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T Nabeshima

Publications and source records attributed to T Nabeshima.

434 records · Page 25Linked to original sources

The disposition and renal handling of enprofylline in endotoxemic rats by bacterial lipopolysaccharide (LPS).

The effects of lipopolysaccharide (LPS), isolated from Klebsiella pneumoniae (O3:K1-), on the pharmacokinetic behavior and renal handling of enprofylline, which is mainly excreted into the urine by an active tubular secretion mechanism, were investigated in rats. LPS (50 and 250 micrograms/kg) was infused for 20 to 30 min 2 hr before an intravenous administration of enprofylline (2.5 mg/kg). LPS induced a decrease in the systemic clearance and an increase in the volume of distribution at the steady state of enprofylline without any histological changes in the kidneys. No changes in the protein-binding parameters of enprofylline were observed between the control and LPS-pretreated groups, although LPS slightly decreased the albumin concentration in plasma. LPS caused decreases in the apparent maximum capacity of transport (Vmax) from 71.24 to 15.02 micrograms/min, in the Michaelis-Menten constant (KM) from 3.04 to 1.42 micrograms/ml, and in the glomerular filtration rate as estimated for inulin clearance from 3.10 to 1.87 ml/min. These results indicate that LPS decreases both the affinity and capacity of the tubular transport system, and in turn decreases the tubular secretory intrinsic clearance of enprofylline as shown by Vmax/KM. The mechanism for inducing changes in the pharmacokinetic behavior and renal handling of enprofylline by LPS may be related to the effects of LPS on tubular secretion of enprofylline and its distribution in the organs and peripheral tissues.

Animals↗

Renal excretion of famotidine and role of adenosine in renal failure induced by bacterial lipopolysaccharide in rats.

Our previous studies have reported that bacterial lipopolysaccharide (LPS) dramatically changes the ability of the active tubular anion secretory system in rats. The present study has investigated the effects of LPS on the pharmacokinetics and renal handling of famotidine, an organic cation drug excreted primarily by an active tubular secretion mechanism in rats. The role of adenosine in the LPS-induced renal failure was also investigated using theophylline, an adenosine antagonist. Pretreatment with LPS (250 micrograms/kg) significantly decreased the steady-state volume of distribution, systemic clearance, and renal clearance (CLr) of famotidine, but not nonrenal clearance. No significant differences in total urinary recovery of unchanged famotidine were observed between treatments. Pretreatment with LPS significantly decreased the glomerular filtration rate (GFR), estimated as inulin clearance. LPS increased the clearance ratio of famotidine (CLr/GFR), but not the net tubular secretion, indicating that LPS has little or no effect on the active tubular cation secretory system. Theophylline (10 mg/kg) improved LPS-induced decrease in GFR without causing any changes in the pharmacokinetic parameters of famotidine. These findings provide further evidence that LPS produces different effects on the distribution and the active tubular secretory systems of anion and cation drugs, and that adenosine may play an important role in the induction of renal failure by LPS.

Animals↗