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Glitazones regulate glutamine metabolism by inducing a cellular acidosis in MDCK cells
Greg Coates1, Itzhak Nissim, Harold Battarbee
1Departments of Molecular and Cellular Physiology, Louisiana State University Health Science Center, Shreveport, Louisiana 71130, USA.
Abstract:
We studied the effect of the antihyperglycemic glitazones, ciglitazone, troglitazone, and rosiglitazone, on glutamine metabolism in renal tubule-derived Madin-Darby canine kidney (MDCK) cells. Troglitazone (25 microM) enhanced glucose uptake and lactate production by 108 and 92% (both P < 0.001). Glutamine utilization was not inhibited, but alanine formation decreased and ammonium formation increased (both P < 0.005). The decrease in net alanine formation occurred with a change in alanine aminotransferase (ALT) reactants, from close to equilibrium to away from equilibrium, consistent with inhibition of ALT activity. A shift of glutamine's amino nitrogen from alanine into ammonium was confirmed by using L-[2-(15)N]glutamine and measuring the [(15)N]alanine and [(15)N]ammonium production. The glitazone-induced shift from alanine to ammonium in glutamate metabolism was dose dependent, with troglitazone being twofold more potent than rosiglitazone and ciglitazone. All three glitazones induced a spontaneous cellular acidosis, reflecting impaired acid extrusion in responding to both an exogenous (NH) and an endogenous (lactic acid) load. Our findings are consistent with glitazones inducing a spontaneous cellular acidosis associated with a shift in glutamine amino nitrogen metabolism from predominantly anabolic into a catabolic pathway.
Insights
Glitazones alter kidney cell metabolism, shifting glutamine use from building blocks to waste. This leads to cellular acidosis, impacting kidney function.
Area of Science:
- Biochemistry
- Cell Biology
- Nephrology
Background:
- Glitazones are antihyperglycemic agents.
- Their effect on kidney cell metabolism is not fully understood.
Purpose of the Study:
- To investigate the impact of glitazones on glutamine metabolism in kidney cells.
- To determine the effects of ciglitazone, troglitazone, and rosiglitazone on Madin-Darby canine kidney (MDCK) cells.
Main Methods:
- Utilized Madin-Darby canine kidney (MDCK) cells.
- Administered glitazones (ciglitazone, troglitazone, rosiglitazone).
- Measured glucose uptake, lactate, alanine, and ammonium production.
- Used L-[2-(15)N]glutamine to trace nitrogen metabolism.
- Assessed alanine aminotransferase (ALT) activity and cellular pH.
Main Results:
- Troglitazone significantly increased glucose uptake and lactate production.
- Glutamine utilization was unaffected, but alanine formation decreased while ammonium formation increased.
- Glitazones inhibited alanine aminotransferase (ALT) activity, shifting nitrogen from alanine to ammonium.
- This metabolic shift was dose-dependent and more potent with troglitazone.
- Glitazones induced cellular acidosis due to impaired acid extrusion.
Conclusions:
- Glitazones induce cellular acidosis in kidney cells.
- They shift glutamine metabolism from anabolic to catabolic pathways.
- This metabolic alteration may contribute to the side effects of glitazones.