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Diabetes, Vol 45, Issue 7 886-890, Copyright © 1996 by American Diabetes Association
Normalization by insulin treatment of low mitochondrial glycerol phosphate dehydrogenase and pyruvate carboxylase in pancreatic islets of the GK rat
MJ MacDonald, S Efendic and CG Ostenson
University of Wisconsin Childrens Diabetes Center, Madison, USA.
The enzyme activity of the mitochondrial glycerol phosphate dehydrogenase
(mGPD) in the pancreatic islet has been reported to be less than one-half
of normal in the Goto-Kakizaki (GK) rat, a genetic model of NIDDM. In the
current study, mGPD enzyme activity and the amount of mGPD protein, as
judged by Western analysis, were 35-40% of normal in the islets of these
animals. With the exception of pyruvate carboxylase, the activities of
other enzymes were not abnormal. The assayable activity and amount of
pyruvate carboxylase protein were decreased approximately 50% in the islets
of the GK rats. Because mGPD, which is the key enzyme of the glycerol
phosphate shuttle, and pyruvate carboxylase, which is the key component of
the pyruvate malate shuttle, have been proposed to be essential for
stimulus-secretion coupling in the pancreatic beta-cell, an important
question is whether the decreases in these enzymes have a causal role in
the hyperglycemia or whether the diabetic syndrome caused the decreases. To
attempt to differentiate between these two possibilities, GK rats were
treated with insulin to normalize their blood sugars. The activities of
both mGPD and pyruvate carboxylase were also normalized by insulin
treatment. An incidental discovery of this study was the identification of
a high level of propionyl-CoA carboxylase activity and a lesser amount of
methylcrotonyl-CoA carboxylase activity in pancreatic islets. These enzymes
were normal in the islets of the GK rats. This is the first report on the
presence of these two carboxylases in the islet and of low pyruvate
carboxylase activity in the islet in NIDDM. We conclude that the decreased
mGPD and pyruvate carboxylase in the pancreatic islet of the GK rat result
from the diabetic syndrome.

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Copyright © 1996 by the American Diabetes Association.
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