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糖苷水解酶对聚(ADP - 核糖)的降解始于核酸内切酶切割。

Poly(ADP-ribose) degradation by glycohydrolase starts with an endonucleolytic incision.

作者信息

Ikejima M, Gill D M

机构信息

Department of Molecular Biology and Microbiology, Tufts University School of Medicine, Boston, Massachusetts 02111.

出版信息

J Biol Chem. 1988 Aug 15;263(23):11037-40.

PMID:3136151
Abstract

We have recently shown that poly(ADP-ribose) polymerase forms poly(ADP-ribose) by adding ADP-ribose residues to the polymerase-proximal end of an enzyme-bound nascent chain. In this light we have reexamined the mode of hydrolysis of enzyme-bound poly(ADP-ribose) by poly(ADP-ribose) glycohydrolase. When the substrate has been labeled by a pulse-chase protocol, soluble glycohydrolase releases a significant amount of labeled oligomer which can only come from the enzyme-distal (2') end of the polymer. This constitutes additional evidence for the proximal growth of chains. Oligomer is infrequently released from the proximal (1") end of enzyme-bound chains. Rather, the bulk of the poly(ADP-ribose) is digested directly to ADP-ribose monomers. We conclude that poly(ADP-ribose) glycohydrolase starts digestion with an endonucleolytic incision and then removes ADP-ribose residues processively in the 2'----1" direction. Therefore, in contrast to earlier models of polymer growth and hydrolysis, a single poly(ADP-ribose) chain may be extended at one end and simultaneously degraded at the other end. The balance between synthesis and degradation may control the quantity and distribution of polymer around the DNA break which occasions its synthesis.

摘要

我们最近发现,聚(ADP - 核糖)聚合酶通过将ADP - 核糖残基添加到酶结合的新生链的聚合酶近端来形成聚(ADP - 核糖)。鉴于此,我们重新研究了聚(ADP - 核糖)糖苷水解酶对酶结合的聚(ADP - 核糖)的水解模式。当通过脉冲追踪方案对底物进行标记时,可溶性糖苷水解酶会释放出大量标记的寡聚物,这些寡聚物只能来自聚合物的酶远端(2')末端。这构成了链近端生长的额外证据。寡聚物很少从酶结合链的近端(1")末端释放。相反,大部分聚(ADP - 核糖)被直接消化成ADP - 核糖单体。我们得出结论,聚(ADP - 核糖)糖苷水解酶以内切核酸酶切口开始消化,然后沿2'----1"方向连续去除ADP - 核糖残基。因此,与早期的聚合物生长和水解模型不同,单个聚(ADP - 核糖)链可能在一端延伸,同时在另一端降解。合成与降解之间的平衡可能控制聚合物在引发其合成的DNA断裂周围的数量和分布。

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