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1
Interactions with glutathione S-transferases of porphyrins used in photodynamic therapy and naturally occurring porphyrins.光动力疗法中使用的卟啉以及天然存在的卟啉与谷胱甘肽S-转移酶的相互作用。
Biochem J. 1985 Aug 1;229(3):823-31. doi: 10.1042/bj2290823.
2
Differential interaction of porphyrins used in photoradiation therapy with ferrochelatase.光辐射疗法中使用的卟啉与亚铁螯合酶的差异相互作用。
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3
Effects of porphyrins on proteins of cytosol and plasma. In vitro photo-oxidation and cross-linking of proteins by naturally occurring and synthetic porphyrins.卟啉对细胞质和血浆蛋白质的影响。天然和合成卟啉对蛋白质的体外光氧化和交联作用。
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4
pH Dependence of the inhibition of yeast glyoxalase I by porphyrins.卟啉对酵母乙二醛酶I抑制作用的pH依赖性
Biochim Biophys Acta. 1983 Oct 28;748(2):184-93. doi: 10.1016/0167-4838(83)90294-7.
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Haematoporphyrin and OO'-diacetylhaematoporphyrin binding by serum and cellular proteins. Implications for the clearance of these photochemotherapeutic agents by cells.血清和细胞蛋白对血卟啉及双乙酰血卟啉的结合。这对细胞清除这些光化学治疗剂的意义。
Biochem J. 1983 Aug 15;214(2):503-9. doi: 10.1042/bj2140503.
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7
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Binding and protection of porphyrins by glutathione S-transferases of Zea mays L.玉米谷胱甘肽S-转移酶对卟啉的结合与保护作用
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Glutathione transferases in rat hepatoma cells. Effects of ascites cells on the isoenzyme pattern in liver and induction of glutathione transferases in the tumour cells.大鼠肝癌细胞中的谷胱甘肽转移酶。腹水细胞对肝脏同工酶模式的影响以及肿瘤细胞中谷胱甘肽转移酶的诱导作用。
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Studies on the inhibition of ferrochelatase by N-alkylated dicarboxylic porphyrins. Steric factors involved and evidence that the inhibition is reversible.N-烷基化二羧酸卟啉对亚铁螯合酶的抑制作用研究。相关空间因素及抑制作用可逆的证据。
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引用本文的文献

1
Glutathione S-transferase P1-1 expression modulates sensitivity of human kidney 293 cells to photodynamic therapy with hypericin.谷胱甘肽S-转移酶P1-1的表达调节人肾293细胞对金丝桃素光动力疗法的敏感性。
Arch Biochem Biophys. 2006 May 15;449(1-2):94-103. doi: 10.1016/j.abb.2006.02.009. Epub 2006 Mar 3.
2
Factors responsible for the formation of different N-alkylated porphyrins in rat liver microsomal systems exposed to norethindrone. The role of 3 alpha-hydroxysteroid dehydrogenase.负责在暴露于炔诺酮的大鼠肝脏微粒体系统中形成不同N-烷基化卟啉的因素。3α-羟基类固醇脱氢酶的作用。
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本文引用的文献

1
An enzyme from rat liver catalysing conjugations with glutathione.一种来自大鼠肝脏的可催化与谷胱甘肽结合反应的酶。
Biochem J. 1961 Jun;79(3):516-24. doi: 10.1042/bj0790516.
2
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.
3
Interrelationship between anionic and cationic forms of glutathione S-transferases of human liver.人肝脏谷胱甘肽S-转移酶阴离子和阳离子形式之间的相互关系。
Biochem J. 1980 Oct 1;191(1):1-10. doi: 10.1042/bj1910001.
4
Iron, porphyrin and heme transport in mitochondria.铁、卟啉和血红素在线粒体中的转运
Int J Biochem. 1980;12(5-6):709-12. doi: 10.1016/0020-711x(80)90148-2.
5
The interaction of human serum albumin and hemopexin with porphyrins.人血清白蛋白和血红素结合蛋白与卟啉的相互作用。
Biochim Biophys Acta. 1980 Jul 24;624(1):271-85. doi: 10.1016/0005-2795(80)90246-9.
6
Resolution, purification and some properties of three glutathione transferases from rat liver mitochondria.大鼠肝脏线粒体中三种谷胱甘肽转移酶的分离、纯化及某些性质
Hoppe Seylers Z Physiol Chem. 1980 Jan;361(1):9-15. doi: 10.1515/bchm2.1980.361.1.9.
7
Tissue distribution and subunit structures of the multiple forms of glutathione S-transferase in the rat.大鼠体内谷胱甘肽S-转移酶多种形式的组织分布及亚基结构
Biochem J. 1981 Jan 1;193(1):367-70. doi: 10.1042/bj1930367.
8
Microsomal glutathione S-transferase. Purification, initial characterization and demonstration that it is not identical to the cytosolic glutathione S-transferases A, B and C.微粒体谷胱甘肽S-转移酶。纯化、初步特性鉴定及证明其与胞质谷胱甘肽S-转移酶A、B和C不同。
Eur J Biochem. 1982 Nov;128(1):243-8.
9
Binary combinations of four protein subunits with different catalytic specificities explain the relationship between six basic glutathione S-transferases in rat liver cytosol.四种具有不同催化特异性的蛋白质亚基的二元组合解释了大鼠肝细胞溶质中六种基本谷胱甘肽S-转移酶之间的关系。
J Biol Chem. 1982 Sep 10;257(17):9909-12.
10
The structure and multiple functions of glutathione transferases.谷胱甘肽转移酶的结构与多种功能。
Biochem Soc Trans. 1982 Apr;10(2):82-4. doi: 10.1042/bst0100082.

光动力疗法中使用的卟啉以及天然存在的卟啉与谷胱甘肽S-转移酶的相互作用。

Interactions with glutathione S-transferases of porphyrins used in photodynamic therapy and naturally occurring porphyrins.

作者信息

Smith A, Nuiry I, Awasthi Y C

出版信息

Biochem J. 1985 Aug 1;229(3):823-31. doi: 10.1042/bj2290823.

DOI:10.1042/bj2290823
PMID:4052030
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1145131/
Abstract

Several naturally occurring porphyrins and porphyrins used in photodynamic therapy inhibit glutathione S-transferase isoenzymes either purified from rat liver or lung or in cytosol from normal and from cancerous (Morris 7288C hepatoma) liver. Although differences occur in the type and amount of transferases in normal and cancerous liver and in the liver of rats bearing an extrahepatic tumour, these enzymes are potential binding sites for porphyrins. Porphyrin structure is an important factor in determining the affinity of binding, as shown by the relative inhibitory effectiveness. Of the dicarboxylic porphyrins in the mixture used clinically, OO'-diacetylhaematoporphyrin and monohydroxyethylmonovinyldeuteroporphyrin are more effective inhibitors than haematoporphyrin and protoporphyrin IX. Of the naturally occurring porphyrins the order of effectiveness is protoporphyrin IX (dicarboxylic) greater than coproporphyrin (tetracarboxylic) greater than uroporphyrin (octacarboxylic) and type I greater than type III isomers of both uroporphyrin and coproporphyrin, and the synthetic tetra-meso-phenylporphinetetrasulphonate is a better inhibitor (apparent Ki = 250 nM) than coproporphyrin, which contains a comparable number of negative charges. In addition, iron-porphyrin chelates are more effective inhibitors of the transferases, with 25-fold decrease in Ki value, than the free porphyrins. These results indicate that one means whereby porphyrins accumulate in tissues is the occupation of intracellular binding sites, such as the transferases. Since porphyrins inhibit the activity of these important detoxifying enzymes, there will be metabolic consequences to the cell.

摘要

几种天然存在的卟啉以及用于光动力疗法的卟啉,会抑制从大鼠肝脏或肺中纯化出来的谷胱甘肽S -转移酶同工酶,或者抑制来自正常肝脏和癌性(莫里斯7288C肝癌)肝脏细胞质中的该酶。尽管正常肝脏和癌性肝脏以及患有肝外肿瘤的大鼠肝脏中转移酶的类型和数量存在差异,但这些酶是卟啉的潜在结合位点。如相对抑制效果所示,卟啉结构是决定结合亲和力的一个重要因素。在临床使用的混合物中的二羧酸卟啉中,OO'-二乙酰血卟啉和单羟基乙基单乙烯基氘卟啉比血卟啉和原卟啉IX是更有效的抑制剂。在天然存在的卟啉中,有效性顺序为原卟啉IX(二羧酸)大于粪卟啉(四羧酸)大于尿卟啉(八羧酸),并且尿卟啉和粪卟啉的I型异构体大于III型异构体,并且合成的四 - 间 - 苯基卟啉四磺酸盐是比粪卟啉更好的抑制剂(表观Ki = 250 nM),粪卟啉含有相当数量的负电荷。此外,铁 - 卟啉螯合物比游离卟啉是转移酶更有效的抑制剂,其Ki值降低25倍。这些结果表明卟啉在组织中积累的一种方式是占据细胞内结合位点,如转移酶。由于卟啉抑制这些重要解毒酶的活性,细胞将会产生代谢后果。