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1
Selenium regulation of hepatic heme metabolism: induction of delta-aminolevulinate synthase and heme oxygenase.硒对肝脏血红素代谢的调节作用:δ-氨基乙酰丙酸合酶和血红素加氧酶的诱导
Proc Natl Acad Sci U S A. 1976 Dec;73(12):4428-31. doi: 10.1073/pnas.73.12.4428.
2
Evidence for the catabolism of polychlorinated biphenyl-induced cytochrome P-448 by microsomal heme oxygenase, and the inhibition of delta-aminolevulinate dehydratase by polychlorinated biphenyls.微粒体血红素加氧酶对多氯联苯诱导的细胞色素P-448的分解代谢证据,以及多氯联苯对δ-氨基乙酰丙酸脱水酶的抑制作用。
J Exp Med. 1976 Dec 1;144(6):1509-19. doi: 10.1084/jem.144.6.1509.
3
Regulation of heme pathway enzymes and cellular glutathione content by metals that do not chelate with tetrapyrroles: blockade of metal effects by thiols.不与四吡咯螯合的金属对血红素途径酶和细胞谷胱甘肽含量的调节:硫醇对金属效应的阻断
Proc Natl Acad Sci U S A. 1977 May;74(5):1875-8. doi: 10.1073/pnas.74.5.1875.
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Cobalt inhibition of synthesis and induction of delta-aminolevulinate synthase in liver.钴对肝脏中δ-氨基乙酰丙酸合酶合成的抑制及诱导作用
Proc Natl Acad Sci U S A. 1976 May;73(5):1499-503. doi: 10.1073/pnas.73.5.1499.
5
Cobalt stimulation of heme degradation in the liver. Dissociation of microsomal oxidation of heme from cytochrome P-450.钴对肝脏中血红素降解的刺激作用。血红素微粒体氧化与细胞色素P-450的解离。
J Biol Chem. 1975 Jun 10;250(11):4171-7.
6
[Activity of key enzymes of heme synthesis and degradation and contents of cytochromes b5 and P-450 in rat liver].[大鼠肝脏血红素合成与降解关键酶的活性以及细胞色素b5和P-450的含量]
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Differential responses to inducers of delta-aminolaevulinate synthase and haem oxygenase during pregnancy.孕期对δ-氨基乙酰丙酸合酶和血红素加氧酶诱导剂的不同反应。
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The effects of succinylacetone (4,6-dioxoheptanoic acid) on delta-aminolevulinate synthase activity and the content of heme in monolayers of chick embryo liver cells.琥珀酰丙酮(4,6-二氧代庚酸)对鸡胚肝细胞单层中δ-氨基乙酰丙酸合酶活性及血红素含量的影响。
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10
Long-term effects of phenobarbital on rat liver microsomal drug-metabolizing enzymes and heme-metabolizing enzyme.苯巴比妥对大鼠肝脏微粒体药物代谢酶和血红素代谢酶的长期影响。
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引用本文的文献

1
Prolongation by selenium of pentobarbital hypnosis in the male rat.硒对雄性大鼠戊巴比妥催眠作用的延长
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2
Function and induction of the microsomal heme oxygenase.微粒体血红素加氧酶的功能与诱导
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3
Correlations of blood selenium with hematological parameters in West German adults.
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本文引用的文献

1
Protein measurement with the Folin phenol reagent.使用福林酚试剂进行蛋白质测定。
J Biol Chem. 1951 Nov;193(1):265-75.
2
THE CARBON MONOXIDE-BINDING PIGMENT OF LIVER MICROSOMES. II. SOLUBILIZATION, PURIFICATION, AND PROPERTIES.肝微粒体的一氧化碳结合色素。II. 增溶、纯化及性质
J Biol Chem. 1964 Jul;239:2379-85.
3
Microsomal triphosphopyridine nucleotide-cytochrome c reductase of liver.肝脏微粒体三磷酸吡啶核苷酸-细胞色素c还原酶
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Disturbance in porphyrin metabolism caused by feeding diethyl 1, 4-dihydro-2, 4, 6-trimethyl-pyridine-3, 5-dicarboxylate.
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Factor 3 activity of selenium compounds.硒化合物的因子3活性。
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6
The occurrence and determination of delta-amino-levulinic acid and porphobilinogen in urine.尿中δ-氨基-γ-酮戊酸和胆色素原的出现及测定
J Biol Chem. 1956 Mar;219(1):435-46.
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The colorimetric estimation of formaldehyde by means of the Hantzsch reaction.通过汉茨希反应对比色法测定甲醛。
Biochem J. 1953 Oct;55(3):416-21. doi: 10.1042/bj0550416.
8
The induction in vitro of the synthesis of delta-aminolevulinic acid synthetase in chemical porphyria: a response to certain drugs, sex hormones, and foreign chemicals.化学性卟啉症中δ-氨基-γ-酮戊酸合成酶体外合成的诱导:对某些药物、性激素和外来化学物质的反应
J Biol Chem. 1966 Mar 25;241(6):1359-75.
9
Delta-aminolevulinic acid synthetase. I. Studies in liver homogenates.δ-氨基乙酰丙酸合成酶。I. 肝脏匀浆研究
J Biol Chem. 1966 Jun 25;241(12):2803-9.
10
Purification of protein components of the clostridial glycine reductase system and characterization of protein A as a selenoprotein.梭菌属甘氨酸还原酶系统蛋白质成分的纯化及蛋白质A作为硒蛋白的特性鉴定。
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硒对肝脏血红素代谢的调节作用:δ-氨基乙酰丙酸合酶和血红素加氧酶的诱导

Selenium regulation of hepatic heme metabolism: induction of delta-aminolevulinate synthase and heme oxygenase.

作者信息

Maines M D, Kappas A

出版信息

Proc Natl Acad Sci U S A. 1976 Dec;73(12):4428-31. doi: 10.1073/pnas.73.12.4428.

DOI:10.1073/pnas.73.12.4428
PMID:826907
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC431485/
Abstract

Selenium was found to be a novel regulator of cellular heme methabolism in that the element induced both the mitochondrial enzyme delta-aminolevulinate synthase [succinyl-CoA:glycine C-succinyltransferase (decarboxylating); EC 2-3-1-37] and the microsomal enzyme heme oxygenase [heme, hydrogen-donor:oxygen oxidoreductase(alpha-methene-oxidizing, hydroxylating); EC 1-14-99-3] in liver. The effect of selenium on these enzyme activities was prompt, reaching a maximum within 2 hr after a single injection. Other changes in parameters of hepatic heme metabolism occurred after administration of the element. Thirty minutes after injection the cellular content of heme was significantly increased; however, this value slightly decreased below control values within 2 hr, coinciding with the period of rapid induction of heme oxygenase. At later peroids heme content returned to normal values. Selenium treatment caused only a slight decrease in microsomal cytochrome P-450 content. However, drug-metabolizing activity was severely inhibited by higher doses of the element. Unlike other inducers of delta-aminolevulinate synthase, which as a rule are also porphyrinogenic agents, selenium induction of this enzyme was not accompanied by an increase in the cellular content of prophyrins. When rats were pretreated with selenium 90 min before administration of heme, a potent inhibitor of delta-aminolevulinate synthase production, the inhibitory effect of heme of formation of this mitochondrial enzyme was completely blocked. Selenium, at high concentrations in vitro, was inhibitory to delta-aminolevulinate synthase activity. It is postulated that selenium may not be a direct inducer of heme oxygenase as is the case with trace metals such as cobalt, but may mediate an increase in heme oxygenase through increased production and cellular availability of "free" heme, which results from the increased heme synthetic activity of hematocytes. Subsequently, the increased heme oxygenase activity is in turn responsible for the lack of increase in the microsomal heme content, thus maintaining heme levels at normal values despite the highly increased activities of both heme oxygenase and delta-aminolevulinate synthase. It is further suggested that the increase in delta-aminolevulinate synthase activity is not due to a decreased rate of enzyme degradation or an activation of preformed enzyme, but to increased rate of synthesis of enzyme protein. Although selenium in trace amounts has been postulated to be involved in microsomal electron transfer process, the data from this study indicate that excess selenium can substantially inhibit microsomal drug metabolism.

摘要

硒被发现是细胞血红素代谢的一种新型调节因子,该元素可诱导肝脏中的线粒体酶δ-氨基乙酰丙酸合酶[琥珀酰辅酶A:甘氨酸C-琥珀酰基转移酶(脱羧);EC 2.3.1.37]和微粒体酶血红素加氧酶[血红素,氢供体:氧氧化还原酶(α-次甲基氧化,羟基化);EC 1.14.99.3]。硒对这些酶活性的影响迅速,单次注射后2小时内达到最大值。给予该元素后,肝脏血红素代谢参数出现了其他变化。注射后30分钟,细胞血红素含量显著增加;然而,该值在2小时内略低于对照值,这与血红素加氧酶快速诱导期一致。在随后的时期,血红素含量恢复到正常水平。硒处理仅使微粒体细胞色素P-450含量略有下降。然而,较高剂量的该元素严重抑制了药物代谢活性。与其他通常也是卟啉生成剂的δ-氨基乙酰丙酸合酶诱导剂不同,硒对该酶的诱导并未伴随着卟啉细胞含量的增加。当在给予血红素(一种δ-氨基乙酰丙酸合酶生成的强效抑制剂)前90分钟用硒预处理大鼠时,血红素对这种线粒体酶形成的抑制作用被完全阻断。在体外高浓度时,硒对δ-氨基乙酰丙酸合酶活性具有抑制作用。据推测,硒可能不像钴等痕量金属那样是血红素加氧酶的直接诱导剂,但可能通过增加“游离”血红素的产生和细胞可用性来介导血红素加氧酶的增加,这是由于血细胞血红素合成活性增加所致。随后,血红素加氧酶活性的增加反过来又导致微粒体血红素含量缺乏增加,从而尽管血红素加氧酶和δ-氨基乙酰丙酸合酶的活性都大幅增加,但仍将血红素水平维持在正常水平。进一步表明,δ-氨基乙酰丙酸合酶活性的增加不是由于酶降解速率降低或预先形成的酶的激活,而是由于酶蛋白合成速率增加。尽管痕量的硒被认为参与微粒体电子传递过程,但本研究的数据表明,过量的硒可显著抑制微粒体药物代谢。