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遗传性腺苷脱氨酶缺乏症中脱氧腺苷核苷酸的形成与降解

Formation and degradation of deoxyadenosine nucleotides in inherited adenosine deaminase deficiency.

作者信息

Simmonds H A, Webster D R, Perrett D, Reiter S, Levinsky R J

出版信息

Biosci Rep. 1982 May;2(5):303-14. doi: 10.1007/BF01115116.

Abstract

dATP, dADP, and dAMP equalled or exceeded the depleted levels of ATP, ADP, and AMP in erythrocytes from two children with adenosine deaminase (ADA; EC 3.5.4.4) deficiency. dATP and dADP were identified in the mononuclear cells of only one child. The levels of deoxyadenosine compounds fell dramatically after enzyme replacement therapy and were no longer detectable in the urine or in mononuclear cells. Erythrocyte adenosine nucleotide levels showed a corresponding increase. Intact erythrocytes prior to treatment contained adenine, presumed to be from deoxyadenosine degraded during extraction. Adenosine at high concentrations in vitro increased both dATP and ATP levels and decreased intracellular deoxyadenosine levels. There was no significant deamination of either [8-14C]adenosine or deoxyadenosine by intact ADA-deficient erythrocytes. About 90% of adenosine was metabolized to ATP at substrate concentrations from 10-100 microM, compared to 40-60% of deoxyadenosine metabolized to dATP. These studies suggest that (i) high intracellular deoxyadenosine levels may be necessary in vivo to sustain the raised dATP levels in ADA deficiency. (ii) When ADA is inhibited or absent, deoxyadenosine is removed rapidly from the circulation by the human erythrocyte utilizing an adenosine transport system linked to both ADA and adenosine kinase (EC 2.7.1.20).

摘要

在两名腺苷脱氨酶(ADA;EC 3.5.4.4)缺乏症患儿的红细胞中,dATP、dADP和dAMP等于或超过了ATP、ADP和AMP的消耗水平。仅在一名患儿的单核细胞中检测到了dATP和dADP。酶替代治疗后,脱氧腺苷化合物水平急剧下降,尿液或单核细胞中不再可检测到。红细胞腺苷核苷酸水平相应升高。治疗前完整的红细胞含有腺嘌呤,推测其来自提取过程中降解的脱氧腺苷。体外高浓度的腺苷增加了dATP和ATP水平,并降低了细胞内脱氧腺苷水平。完整的ADA缺乏红细胞对[8-14C]腺苷或脱氧腺苷均无明显脱氨作用。在10-100微摩尔的底物浓度下,约90%的腺苷代谢为ATP,相比之下,40-60%的脱氧腺苷代谢为dATP。这些研究表明:(i)体内可能需要高细胞内脱氧腺苷水平来维持ADA缺乏症中升高的dATP水平。(ii)当ADA被抑制或缺乏时,人红细胞利用与ADA和腺苷激酶(EC 2.7.1.20)相关的腺苷转运系统迅速从循环中清除脱氧腺苷。

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