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首页> 外文期刊>The biochemical journal >Fate of glutamate carbon and nitrogen in isolated guinea-pig kidney-cortex tubules. Evidence for involvement of glutamate dehydrogenase in glutamine sythesis from glutamate
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Fate of glutamate carbon and nitrogen in isolated guinea-pig kidney-cortex tubules. Evidence for involvement of glutamate dehydrogenase in glutamine sythesis from glutamate

机译:分离的豚鼠肾皮质小管中谷氨酸碳和氮的命运。谷氨酸脱氢酶参与谷氨酰胺合成过程中的证据

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p1. The pathways and the fate of glutamate carbon and nitrogen were investigated in isolated guinea-pig kidney-cortex tubules. 2. At low glutamate concentration (1 mM), the glutamate carbon skeleton was either completely oxidized or converted into glutamine. At high glutamate concentration (5 mM), glucose, lactate and alanine were additional products of glutamate metabolism. 3. At neither concentration of glutamate was there accumulation of ammonia. 4. Nitrogen-balance calculations and the release of 14CO2 from L-[1-14C]glutamate (which gives an estimation of the flux of glutamate carbon skeleton through alpha-oxoglutarate dehydrogenase) clearly indicated that, despite the absence of ammonia accumulation, glutamate metabolism was initiated by the action of glutamate dehydrogenase and not by transamination reactions as suggested by Klahr, Schoolwerth & Bourgoignie [(1972) Am. J. Physiol. 222, 813-820] and Preuss [(1972) Am. J. Physiol. 222, 1395-1397]. Additional evidence for this was obtained by the use of (i) amino-oxyacetate, an inhibitor of transaminases, which did not decrease glutamate removal, or (ii) L-methionine DL-sulphoximine, an inhibitor of glutamine synthetase, which caused an accumulation of ammonia from glutamate. 5. Addition of NH4Cl plus glutamate caused an increase in both glutamate removal and glutamine synthesis, demonstrating that the supply of ammonia via glutamate dehydrogenase is the rate-limiting step in glutamine formation from glutamate. NH4Cl also inhibited the flux of glutamate through glutamate dehydrogenase and the formation of glucose, alanine and lactate. 6. The activities of enzymes possibly involved in the glutamate conversion into pyruvate were measured in guinea-pig renal cortex. 7. Renal arteriovenous-difference measurements revealed that in vivo the guinea-pig kidney adds glutamine and alanine to the circulating blood./p
机译:> 1。在分离的豚鼠肾皮质小管中研究了谷氨酸碳和氮的途径和命运。 2.在低谷氨酸浓度(1 mM)下,谷氨酸碳骨架被完全氧化或转化为谷氨酰胺。在高谷氨酸浓度(5 mM)下,葡萄糖,乳酸和丙氨酸是谷氨酸代谢的附加产物。 3.在谷氨酸浓度都不存在的情况下,氨的积累。 4.氮平衡计算和L- [1-14C]谷氨酸释放的14CO2(估计了通过α-氧代谷氨酸脱氢酶的谷氨酸碳骨架通量)清楚地表明,尽管没有氨积累,谷氨酸代谢是通过谷氨酸脱氢酶的作用而不是由Klahr,Schoolwerth& amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; amp; 2提出的转氨反应来引发的。 Bourgoignie [(1972)Am。 J.生理学。 222,813-820]和Preuss [(1972)Am。 J.生理学。 222,1395-1397]。使用(i)转氨酶抑制剂氨基-氧乙酸盐不会降低谷氨酸的去除,或(ii)谷氨酰胺合成酶抑制剂L-甲硫氨酸DL-磺胺嘧啶,会引起积累,从而获得了其他证据。谷氨酸中的氨5. NH4Cl加谷氨酸盐的加入导致谷氨酸盐去除和谷氨酰胺合成的增加,这表明通过谷氨酸盐脱氢酶的氨供应是谷氨酸盐形成谷氨酰胺的限速步骤。 NH4Cl还通过谷氨酸脱氢酶抑制谷氨酸通量以及葡萄糖,丙氨酸和乳酸盐的形成。 6.在豚鼠肾皮质中测量了可能与谷氨酸转化为丙酮酸有关的酶的活性。 7.肾脏动静脉差异的测量显示,豚鼠肾脏在体内向循环血液中添加了谷氨酰胺和丙氨酸。

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