Department of Biomedicine, University of Basel, 4058 Basel, Switzerland and Friedrich Miescher Institute for Biomedical Research, Maulbeerstrasse 66, 4058 Basel, Switzerland.
Nucleic Acids Res. 2014 Apr;42(8):4985-95. doi: 10.1093/nar/gku148. Epub 2014 Feb 25.
Various topological constraints at the ribosomal DNA (rDNA) locus impose an extra challenge for transcription and DNA replication, generating constant torsional DNA stress. The topoisomerase Top1 is known to release such torsion by single-strand nicking and re-ligation in a process involving transient covalent Top1 cleavage complexes (Top1cc) with the nicked DNA. Here we show that Top1ccs, despite their usually transient nature, are specifically targeted to and stabilized at the ribosomal replication fork barrier (rRFB) of budding yeast, establishing a link with previously reported Top1 controlled nicks. Using ectopically engineered rRFBs, we establish that the rRFB sequence itself is sufficient for induction of DNA strand-specific and replication-independent Top1ccs. These Top1ccs accumulate only in the presence of Fob1 and Tof2, they are reversible as they are not subject to repair by Tdp1- or Mus81-dependent processes, and their presence correlates with Top1 provided rDNA stability. Notably, the targeted formation of these Top1ccs accounts for the previously reported broken replication forks at the rRFB. These findings implicate a novel and physiologically regulated mode of Top1 action, suggesting a mechanism by which Top1 is recruited to the rRFB and stabilized in a reversible Top1cc configuration to preserve the integrity of the rDNA.
核糖体 DNA(rDNA)位点的各种拓扑约束给转录和 DNA 复制带来了额外的挑战,产生持续的扭转 DNA 应力。拓扑异构酶 Top1 被认为通过单链切口和重新连接来释放这种扭转,这一过程涉及带有切口 DNA 的瞬时共价 Top1 切割复合物(Top1cc)。在这里,我们表明 Top1cc 尽管通常是瞬时的,但被特异性靶向并稳定在 budding 酵母的核糖体复制叉障碍(rRFB)处,与之前报道的 Top1 控制的切口建立了联系。使用异位工程化的 rRFB,我们确定 rRFB 序列本身足以诱导 DNA 链特异性和复制独立的 Top1cc。只有在存在 Fob1 和 Tof2 的情况下,这些 Top1cc 才会积累,它们是可逆的,因为它们不受 Tdp1 或 Mus81 依赖的过程修复,并且它们的存在与提供 rDNA 稳定性的 Top1 相关。值得注意的是,这些 Top1cc 的靶向形成解释了之前在 rRFB 处报道的断裂复制叉。这些发现暗示了一种新型的生理调节的 Top1 作用模式,表明了 Top1 被招募到 rRFB 并稳定在可逆的 Top1cc 构象中以维持 rDNA 完整性的机制。