The function of RecQ helicase gene family (especially BLM) in DNA recombination and joining.

Advances in Biophysics Pub Date : 2004-01-01
Hideo Kaneko, Toshiyuki Fukao, Naomi Kondo
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Abstract

Bloom syndrome is a rare autosomal recessive genetic disorder characterized by lupus-like erythematous telangiectasias of the face, sun sensitivity, stunted growth, and immunodeficiency. Chromosome instability syndromes have a common feature, being associated at high frequency with neoplasia. BS is considered as one of the chromosome instability syndromes since the fibroblasts or lymphocytes of BS patients show excessive spontaneous chromosome instability. The causative gene of BS (BLM) was identified as a RecQ helicase homologue. In this review, we showed the characteristic phenotypes of BS, especially two Japanese siblings. In the latter of the review, the functional domains of BLM, those are nuclear localization signal and the interacting proteins such as ATM, are shown. Several lines of reports indicates that BLM helicase is involved in the re-initiation of DNA replication at sites where replication forks have arrested or collapsed. To elucidate the precise function of RecQ helicase in DNA repair and replication aims not only to improve our understanding of the molecular basis for tumorigenesis, but also to extend the range of potential therapeutic targets.

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RecQ解旋酶基因家族(特别是BLM)在DNA重组和连接中的作用。
布卢姆综合征是一种罕见的常染色体隐性遗传疾病,其特征是狼疮样的面部红斑毛细血管扩张、阳光敏感、生长发育迟缓和免疫缺陷。染色体不稳定综合征有一个共同的特征,与肿瘤的高频率相关。BS被认为是染色体不稳定综合征之一,因为BS患者的成纤维细胞或淋巴细胞表现出过度的自发染色体不稳定。BS (BLM)的致病基因为RecQ解旋酶同源基因。在这篇综述中,我们展示了BS的特征表型,特别是两个日本兄弟姐妹。本文介绍了BLM的功能域,即核定位信号和与之相互作用的蛋白(如ATM)。几行报告表明,BLM解旋酶在复制叉停止或崩溃的位点参与DNA复制的重新启动。阐明RecQ解旋酶在DNA修复和复制中的精确功能,不仅可以提高我们对肿瘤发生的分子基础的认识,而且可以扩大潜在治疗靶点的范围。
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Preface Illegitimate recombination mediated by double-strand break and end-joining in Escherichia coli. Genetic and physiological regulation of non-homologous end-joining in mammalian cells. The function of RecQ helicase gene family (especially BLM) in DNA recombination and joining. Nijmegen breakage syndrome and DNA double strand break repair by NBS1 complex.
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