5. Zonation of gluconeogenesis from lactate and pyruvate in the rat liver studied by means of anterograde and retrograde bivascular perfusion;Bracht;Biochim. Biophys. Acta,1994