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1
Evidence for a substrate cycle between AMP and adenosine in isolated hepatocytes.分离的肝细胞中AMP与腺苷之间底物循环的证据。
Proc Natl Acad Sci U S A. 1983 May;80(10):2829-33. doi: 10.1073/pnas.80.10.2829.
2
Purine catabolism in isolated rat hepatocytes. Influence of coformycin.离体大鼠肝细胞中的嘌呤分解代谢。助间霉素的影响。
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3
Mechanisms of elevation of adenosine levels in anoxic hepatocytes.缺氧肝细胞中腺苷水平升高的机制。
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6
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7
The rate of the AMP/adenosine substrate cycle in concanavalin-A-stimulated rat lymphocytes.伴刀豆球蛋白A刺激的大鼠淋巴细胞中AMP/腺苷底物循环的速率。
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Fructose-induced adenine nucleotide catabolism in isolated rat hepatocytes.果糖诱导的离体大鼠肝细胞腺嘌呤核苷酸分解代谢
Can J Biochem. 1977 Dec;55(12):1237-40. doi: 10.1139/o77-185.

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本文引用的文献

1
5'-Nucleotidase of rat liver microsomes.大鼠肝脏微粒体的5'-核苷酸酶
J Biol Chem. 1960 Feb;235:471-4.
2
The enzymatic synthesis of S-adenosyl-L-homocysteine from adenosine and homocysteine.由腺苷和同型半胱氨酸通过酶促合成S-腺苷-L-同型半胱氨酸。
J Biol Chem. 1959 Mar;234(3):603-8.
3
Purine catabolism in isolated rat hepatocytes. Influence of coformycin.离体大鼠肝细胞中的嘌呤分解代谢。助间霉素的影响。
Biochem J. 1980 Jun 15;188(3):913-20. doi: 10.1042/bj1880913.
4
Role of S-adenosylhomocysteine hydrolase in adenosine metabolism in mammalian heart.S-腺苷同型半胱氨酸水解酶在哺乳动物心脏腺苷代谢中的作用。
Biochem J. 1981 Apr 15;196(1):65-70. doi: 10.1042/bj1960065.
5
The pathway of adenine nucleotide catabolism and its control in isolated rat hepatocytes subjected to anoxia.缺氧条件下分离的大鼠肝细胞中腺嘌呤核苷酸分解代谢途径及其调控。
Biochem J. 1982 Jan 15;202(1):117-23. doi: 10.1042/bj2020117.
6
Inactivation of S-adenosylhomocysteine hydrolase by 9-beta-D-arabinofuranosyladenine in intact cells.在完整细胞中9-β-D-阿拉伯呋喃糖基腺嘌呤对S-腺苷同型半胱氨酸水解酶的失活作用
Cancer Res. 1982 Mar;42(3):1130-6.
7
Adenosine metabolism: modification by S-adenosylhomocysteine and 5'-methylthioadenosine.腺苷代谢:由S-腺苷同型半胱氨酸和5'-甲硫基腺苷修饰
Arch Biochem Biophys. 1982 Apr 15;215(1):302-8. doi: 10.1016/0003-9861(82)90308-3.
8
Adenosine production inside rat polymorphonuclear leucocytes.大鼠多形核白细胞内腺苷的产生
Biochem J. 1981 Nov 15;200(2):399-403. doi: 10.1042/bj2000399.
9
Different sites of adenosine formation in the heart.心脏中腺苷形成的不同位点。
Am J Physiol. 1981 Jun;240(6):H963-70. doi: 10.1152/ajpheart.1981.240.6.H963.
10
Purification and some properties of cytosol 5'-nucleotidase from rat liver.大鼠肝脏胞质溶胶5'-核苷酸酶的纯化及某些性质
Biochim Biophys Acta. 1981 Feb 13;657(2):402-10. doi: 10.1016/0005-2744(81)90326-0.

分离的肝细胞中AMP与腺苷之间底物循环的证据。

Evidence for a substrate cycle between AMP and adenosine in isolated hepatocytes.

作者信息

Bontemps F, Van den Berghe G, Hers H G

出版信息

Proc Natl Acad Sci U S A. 1983 May;80(10):2829-33. doi: 10.1073/pnas.80.10.2829.

DOI:10.1073/pnas.80.10.2829
PMID:6304684
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC393925/
Abstract

The effect of adenosine on the metabolism of prelabeled adenine nucleotides was investigated in isolated hepatocytes. Adenosine caused an approximately equal to 2-fold increase in the ATP content of the cells. This effect was in part counteracted by an increased rate of adenine nucleotide catabolism that could be explained by a stimulation of both AMP deaminase (AMP aminohydrolase, EC 3.5.4.6) and the cytoplasmic 5'-nucleotidase (5'-ribonucleotide phosphohydrolase, EC 3.1.3.5) because of the increased concentration of ATP. The unexpected finding that labeled adenosine was formed immediately after the addition of the unlabeled nucleoside could be explained by the trapping effect of adenosine. An accumulation of labeled adenosine was observed also in the presence of 5-iodotubercidin, a potent inhibitor of adenosine kinase (ATP:adenosine 5'-phosphotransferase, EC 2.7.1.20). Under these conditions, there was a decrease in the concentration of ATP in the cell and a 2- to 3-fold increase in the rate of formation of allantoin. This formation of adenosine was only slightly decreased by inhibition of the membranous 5'-nucleotidase; it led to the accumulation of S-adenosylhomocysteine in the presence of coformycin and an excess of L-homocysteine. It was concluded that, under basal conditions, the cytoplasmic 5'-nucleotidase present in the liver cell continuously produces adenosine, which is immediately reconverted into AMP by adenosine kinase, without giving rise to allantoin. This futile cycle between AMP and adenosine amounts to at least 20 nmol/min per g of liver and, thus, exceeds the basic rate of allantoin formation.

摘要

在分离的肝细胞中研究了腺苷对预先标记的腺嘌呤核苷酸代谢的影响。腺苷使细胞内ATP含量增加了约2倍。这一效应部分被腺嘌呤核苷酸分解代谢速率的增加所抵消,这可以通过ATP浓度升高对AMP脱氨酶(AMP氨基水解酶,EC 3.5.4.6)和细胞质5'-核苷酸酶(5'-核糖核苷酸磷酸水解酶,EC 3.1.3.5)的刺激来解释。添加未标记的核苷后立即形成标记腺苷这一意外发现可以用腺苷的捕获效应来解释。在5-碘结核菌素(一种腺苷激酶的有效抑制剂,ATP:腺苷5'-磷酸转移酶,EC 2.7.1.20)存在的情况下,也观察到标记腺苷的积累。在这些条件下,细胞内ATP浓度降低,尿囊素形成速率增加2至3倍。抑制膜性5'-核苷酸酶只会使腺苷的形成略有减少;在助间霉素和过量L-同型半胱氨酸存在的情况下,它会导致S-腺苷同型半胱氨酸的积累。得出的结论是,在基础条件下,肝细胞中存在的细胞质5'-核苷酸酶持续产生腺苷,腺苷激酶会立即将其重新转化为AMP,而不会产生尿囊素。AMP和腺苷之间的这种无效循环至少为每克肝脏20 nmol/分钟,因此超过了尿囊素形成的基本速率。