Manrose Singh, Kaitlin Raseley, Alexis M Perez, Danny MacKenzie, Settapong T Kosiyatrakul, Sanket Desai, Noelle Batista, Navjot Guru, Katherine K Loomba, Heba Z Abid, Yilin Wang, Lars Udo-Bellner, Randy F Stout, Carl L Schildkraut, Ming Xiao, Dong Zhang
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引用次数: 0
摘要
染色体不稳定性(CIN)在许多肿瘤中经常出现。断裂-融合-桥(BFB)循环被认为是肿瘤发生和进化过程中 CIN 的主要驱动因素之一。然而,BFB 循环各个步骤的详细机制还需要进一步研究。在这里,我们证明了核酸酶致死 Cas9(dCas9)与端粒特异性单导 RNA(sgTelo)的结合可用于模拟 BFB 循环。首先,我们证明了使用 sgTelo 将 dCas9 靶向端粒会阻碍端粒的 DNA 复制,并诱导复制压力和 DNA 损伤的明显增加。我们利用光学图谱单分子端粒测定(SMTA-OM)研究了dCas9/sgTelo细胞中端粒的全基因组特征,观察到染色体末端融合的急剧增加,包括融合/ITS+和融合/ITS-。同样,我们还观察到双中心染色体、无相桥和细胞间端粒染色体桥(ITCBs)的形成有所增加。利用dCas9/sgTelo系统,我们发现了ITCB的许多有趣的分子和结构特征,并证明多种DNA修复途径与ITCB的形成有关。我们的研究为 BFB 周期的分子机制提供了新的线索,这将促进我们对肿瘤发生、肿瘤进化和耐药性的理解。
Elucidation of the molecular mechanism of the breakage-fusion-bridge (BFB) cycle using a CRISPR-dCas9 cellular model.
Chromosome instability (CIN) is frequently observed in many tumors. The breakage-fusion-bridge (BFB) cycle has been proposed to be one of the main drivers of CIN during tumorigenesis and tumor evolution. However, the detailed mechanism for the individual steps of the BFB cycle warrants further investigation. Here, we demonstrate that a nuclease-dead Cas9 (dCas9) coupled with a telomere-specific single-guide RNA (sgTelo) can be used to model the BFB cycle. First, we show that targeting dCas9 to telomeres using sgTelo impedes DNA replication at telomeres and induces a pronounced increase of replication stress and DNA damage. Using Single-Molecule Telomere Assay via Optical Mapping (SMTA-OM), we investigate the genome-wide features of telomeres in the dCas9/sgTelo cells and observe a dramatic increase of chromosome end fusions, including fusion/ITS+ and fusion/ITS-. Consistently, we also observe an increase in the formation of dicentric chromosomes, anaphase bridges, and intercellular telomeric chromosome bridges (ITCBs). Utilizing the dCas9/sgTelo system, we uncover many interesting molecular and structural features of the ITCB and demonstrate that multiple DNA repair pathways are implicated in the formation of ITCBs. Our studies shed new light on the molecular mechanisms of the BFB cycle, which will advance our understanding of tumorigenesis, tumor evolution, and drug resistance.
期刊介绍:
Nucleic Acids Research (NAR) is a scientific journal that publishes research on various aspects of nucleic acids and proteins involved in nucleic acid metabolism and interactions. It covers areas such as chemistry and synthetic biology, computational biology, gene regulation, chromatin and epigenetics, genome integrity, repair and replication, genomics, molecular biology, nucleic acid enzymes, RNA, and structural biology. The journal also includes a Survey and Summary section for brief reviews. Additionally, each year, the first issue is dedicated to biological databases, and an issue in July focuses on web-based software resources for the biological community. Nucleic Acids Research is indexed by several services including Abstracts on Hygiene and Communicable Diseases, Animal Breeding Abstracts, Agricultural Engineering Abstracts, Agbiotech News and Information, BIOSIS Previews, CAB Abstracts, and EMBASE.