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SPO11 依赖性双链断裂形成的重组

Reconstitution of SPO11-dependent double-strand break formation.

作者信息

Zheng Zhi, Zheng Lyuqin, Arter Meret, Liu Kaixian, Yamada Shintaro, Ontoso David, Kim Soonjoung, Keeney Scott

机构信息

Louis V. Gerstner, Jr. Graduate School of Biomedical Sciences, New York, NY 10065.

Molecular Biology Program, Memorial Sloan Kettering Cancer Center, New York, NY 10065.

出版信息

bioRxiv. 2024 Nov 21:2024.11.20.624382. doi: 10.1101/2024.11.20.624382.

Abstract

Homologous meiotic recombination starts with DNA double-strand breaks (DSBs) generated by SPO11 protein. SPO11 is critical for meiosis in most species but the DSBs it makes are also dangerous because of their mutagenic and gametocidal potential, so cells must foster SPO11's beneficial functions while minimizing its risks. SPO11 mechanism and regulation remain poorly understood. Here we report reconstitution of DNA cleavage in vitro with purified recombinant mouse SPO11 bound to its essential partner TOP6BL. Similar to their yeast orthologs, SPO11-TOP6BL complexes are monomeric (1:1) in solution and bind tightly to DNA. Unlike in yeast, however, dimeric (2:2) assemblies of mouse SPO11-TOP6BL cleave DNA to form covalent 5´ attachments requiring SPO11 active site residues, divalent metal ions, and SPO11 dimerization. Surprisingly, SPO11 can also manifest topoisomerase activity by relaxing supercoils and resealing DNA that it has nicked. Structure modeling with AlphaFold3 illuminates the protein-DNA interface and suggests that DNA is bent prior to cleavage. Deep sequencing of in vitro cleavage products reveals a rotationally symmetric base composition bias that partially explains DSB site preferences in vivo. Cleavage is inefficient on complex DNA substrates, partly because SPO11 is readily trapped in DSB-incompetent (presumably monomeric) binding states that exchange slowly. However, cleavage is improved by using substrates that favor DSB-competent dimer assembly, or by fusing SPO11 to an artificial dimerization module. Our results inform a model in which intrinsically feeble dimerization restrains SPO11 activity in vivo, making it exquisitely dependent on accessory proteins that focus and control DSB formation so that it happens only at the right time and the right places.

摘要

同源减数分裂重组始于由SPO11蛋白产生的DNA双链断裂(DSB)。SPO11对大多数物种的减数分裂至关重要,但它产生的DSB也很危险,因为它们具有诱变和杀配子的潜力,所以细胞必须在发挥SPO11有益功能的同时将其风险降至最低。SPO11的机制和调控仍知之甚少。在此,我们报告了用与必需伴侣TOP6BL结合的纯化重组小鼠SPO11在体外重建DNA切割。与它们的酵母同源物相似,SPO11-TOP6BL复合物在溶液中是单体(1:1),并紧密结合DNA。然而,与酵母不同的是,小鼠SPO11-TOP6BL的二聚体(2:2)组装体切割DNA以形成共价5´连接,这需要SPO11活性位点残基、二价金属离子和SPO11二聚化。令人惊讶的是,SPO11还可以通过松弛超螺旋和重新封闭其切割的DNA来表现出拓扑异构酶活性。用AlphaFold3进行的结构建模揭示了蛋白质-DNA界面,并表明DNA在切割前发生弯曲。体外切割产物的深度测序揭示了一种旋转对称的碱基组成偏好,这部分解释了体内DSB位点的偏好。在复杂的DNA底物上切割效率低下,部分原因是SPO11很容易被困在无DSB活性(可能是单体)的结合状态中,这种状态交换缓慢。然而,通过使用有利于有DSB活性的二聚体组装的底物,或通过将SPO11与人工二聚化模块融合,可以提高切割效率。我们的结果为一个模型提供了依据,即内在微弱的二聚化在体内限制了SPO11的活性,使其极其依赖于聚焦和控制DSB形成的辅助蛋白,从而使其仅在正确的时间和正确的位置发生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9878/11601517/129a4f5d732b/nihpp-2024.11.20.624382v1-f0001.jpg

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