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在非洲锥虫中,具有断裂染色体的持续 DNA 损伤焦点和 DNA 复制。

Persistent DNA Damage Foci and DNA Replication with a Broken Chromosome in the African Trypanosome.

机构信息

Wellcome Trust Centre for Anti-Infectives Research, School of Life Sciences, University of Dundee, Dundee, United Kingdom

Wellcome Trust Centre for Anti-Infectives Research, School of Life Sciences, University of Dundee, Dundee, United Kingdom.

出版信息

mBio. 2019 Jul 9;10(4):e01252-19. doi: 10.1128/mBio.01252-19.

Abstract

Damaged DNA typically imposes stringent controls on eukaryotic cell cycle progression, ensuring faithful transmission of genetic material. Some DNA breaks, and the resulting rearrangements, are advantageous, however. For example, antigenic variation in the parasitic African trypanosome, , relies upon homologous recombination-based rearrangements of telomeric variant surface glycoprotein () genes, triggered by breaks. Surprisingly, trypanosomes with a severed telomere continued to grow while progressively losing subtelomeric DNA, suggesting a nominal telomeric DNA damage checkpoint response. Here, we monitor the single-stranded DNA-binding protein replication protein A (RPA) in response to induced, locus-specific DNA breaks in RPA foci accumulated at nucleolar sites following a break within ribosomal DNA and at extranucleolar sites following a break elsewhere, including adjacent to transcribed or silent telomeric gene As in other eukaryotes, RPA foci were formed in S phase and γH2A and RAD51 damage foci were disassembled prior to mitosis. Unlike in other eukaryotes, however, and regardless of the damaged locus, RPA foci persisted through the cell cycle, and these cells continued to replicate their DNA. We conclude that a DNA break, regardless of the damaged locus, fails to trigger a stringent cell cycle checkpoint in This DNA damage tolerance may facilitate the generation of virulence-enhancing genetic diversity, within subtelomeric domains in particular. Stringent checkpoints may be similarly lacking in some other eukaryotic cells. Chromosome damage must be repaired to prevent the proliferation of defective cells. Alternatively, cells with damage must be eliminated. This is true of human and several other cell types but may not be the case for single-celled parasites, such as trypanosomes. African trypanosomes, which cause lethal diseases in both humans and livestock, can actually exploit chromosomal damage to activate new surface coat proteins and to evade host immune responses, for example. We monitored responses to single chromosomal breaks in trypanosomes using a DNA-binding protein that, in response to DNA damage, forms nuclear foci visible using a microscope. Surprisingly, and unlike what is seen in mammalian cells, these foci persist while cells continue to divide. We also demonstrate chromosome replication even when one chromosome is broken. These results reveal a remarkable degree of damage tolerance in trypanosomes, which may suit the lifestyle of a single-celled parasite, potentially facilitating adaptation and enhancing virulence.

摘要

受损的 DNA 通常会对真核细胞周期的进展施加严格的控制,以确保遗传物质的忠实传递。然而,有些 DNA 断裂和由此产生的重排是有利的。例如,寄生的非洲锥虫中的抗原变异,依赖于端粒变异表面糖蛋白(VSG)基因的基于同源重组的重排,由断裂触发。令人惊讶的是,即使端粒被切断,具有断裂端粒的锥虫仍在继续生长,同时逐渐丢失端粒下 DNA,表明端粒 DNA 损伤检查点反应微不足道。在这里,我们监测诱导的、特定于基因座的 DNA 断裂后,复制蛋白 A(RPA)在 中的单链 DNA 结合蛋白的反应,RPA 焦点在核糖体 DNA 内的核仁部位积累,而在核仁部位之外的断裂部位积累,包括转录或沉默的端粒基因附近。与其他真核生物一样,RPA 焦点在 S 期形成,γH2A 和 RAD51 损伤焦点在有丝分裂前被组装。然而,与其他真核生物不同的是,无论受损基因座如何,RPA 焦点都在细胞周期中持续存在,并且这些细胞继续复制其 DNA。我们得出结论,无论受损基因座如何,DNA 断裂都不会在 中触发严格的细胞周期检查点。这种 DNA 损伤耐受可能有助于在端粒下区域特别产生增强毒力的遗传多样性。在其他一些真核细胞中,也可能同样缺乏严格的检查点。必须修复染色体损伤以防止有缺陷的细胞增殖。或者,必须消除具有损伤的细胞。这对人类和其他几种细胞类型是正确的,但对于单细胞寄生虫,如锥虫,情况可能并非如此。引起人类和牲畜致命疾病的非洲锥虫实际上可以利用染色体损伤来激活新的表面蛋白并逃避宿主免疫反应,例如。我们使用一种 DNA 结合蛋白来监测锥虫中单个染色体断裂的反应,该蛋白在响应 DNA 损伤时,形成可通过显微镜观察到的核焦点。令人惊讶的是,与在哺乳动物细胞中看到的不同,这些焦点在细胞继续分裂时仍然存在。我们还证明了即使一条染色体断裂,染色体也可以复制。这些结果揭示了锥虫中一种显著的损伤耐受程度,这可能适合单细胞寄生虫的生活方式,可能促进适应性并增强毒力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8fc9/6747728/4ea00140f070/mBio.01252-19-f0001.jpg

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