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Glycoconjugates As Noninvasive Probes of Intrahepatic Metabolism: Pathways of Glucose Entry into Compartmentalized Hepatic UDP-glucose Pools During Glycogen Accumulation

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Specialty Science
Date 1986 Sep 1
PMID 3462741
Citations 15
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Abstract

Recent studies have questioned the efficiency with which administered glucose generates hepatic glycogen through the direct nonrecycling route compared with the indirect route from glucose recycled through glycolysis followed by gluconeogenesis. Using fasted and refed rats, we examined the relative access of infused [1-3H]- and [U-14C]glucose by way of these two pathways to liver glycogen and to hepatic glucuronic acid, the latter recovered from the urine as the glucuronide conjugated with administered acetaminophen. In fasted animals and during early refeeding, extensive dilution of administered [3H]- and [14C]glucose recovered in glycogen showed that 60-70% of the labeled glucose had undergone recycling by the indirect route. As refeeding progressed with substantial glycogen deposition, the contribution of the recycling pathway to glycogen and glucuronic acid diminished considerably. Thus, there is a shift in pathways of hepatic glucose utilization as liver glycogen accumulates. Consequently, the ratio of 3H/14C in glucuronic acid was closely correlated with the glycogen content of the liver at sacrifice, indicating that this ratio may prove useful as a noninvasive indicator of liver glycogen concentration. Since glycogen and glucuronic acid are derived by single reactions from UDP-glucose, they should show a common labeling pattern with 3H and 14C under various nutritional conditions. However, detailed analysis of their labeling patterns showed a striking divergence, implying that there must be compartmentation of the UDP-glucose pools leading to each of these end products, either because they are made in separate compartments within the same cell or because each is made in different hepatocyte populations. We favor the former explanation because galactose secreted in glycoproteins shows 3H and 14C labeling patterns similar to those of glucuronic acid conjugated with acetaminophen, and both of these conjugations occur in the endoplasmic reticulum of the liver, whereas most glycogen is present in the cytosol.

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References
1.
Katz J, McGarry J . The glucose paradox. Is glucose a substrate for liver metabolism?. J Clin Invest. 1984; 74(6):1901-9. PMC: 425376. DOI: 10.1172/JCI111610. View

2.
OLAVARRIA J, Godeken O, Sandruss R, Flawia M . Recovery of the liver glycogen in fasted rats. Biochim Biophys Acta. 1968; 165(1):183-8. View

3.
Boyd M, Albright E, Foster D, McGarry J . In vitro reversal of the fasting state of liver metabolism in the rat. Reevaluation of the roles of insulin and glucose. J Clin Invest. 1981; 68(1):142-52. PMC: 370782. DOI: 10.1172/jci110230. View

4.
HERS H . The conversion of fructose-1-C14 and sorbitol-1-C14 to liver and muscle glycogen in the rat. J Biol Chem. 1955; 214(1):373-81. View

5.
Shulman G, Rothman D, Smith D, Johnson C, Blair J, Shulman R . Mechanism of liver glycogen repletion in vivo by nuclear magnetic resonance spectroscopy. J Clin Invest. 1985; 76(3):1229-36. PMC: 424028. DOI: 10.1172/JCI112078. View