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1
Analysis and physiological implications of renal 2-oxoglutaramate metabolism.肾脏2-氧代戊二酸代谢的分析及其生理意义
Biochem J. 1991 Jul 1;277 ( Pt 1)(Pt 1):33-8. doi: 10.1042/bj2770033.
2
Ammoniagenesis by cultured human renal cortical epithelial cells: study with 15N.培养的人肾皮质上皮细胞的氨生成:用15N进行的研究
Am J Physiol. 1989 Jan;256(1 Pt 2):F187-96. doi: 10.1152/ajprenal.1989.256.1.F187.
3
Relative role of the glutaminase, glutamate dehydrogenase, and AMP-deaminase pathways in hepatic ureagenesis: studies with 15N.谷氨酰胺酶、谷氨酸脱氢酶和AMP脱氨酶途径在肝脏尿素生成中的相对作用:用15N进行的研究
Arch Biochem Biophys. 1992 Feb 1;292(2):393-401. doi: 10.1016/0003-9861(92)90008-k.
4
Characterization of amino acid metabolism by cultured rat kidney cells: study with 15N.培养的大鼠肾细胞氨基酸代谢的特征:用15N进行的研究
Am J Physiol. 1987 Dec;253(6 Pt 2):F1243-52. doi: 10.1152/ajprenal.1987.253.6.F1243.
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Adaptation of renal tricarboxylic acid cycle metabolism to various acid-base states: study with [3-13C,5-15N]glutamine.肾脏三羧酸循环代谢对各种酸碱状态的适应性:使用[3-¹³C,5-¹⁵N]谷氨酰胺的研究
Miner Electrolyte Metab. 1991;17(1):21-31.
6
Regulation of [15N]urea synthesis from [5-15N]glutamine. Role of pH, hormones, and pyruvate.由[5-15N]谷氨酰胺合成[15N]尿素的调节。pH、激素和丙酮酸的作用。
J Biol Chem. 1996 Dec 6;271(49):31234-42. doi: 10.1074/jbc.271.49.31234.
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Hormonal regulation of glutamine metabolism by OK cells.OK细胞对谷氨酰胺代谢的激素调节
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8
Pathways of acute pH regulation of ammoniagenesis in LLC-PK1 cells: study with [15N]glutamine.LLC-PK1细胞中氨生成急性pH调节途径:用[15N]谷氨酰胺进行的研究
Am J Physiol. 1991 Sep;261(3 Pt 2):F481-7. doi: 10.1152/ajprenal.1991.261.3.F481.
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The intensity of acidosis differentially alters the pathways of ammoniagenesis in LLC-PK1 cells.酸中毒的强度会以不同方式改变LLC - PK1细胞中的氨生成途径。
Kidney Int. 1994 Apr;45(4):1014-9. doi: 10.1038/ki.1994.137.
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Metabolism of glutamine and glutamate by rat renal tubules. Study with 15N and gas chromatography-mass spectrometry.大鼠肾小管对谷氨酰胺和谷氨酸的代谢。用¹⁵N和气相色谱-质谱联用技术进行的研究。
J Biol Chem. 1985 Nov 15;260(26):13955-67.

引用本文的文献

1
α-Ketoglutaramate: an overlooked metabolite of glutamine and a biomarker for hepatic encephalopathy and inborn errors of the urea cycle.α-酮戊二酸:一种被忽视的谷氨酰胺代谢产物以及肝性脑病和尿素循环先天性代谢缺陷的生物标志物。
Metab Brain Dis. 2014 Dec;29(4):991-1006. doi: 10.1007/s11011-013-9444-9. Epub 2013 Nov 14.
2
Urinary 2-hydroxy-5-oxoproline, the lactam form of α-ketoglutaramate, is markedly increased in urea cycle disorders.尿液中 2-羟基-5-氧代脯氨酸,即α-酮戊二酸的内酰胺形式,在尿素循环障碍中显著增加。
Anal Bioanal Chem. 2011 Jun;400(7):1843-51. doi: 10.1007/s00216-011-4688-x. Epub 2011 Feb 6.
3
Phosphate-activated glutaminase and mitochondrial glutamine transport in the brain.大脑中的磷酸激活谷氨酰胺酶和线粒体谷氨酰胺转运
Neurochem Res. 2000 Oct;25(9-10):1407-19. doi: 10.1023/a:1007668801570.
4
A 1H/15N n.m.r. study of nitrogen metabolism in cultured mammalian cells.一项关于培养的哺乳动物细胞中氮代谢的1H/15N核磁共振研究。
Biochem J. 1993 Apr 15;291 ( Pt 2)(Pt 2):485-92. doi: 10.1042/bj2910485.

本文引用的文献

1
omega-Amide and omega-amino acid derivatives of alpha-ketoglutaric and oxalacetic acids.α-酮戊二酸和草酰乙酸的ω-酰胺及ω-氨基酸衍生物。
J Biol Chem. 1957 Jan;224(1):137-48.
2
The role of microcompartmentation in the regulation of glutamate metabolism by rat kidney mitochondria.微区室化在大鼠肾线粒体谷氨酸代谢调节中的作用
J Biol Chem. 1980 Apr 25;255(8):3403-11.
3
Function of renal gamma-glutamyltransferase: significance of glutathione and glutamine interactions.肾γ-谷氨酰转移酶的功能:谷胱甘肽与谷氨酰胺相互作用的意义
Life Sci. 1982 Mar 8;30(10):793-801. doi: 10.1016/0024-3205(82)90591-4.
4
Pathways of glutamine deamination and their control in the rat kidney.大鼠肾脏中谷氨酰胺脱氨基途径及其调控
Am J Physiol. 1967 Oct;213(4):983-9. doi: 10.1152/ajplegacy.1967.213.4.983.
5
Gluconeogenesis in the kidney cortex. Effects of D-malate and amino-oxyacetate.肾皮质中的糖异生作用。D-苹果酸和氨基氧乙酸的影响。
Biochem J. 1970 Feb;116(3):483-91. doi: 10.1042/bj1160483.
6
Rat liver omega-amidase. Purification and properties.大鼠肝脏ω-酰胺酶。纯化及性质
Biochemistry. 1971 Jul 20;10(15):2884-91. doi: 10.1021/bi00791a014.
7
Regulation of glutamine metabolism in dog kidney in vivo.犬肾中谷氨酰胺代谢的体内调节
Kidney Int. 1986 Jan;29(1):68-79. doi: 10.1038/ki.1986.9.
8
Aminoglycoside nephrotoxicity.氨基糖苷类肾毒性。
Kidney Int. 1988 Apr;33(4):900-11. doi: 10.1038/ki.1988.83.
9
Characterization of amino acid metabolism by cultured rat kidney cells: study with 15N.培养的大鼠肾细胞氨基酸代谢的特征:用15N进行的研究
Am J Physiol. 1987 Dec;253(6 Pt 2):F1243-52. doi: 10.1152/ajprenal.1987.253.6.F1243.
10
Metabolism of glutamine and glutamate by rat renal tubules. Study with 15N and gas chromatography-mass spectrometry.大鼠肾小管对谷氨酰胺和谷氨酸的代谢。用¹⁵N和气相色谱-质谱联用技术进行的研究。
J Biol Chem. 1985 Nov 15;260(26):13955-67.

肾脏2-氧代戊二酸代谢的分析及其生理意义

Analysis and physiological implications of renal 2-oxoglutaramate metabolism.

作者信息

Nissim I, Wehrli S, States B, Nissim I, Yudkoff M

机构信息

Division of Biochemical Development and Molecular Diseases, Children's Hospital of Philadelphia, PA.

出版信息

Biochem J. 1991 Jul 1;277 ( Pt 1)(Pt 1):33-8. doi: 10.1042/bj2770033.

DOI:10.1042/bj2770033
PMID:1854345
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1151187/
Abstract

The relative significance of the flux through the glutamine aminotransferase (glutaminase II) pathway to renal ammoniagenesis is poorly understood. A basic and unresolved question is whether 2-oxoglutaramate (2-OGM), a product of the glutaminase II reaction, is deamidated to yield 2-oxoglutarate and NH3, or whether 2-OGM accumulates as an unreactive lactam, depending on the environmental pH. In the current studies we utilized 13C n.m.r. as well as 15N n.m.r. as well as 15N n.m.r. to demonstrate that 2-OGM occurs as a lactam, i.e. 5-hydroxypyroglutamate, regardless of the environmental pH. Our additional aims were to determine whether human kidney cells (HK cells) in culture can produce 2-OGM and to ascertain a pH-dependent relationship between NH3 and 2-OGM production from glutamine. We therefore developed an isotope dilution assay for 2-OGM utilizing 5-hydroxy[4-13C,1-15N]pyroglutamate as the labelled species. Incubations of HK cells in minimal essential medium supplemented with 1 mM-[2-15N]glutamine demonstrated significantly higher production of 2-OGM at pH 6.8 and lower production at pH 7.6 compared with pH 7.4. Similarly both 15NH3 and [15N]alanine formation were significantly higher in acute acidosis (pH 6.8) and lower in acute alkalosis (pH 7.6) compared with that at physiological pH. Addition of 1 mM-amino-oxyacetate to the incubation medium at pH 7.4 significantly diminished [15N]alanine and 2-OGM production, but the production of 15NH3 via the glutamate dehydrogenase pathway was significantly stimulated. The current observations indicate that the glutaminase II pathway plays a minor role and that flux through glutamate dehydrogenase is the predominant site for regulation of ammoniagenesis in human kidney.

摘要

谷氨酰胺转氨酶(谷氨酰胺酶II)途径对肾脏氨生成的相对重要性目前还知之甚少。一个基本且尚未解决的问题是,谷氨酰胺酶II反应的产物2-氧代谷氨酰胺(2-OGM)是脱酰胺生成2-氧代戊二酸和NH3,还是根据环境pH值以无反应性的内酰胺形式积累。在当前的研究中,我们利用13C核磁共振以及15N核磁共振来证明,无论环境pH值如何,2-OGM均以内酰胺形式存在,即5-羟基焦谷氨酸。我们的其他目标是确定培养的人肾细胞(HK细胞)是否能产生2-OGM,并确定谷氨酰胺产生NH3和2-OGM之间的pH依赖性关系。因此,我们开发了一种以5-羟基[4-13C,1-15N]焦谷氨酸为标记物的2-OGM同位素稀释测定法。在补充了1 mM-[2-15N]谷氨酰胺的最低必需培养基中培养HK细胞,结果显示,与pH 7.4相比,在pH 6.8时2-OGM的产量显著更高,而在pH 7.6时产量更低。同样,与生理pH值相比,急性酸中毒(pH 6.8)时15NH3和[15N]丙氨酸的生成均显著更高,而急性碱中毒(pH 7.6)时则更低。在pH 7.4的孵育培养基中添加1 mM氨基氧乙酸可显著减少[15N]丙氨酸和2-OGM的生成,但通过谷氨酸脱氢酶途径产生的15NH3则受到显著刺激。目前的观察结果表明,谷氨酰胺酶II途径起次要作用,而通过谷氨酸脱氢酶的通量是调节人肾氨生成的主要部位。