Steen S B, Gomelsky L, Speidel S L, Roth D B
Program in Cellular and Molecular Biology, Baylor College of Medicine, Houston, TX 77030, USA.
EMBO J. 1997 May 15;16(10):2656-64. doi: 10.1093/emboj/16.10.2656.
In V(D)J recombination, double-strand breaks (DSBs) are introduced at recombination signal sequences (RSSs) which consist of three distinct elements: a heptamer, a 12 or 23 nucleotide spacer and a nonamer. Efficient DSB formation requires a 12/23 RSS pair and occurs at both RSS in a temporally coupled fashion (coupled cleavage). It remains unknown which RSS elements are important for coupled cleavage. Furthermore, it has not been established whether some RSS components are critical only for cleavage in cis, with others mainly promoting cleavage in trans at the partner RSS. We investigated these questions by analyzing the effects of RSS mutations on the formation of DSBs in vivo. The abundance of DSBs in cis (at the mutant RSS) and in trans (at the consensus RSS) was determined using an established ligation-mediated PCR assay. We also developed a Southern blotting approach that allows the first direct measurement of dual and single RSS cleavage in vivo. Our results demonstrate that the heptamer, spacer and nonamer elements are all required for coupled cleavage in vivo. These studies also provide evidence for cleavage events involving a single RSS both in mutant substrates and in substrates containing a consensus 12/23 RSS pair.
在V(D)J重组过程中,双链断裂(DSB)在重组信号序列(RSS)处引入,该序列由三个不同元件组成:一个七聚体、一个12或23个核苷酸的间隔区和一个九聚体。高效的DSB形成需要一个12/23 RSS对,并以时间偶联的方式在两个RSS处发生(偶联切割)。目前尚不清楚哪些RSS元件对偶联切割很重要。此外,尚未确定某些RSS组件是否仅对顺式切割至关重要,而其他组件主要促进在伙伴RSS处的反式切割。我们通过分析RSS突变对体内DSB形成的影响来研究这些问题。使用既定的连接介导PCR测定法确定顺式(在突变RSS处)和反式(在共有RSS处)DSB的丰度。我们还开发了一种Southern印迹方法,该方法首次允许直接测量体内双重和单个RSS切割。我们的结果表明,七聚体、间隔区和九聚体元件对于体内偶联切割都是必需的。这些研究还为突变底物以及含有共有12/23 RSS对的底物中涉及单个RSS的切割事件提供了证据。