Condensin loop extrusion properties, roadblocks, and role in homology search in S. cerevisiae

Vinciane Piveteau, Hossein Salari, Agnes Dumont, Jerome Savocco, Chloe Dupont, Daniel Jost, Aurele Piazza
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Abstract

The in vivo mechanism, regulations by cis-acting roadblocks, and biological functions of loop extrusion by eukaryotic SMC complexes are incompletely defined. Here, using Hi-C, we identified two condensin-dependent contact stripes at the Recombination Enhancer (RE) and the rDNA in S. cerevisiae. We show that oriented, unidirectional loop extrusion proceeds from these sites with an estimated processivity ~170 kb and a density ~0.04-0.18 that varies across the cell cycle. Centromeres and highly-transcribed RNA PolII-dependent genes are permeable condensin roadblocks. Other positionally labile elements such as replication forks and Smc5/6 complexes bound to substrates generated in the absence of Top2 also hinder loop extrusion by condensin. Cohesin is not an obstacle for condensin. Finally, a DNA double-strand break at MAT blocks condensin, which results in the rapid establishment of a long-range RE-MAT loop that juxtaposes the recombination machinery with its HMLα donor target. Hence, all budding yeast SMCs are involved in recombinational DNA repair. We propose a revised model for donor selection during MAT switching that exploits specific properties of loop extrusion by condensin. It can serve as a paradigm for the establishment of other types of selective interactions along chromosomes.
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凝结蛋白环挤压特性、路障以及在 S. cerevisiae 同源搜索中的作用
真核 SMC 复合物挤出环路的体内机制、顺式作用路障的调控和生物学功能尚未完全明确。在这里,我们利用 Hi-C 技术在 S. cerevisiae 的重组增强子(RE)和 rDNA 上发现了两条依赖于凝集素的接触带。我们的研究表明,定向、单向的环状挤压从这些位点进行,其过程活性约为 170 kb,密度约为 0.04-0.18,在整个细胞周期中各不相同。中心粒和高度转录的 RNA PolII 依赖性基因是可渗透的凝集素路障。其他位置易变的元素,如复制叉和与 Top2 缺失时产生的底物结合的 Smc5/6 复合物,也会阻碍凝集素的环挤出。粘合素并不是冷凝蛋白的障碍。最后,MAT 处的 DNA 双链断裂会阻碍凝缩素,从而导致长程 RE-MAT 环的快速建立,该环将重组机制与其 HMLα 供体目标并列。因此,所有芽殖酵母 SMC 都参与了 DNA 重组修复。我们提出了一个在 MAT 转换过程中供体选择的修正模型,该模型利用了冷凝蛋白挤出环的特殊性质。它可以作为沿染色体建立其他类型选择性相互作用的范例。
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