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骨骼中的谷氨酰胺代谢

Glutamine metabolism in bone.

作者信息

Biltz R M, Letteri J M, Pellegrino E D, Palekar A, Pinkus L M

出版信息

Miner Electrolyte Metab. 1983;9(3):125-31.

PMID:6135980
Abstract

Evidence is provided for the utilization of glutamine by calvaria and compact bone of rat. Glutamine was actively transported into calvaria, principally by sodium-dependent mechanisms; its uptake was significantly inhibited by neutral amino acids (alanine, proline, serine, asparagine) and glutamine analogs (L-glutamate-gamma-hydroxamate, albizziin). Glutamine was degraded to ammonia and glutamate by phosphate-dependent glutaminase, a mitochondrial enzyme present in both calvaria and compact bone. The enzyme exhibited an apparent Kmgln of 2.35 mM, a KactPO4 of 25 mM, and a broad pH optimum (7.5-9.5). It was inactivated by incubation of intact calvaria or bone homogenates with the glutamine analogs 6-diazo-5-oxo-L-norleucine (DON) and a 2-amino-4-oxo-5-chloropentanoic acid (chloroketone). Such treatment also severely inhibited (greater than 95%) both ammonia and 14CO2 formation from [U-14C]glutamine. Glutamate dehydrogenase, alanine aminotransferase, and aspartate aminotransferase activities were measured in bone. Amino-oxyacetate, an aminotransferase inhibitor, inhibited 14CO2 formation from [U-14C]glutamine. The data indicate that glutamine can serve as a precursor of ammonia, glutamate, other amino acids (alanine, aspartate, ornithine, proline) and carbon dioxide in bone and that phosphate-dependent glutaminase, transaminases, and citric acid cycle activity contribute to the observed metabolism.

摘要

有证据表明大鼠的颅骨和密质骨可利用谷氨酰胺。谷氨酰胺主要通过钠依赖机制被主动转运至颅骨;其摄取显著受到中性氨基酸(丙氨酸、脯氨酸、丝氨酸、天冬酰胺)和谷氨酰胺类似物(L-谷氨酸-γ-羟肟酸、合欢氨酸)的抑制。谷氨酰胺通过磷酸依赖型谷氨酰胺酶降解为氨和谷氨酸,该酶是一种存在于颅骨和密质骨中的线粒体酶。该酶的表观米氏常数Kmgln为2.35 mM,KactPO4为25 mM,最适pH范围较宽(7.5 - 9.5)。完整的颅骨或骨匀浆与谷氨酰胺类似物6-重氮-5-氧代-L-正亮氨酸(DON)和2-氨基-4-氧代-5-氯戊酸(氯酮)一起孵育会使其失活。这种处理也严重抑制(大于95%)了[U-14C]谷氨酰胺生成氨和14CO2。对骨中的谷氨酸脱氢酶、丙氨酸转氨酶和天冬氨酸转氨酶活性进行了测定。转氨酶抑制剂氨基氧乙酸抑制了[U-14C]谷氨酰胺生成14CO2。数据表明谷氨酰胺可作为骨中氨、谷氨酸、其他氨基酸(丙氨酸、天冬氨酸、鸟氨酸、脯氨酸)和二氧化碳的前体,且磷酸依赖型谷氨酰胺酶、转氨酶和柠檬酸循环活性参与了所观察到的代谢过程。

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