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Biomedical subjects

M C Subang

Publications and source records attributed to M C Subang.

3 recordsLinked to original sources

Delay of CNTF decrease following peripheral nerve injury in C57BL/Wld mice.

In peripheral nerves, ciliary neurotrophic factor (CNTF) is localized to a subset of Schwann cells and is decreased in synthesis during Wallerian degeneration. This pattern of expression is similar to that of myelin protein genes. In the present study, C57BL/Wld mice, which exhibit delayed Wallerian degeneration, were used to determine the role of axonal contact on the regulation of CNTF synthesis. Western blot analysis showed that CNTF immunoreactivity in Wld nerves remained almost normal even 10 days after ligation when it was almost undetectable in control mice. Reverse transcriptase polymerase chain reaction (RT-PCR) analysis revealed that 4 days after ligation, concentrations of CNTF mRNA in Wld mice had decreased much less than in control mice, but that at 10 days CNTF mRNA concentrations in Wld and control mice were comparably low. These observations suggest that maintenance of axonal contact in the absence of axonal transport from the cell body delays the decrease of CNTF mRNA normally seen after injury. Also, during Wallerian degeneration in Wld mice, the decrease of CNTF protein is delayed for many days longer than the decrease in CNTF mRNA.

Animals

Possible role of mevalonate in the hypercholesterolemia seen in experimental chronic renal failure.

Hypercholesterolemia may contribute to the pathogenesis of atherosclerosis associated with chronic renal failure (CRF). The mechanism underlying CRF-induced hypercholesterolemia, however, is still unknown. Mevalonate is the direct product of the rate-limiting step in cholesterol synthesis which is catalyzed by 3-hydroxy-3-methylglutaryl coenzyme A reductase. We studied the changes in mevalonate metabolism in a mouse model of CRF in which serum total cholesterol levels are directly correlated with the degree of severity of the disease as measured by serum urea levels. The results of these experiments indicated that in CRF mice, the urine mevalonate levels were significantly lower, while serum mevalonate and total cholesterol levels were significantly higher than in normal mice. We believe that by restricting the normal urinary excretion of mevalonate CRF results in more of this precursor being available for direct cholesterol synthesis. In addition, an increase in circulating mevalonate may upregulate the shunt pathway of mevalonate metabolism in the liver and peripheral tissues, thus providing increased levels of the substrates acetoacetate and acetyl coenzyme A for cholesterol synthesis.

Animals

Effect of lovastatin on hypercholesterolemia in chronic renal failure.

Using a mouse model of chronic renal failure (CRF), the possibility of using lovastatin to treat hypercholesterolemia associated with CRF was examined. Renal failure was induced in 5 week-old, C57BL/6J mice by electrocoagulation of the right kidney surface followed by left nephrectomy 2 weeks later. Five weeks post-nephrectomy, BUN and serum total cholesterol levels were assessed and lovastatin treatment commenced. Upon sacrifice 4 weeks later, BUN, serum total cholesterol levels and hepatic HMG-CoA reductase activity were measured. Results showed that CRF induced significant increases in serum total cholesterol levels and enzyme activity. Treatment with lovastatin led to a dose-dependent reduction in serum total cholesterol levels without affecting the enzyme activity. These results suggest that the hyper-cholesterolemia in CRF is partly due to an increase in de novo cholesterol synthesis in the liver and that the lipid-lowering effect of lovastatin is mediated by an action other than the direct reduction of hepatic HMG-CoA reductase activity.

Animals