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Telomere Dysfunction Triggers Palindrome Formation Independently of Double-Strand Break Repair Mechanisms

机译:端粒功能异常独立于双链断裂修复机制触发回文形成。

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摘要

Inverted chromosome duplications or palindromes are linked with genetic disorders and malignant transformation. They are considered by-products of DNA double-strand break (DSB) repair: the homologous recombination (HR) and the nonhomologous end joining (NHEJ). Palindromes near chromosome ends are often triggered by telomere losses. An important question is to what extent their formation depends upon DSB repair mechanisms. Here we addressed this question using yeast genetics and comparative genomic hybridization. We induced palindrome formation by passaging cells lacking any form of telomere maintenance (telomerase and telomere recombination). Surprisingly, we found that DNA ligase 4, essential for NHEJ, did not make a significant contribution to palindrome formation induced by telomere losses. Moreover RAD51, important for certain HR-derived mechanisms, had little effect. Furthermore RAD52, which is essential for HR in yeast, appeared to decrease the number of palindromes in cells proliferating without telomeres. This study also uncovered an important role for Rev3 and Rev7 (but not for Pol32) subunits of polymerase ζ in the survival of cells undergoing telomere losses and forming palindromes. We propose a model called short-inverted repeat-induced synthesis in which DNA synthesis, rather than DSB repair, drives the inverted duplication triggered by telomere dysfunction.
机译:反向染色体重复或回文与遗传疾病和恶性转化有关。它们被认为是DNA双链断裂(DSB)修复的副产物:同源重组(HR)和非同源末端连接(NHEJ)。染色体末端附近的回文通常是由端粒丢失引起的。一个重要的问题是它们的形成在多大程度上取决于DSB修复机制。在这里,我们使用酵母遗传学和比较基因组杂交技术解决了这个问题。我们通过缺乏任何形式的端粒维持(端粒酶和端粒重组)的传代细胞诱导了回文形成。令人惊讶地,我们发现NHEJ必需的DNA连接酶4对端粒损失诱导的回文形成没有显着贡献。而且,RAD51对某些HR衍生机制很重要,作用不大。此外,RAD52对酵母中的HR至关重要,它似乎可以减少无端粒的细胞增殖中回文的数目。这项研究还发现聚合酶ζ的Rev3和Rev7(但不是Pol32)亚基在经历端粒丢失并形成回文的细胞存活中具有重要作用。我们提出了一种称为短反向重复诱导合成的模型,其中DNA合成而不是DSB修复驱动端粒功能障碍触发的反向复制。

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