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Restriction glycosylases: involvement of endonuclease activities in the restriction process

机译:限制性糖基团:内切核酸酶活性在限制过程中的参与

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摘要

All restriction enzymes examined are phosphodiesterases generating 3'-OH and 5'-P ends, but one restriction enzyme (restriction glycosylase) excises unmethylated bases from its recognition sequence. Whether its restriction activity involves endonucleolytic cleavage remains unclear. One report on this enzyme, R. PabI from a hyperthermophile, ascribed the breakage to high temperature while another showed its weak AP lyase activity generates atypical ends. Here, we addressed this issue in mesophiles. We purified R. PabI homologs from Campylobacter coli (R. CcoLI) and Helicobacter py-lori (R. HpyAXII) and demonstrated their DNA cleavage, DNA glycosylase and AP lyase activities in vitro at 37. C. The AP lyase activity is more coupled with glycosylase activity in R. CcoLI than in R. PabI. R. CcoLI/R. PabI expression caused restriction of incoming bacteriophage/plasmid DNA and endogenous chromosomal DNA within Escherichia coli at 37 degrees C. The R. PabI-mediated restriction was promoted by AP endonuclease action in vivo or in vitro. These results reveal the role of endonucleolytic DNA cleavage in restriction and yet point to diversity among the endonucleases. The cleaved ends are difficult to repair in vivo, which may indicate their biologi-cal significance. These results support generalization of the concept of restriction-modification system to the concept of self-recognizing epigenetic system, which combines any epigenetic labeling and any DNA damaging.
机译:检查的所有限制酶是产生3'-OH和5'-P结束的磷酸二酯酶,但是一种限制酶(限制性糖基酶)从其识别序列中促使未甲基化的碱。其限制性涉及内核核酸裂解仍然不清楚。关于该酶的一份报告,来自超嗜热嗜热偶,均匀的粘合剂,归因于高温,而另一个显示其弱AP裂解酶活性产生非典型末端。在这里,我们在中间人解决了这个问题。从Campylobacter Coli(R.Colli)和Helicobacter Py-Lori(R. hpyaxii)纯化了R.Pabi同源物,并在37.C中证明了它们在体外的DNA裂解,DNA糖基酶和AP裂解酶活性。C. AP裂解酶活性更耦合在R.Colsi中的糖基酶活性而不是R. Pabi。 R. CColi / R。 PABI表达在37℃下引起进入的噬菌体/质粒DNA和内源染色体DNA的限制。通过体内或体外促进AP内切核酸酶作用促进R.Pabi介导的限制。这些结果揭示了内切核酰亚胺DNA切割在内切核酸酶中的限制中的作用。裂解的末端难以在体内修复,这可能表明它们的生物学意义。这些结果支持限制性修饰系统概念的概念,以自我识别的表观遗传系统的概念结合任何表观遗传标记和任何DNA损伤。

著录项

  • 来源
    《Nucleic Acids Research》 |2017年第3期|共12页
  • 作者单位

    Univ Tokyo Grad Sch Frontier Sci Dept Med Genome Sci Dept Computat Biol &

    Med Sci Tokyo 1088639 Japan;

    Hiroshima Univ Grad Sch Sci Dept Math &

    Life Sci Higashihiroshima 7398526 Japan;

    Univ Tokyo Grad Sch Frontier Sci Dept Med Genome Sci Dept Computat Biol &

    Med Sci Tokyo 1088639 Japan;

    Univ Tokyo Grad Sch Frontier Sci Dept Med Genome Sci Dept Computat Biol &

    Med Sci Tokyo 1088639 Japan;

    Hiroshima Univ Grad Sch Sci Dept Math &

    Life Sci Higashihiroshima 7398526 Japan;

    NCI NIH Frederick MD 21702 USA;

    Chiba Univ Grad Sch Med Dept Mol Oncol Chiba 2608670 Japan;

    Univ Tokyo Grad Sch Frontier Sci Dept Med Genome Sci Dept Computat Biol &

    Med Sci Tokyo 1088639 Japan;

    Univ Tokyo Grad Sch Frontier Sci Dept Med Genome Sci Dept Computat Biol &

    Med Sci Tokyo 1088639 Japan;

    Univ Tokyo Grad Sch Frontier Sci Dept Med Genome Sci Dept Computat Biol &

    Med Sci Tokyo 1088639 Japan;

    Hiroshima Univ Grad Sch Sci Dept Math &

    Life Sci Higashihiroshima 7398526 Japan;

    Univ Tokyo Grad Sch Frontier Sci Dept Med Genome Sci Dept Computat Biol &

    Med Sci Tokyo 1088639 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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