首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Specialization among Iron-Sulfur Cluster Helicases to Resolve G-quadruplex DNA Structures That Threaten Genomic Stability
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Specialization among Iron-Sulfur Cluster Helicases to Resolve G-quadruplex DNA Structures That Threaten Genomic Stability

机译:铁硫簇解旋酶之间的专业化以解决会破坏基因组稳定性的G-四链体DNA结构。

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摘要

G-quadruplex (G4) DNA, an alternate structure formed by Hoogsteen hydrogen bonds between guanines in G-rich sequences, threatens genomic stability by perturbing normal DNA transactions including replication, repair, and transcription. A variety of G4 topologies (intra- and intermolecular) can form in vitro, but the molecular architecture and cellular factors influencing G4 landscape in vivo are not clear. Helicases that unwind structured DNA molecules are emerging as an important class of G4-resolving enzymes. The BRCA1-associated FANCJ helicase is among those helicases able to unwind G4 DNA in vitro, and FANCJ mutations are associated with breast cancer and linked to Fanconi anemia. FANCJ belongs to a conserved iron-sulfur (Fe S) cluster family of helicases important for genomic stability including XPD (nucleotide excision repair), DDX11 (sister chromatid cohesion), and RTEL (telomere metabolism), genetically linked to xeroderma pigmentosum/Cockayne syndrome, Warsaw breakage syndrome, and dyskeratosis congenita, respectively. To elucidate the role of FANCJ in genomic stability, its molecular functions in G4 metabolism were examined. FANCJ efficiently unwound in a kinetic and ATPase-dependent manner entropically favored unimolecular G4 DNA, whereas other Fe-S helicases tested did not. The G4-specific ligands Phen-DC3 or Phen-DC6 inhibited FANCJ helicase on unimolecular G4 ∼1000-fold better than bi- or tetramolecular G4 DNA. The G4 ligand telomestatin induced DNA damage in human cells deficient in FANCJ but not DDX11 or XPD. These findings suggest FANCJ is a specialized Fe-S cluster helicase that preserves chromosomal stability by unwinding unimolecular G4 DNA likely to form in transiently unwound single-stranded genomic regions.
机译:G-四链体(G4)DNA是由富含G的序列中鸟嘌呤之间的Hoogsteen氢键形成的替代结构,它通过干扰正常的DNA交易(包括复制,修复和转录)来威胁基因组稳定性。可以在体外形成多种G4拓扑结构(分子内和分子间),但尚不清楚影响体内G4格局的分子结构和细胞因子。解旋结构化DNA分子的解旋酶正在作为一类重要的G4分解酶出现。与BRCA1相关的FANCJ解旋酶属于能够在体外解开G4 DNA的解旋酶,而FANCJ突变与乳腺癌相关,并与范可尼贫血有关。 FANCJ属于保守的解旋酶铁硫(Fe S)簇家族,对基因组稳定性具有重要意义,包括XPD(核苷酸切除修复),DDX11(姐妹染色单体凝聚力)和RTEL(端粒代谢),这些基因与干性色素性皮肤病/ Cockayne综合征有遗传联系,华沙断裂综合征和先天性角化不全。为了阐明FANCJ在基因组稳定性中的作用,研究了其在G4代谢中的分子功能。 FANCJ有效地以动力学和ATPase依赖性方式解链,从而熵地偏爱单分子G4 DNA,而其他测试的Fe-S解旋酶则没有。 G4特异性配体Phen-DC3或Phen-DC6对单分子G4的FANCJ解旋酶的抑制作用比双分子或四分子G4 DNA好约1000倍。 G4配体端粒他汀在FANCJ缺乏的人细胞中诱导DNA损伤,但DDX11或XPD没有。这些发现表明,FANCJ是一种专门的Fe-S簇解旋酶,可通过展开可能在瞬时解链的单链基因组区域中形成的单分子G4 DNA来保持染色体的稳定性。

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