scholarly journals Opposing ISWI- and CHD-class chromatin remodeling activities orchestrate heterochromatic DNA repair

2014 ◽  
Vol 207 (6) ◽  
pp. 717-733 ◽  
Author(s):  
Karolin Klement ◽  
Martijn S. Luijsterburg ◽  
Jordan B. Pinder ◽  
Chad S. Cena ◽  
Victor Del Nero ◽  
...  

Heterochromatin is a barrier to DNA repair that correlates strongly with elevated somatic mutation in cancer. CHD class II nucleosome remodeling activity (specifically CHD3.1) retained by KAP-1 increases heterochromatin compaction and impedes DNA double-strand break (DSB) repair requiring Artemis. This obstruction is alleviated by chromatin relaxation via ATM-dependent KAP-1S824 phosphorylation (pKAP-1) and CHD3.1 dispersal from heterochromatic DSBs; however, how heterochromatin compaction is actually adjusted after CHD3.1 dispersal is unknown. In this paper, we demonstrate that Artemis-dependent DSB repair in heterochromatin requires ISWI (imitation switch)-class ACF1–SNF2H nucleosome remodeling. Compacted chromatin generated by CHD3.1 after DNA replication necessitates ACF1–SNF2H–mediated relaxation for DSB repair. ACF1–SNF2H requires RNF20 to bind heterochromatic DSBs, underlies RNF20-mediated chromatin relaxation, and functions downstream of pKAP-1–mediated CHD3.1 dispersal to enable DSB repair. CHD3.1 and ACF1–SNF2H display counteractive activities but similar histone affinities (via the plant homeodomains of CHD3.1 and ACF1), which we suggest necessitates a two-step dispersal and recruitment system regulating these opposing chromatin remodeling activities during DSB repair.

2020 ◽  
Vol 44 (3) ◽  
pp. 351-368 ◽  
Author(s):  
Anurag Kumar Sinha ◽  
Christophe Possoz ◽  
David R F Leach

ABSTRACT It is well established that DNA double-strand break (DSB) repair is required to underpin chromosomal DNA replication. Because DNA replication forks are prone to breakage, faithful DSB repair and correct replication fork restart are critically important. Cells, where the proteins required for DSB repair are absent or altered, display characteristic disturbances to genome replication. In this review, we analyze how bacterial DNA replication is perturbed in DSB repair mutant strains and explore the consequences of these perturbations for bacterial chromosome segregation and cell viability. Importantly, we look at how DNA replication and DSB repair processes are implicated in the striking recent observations of DNA amplification and DNA loss in the chromosome terminus of various mutant Escherichia coli strains. We also address the mutant conditions required for the remarkable ability to copy the entire E. coli genome, and to maintain cell viability, even in the absence of replication initiation from oriC, the unique origin of DNA replication in wild type cells. Furthermore, we discuss the models that have been proposed to explain these phenomena and assess how these models fit with the observed data, provide new insights and enhance our understanding of chromosomal replication and termination in bacteria.


Blood ◽  
2004 ◽  
Vol 104 (11) ◽  
pp. 2684-2684
Author(s):  
Youngji Park ◽  
Yuan Lin ◽  
Stanton L. Gerson

Abstract Intact function of DNA repair gene is required for maintenance of genomic stability and long term survival of stem cells. We hypothesize that DNA-PKcs, a key factor for DNA double-strand break (DSB) repair, is critical for hematopoietic stem cell (HSC) function. Expression level of DNA-PKcs mRNA monitored by RT-PCR was high in kit+lin− and sca+lin− cells, low in sca+kit+lin− cells and not seen in lin+ cells, implying its role in highly proliferative progenitors. To assess the function of HSCs deficient in DSB repair, serial transplantation capacity of scid (DNA-PKcs−/−) BM cells into lethally irradiated recipients was compared to wildtype BM. Primary transplants of scid BM died after treatment with 2Gy irradiation 4 wks post-transplantation (n=3). In contrast, parental scid mice survived 3Gy irradiation, implying radiation hypersensitivity of scid BM cells after transplantation. No changes were found in the telomere length, cell cycle distribution and apoptosis between the wildtype and scid BM cells after primary transplantation. Scid BM cells failed to repopulate recipients after the third round of transplantation (n=8). To assess competitive repopulating capacity, mixtures of wildtype and scid cells were transplanted into lethally irradiated recipients. BM CFU of primary recipients were predominantly wildtype (8 mice for C3H background, total CFU=262; 5 mice for C56B/6 background, total CFU=336; n>15 per mouse). Scid cells with two independent genetic backgrounds caused consistent repopulation defects, confirming repopulation defect is caused by DNA-PKcs deficiency. All five primary recipients with C56B/6 background was repopulated predominantly by wildtype CFU (wt CFU 93±5% vs. wt CFU of input; 60±31%, p<10−4). Six of eight primary recipients with C3H background had BM cells repopulated by wildtype CFUs (wt CFU 93±9 % vs. wt CFU of input; 65+13 %, p<10−4), and two of eight primary recipients (wt CFU 67±10 %, p>0.05) had BM cells repopulated similar to donor mixture of wildtype and scid. BM cells of all eight primary recipient mice with C3H background were transplanted into secondary recipients. In all cases, including recipients of the primary cells with the mixed chimera, most BM CFU of secondary recipients originated from wildtype (wt CFU 96±7.8 %, total 16 mice, total CFU=511, and CFU=192 from the mixed chimera). Sca+kit+lin− cells were isolated from the secondary recipients, cultured for 2wks and genotyped. All sca+kit+lin− cells were originated from wildtype (total n=73, 6 mice), implying DNA-PKcs function for HSC proliferation. This confirmed that primary recipients had reconstituted with 100% wildtype HSCs and that the mixed chimera reverted to 100% wildtype. Frequency of sca+kit+lin− cells in scid BM was significantly higher than wildtype (scid 1.94±0.5x10−4, n=4 vs. wt 0.92±0.4x10−4, n=4; p=0.017). Frequency of sca+kit+lin− cells in scid secondary recipients became similar to wildtype secondary recipients (scid 0.61±0.2x10−4, n=4 vs. wt 0.48±0.02x10−4, n=3; p=0.25), implying decreased self-renewal of scid HSCs during repetitive transplantation. This indicates that deficiency in DNA double-strand break repair (scid) leads to HSC failure during repetitive transplantation. Thus, intact DNA repair is essential for maintenance and genomic stability of HSCs.


2020 ◽  
Vol 31 (9) ◽  
pp. 859-865 ◽  
Author(s):  
Ryan B. Jensen ◽  
Eli Rothenberg

The efficient maintenance of genome integrity in the face of cellular stress is vital to protect against human diseases such as cancer. DNA replication, chromatin dynamics, cellular signaling, nuclear architecture, cell cycle checkpoints, and other cellular activities contribute to the delicate spatiotemporal control that cells utilize to regulate and maintain genome stability. This perspective will highlight DNA double-strand break (DSB) repair pathways in human cells, how DNA repair failures can lead to human disease, and how PARP inhibitors have emerged as a novel clinical therapy to treat homologous recombination-deficient tumors. We briefly discuss how failures in DNA repair produce a permissive genetic environment in which preneoplastic cells evolve to reach their full tumorigenic potential. Finally, we conclude that an in-depth understanding of DNA DSB repair pathways in human cells will lead to novel therapeutic strategies to treat cancer and potentially other human diseases.


2004 ◽  
Vol 24 (20) ◽  
pp. 8917-8928 ◽  
Author(s):  
Carsten Müller-Tidow ◽  
Ping Ji ◽  
Sven Diederichs ◽  
Jenny Potratz ◽  
Nicole Bäumer ◽  
...  

ABSTRACT Vertebrates express two A-type cyclins; both associate with and activate the CDK2 protein kinase. Cyclin A1 is required in the male germ line, but its molecular functions are incompletely understood. We observed specific induction of cyclin A1 expression and promoter activity after UV and γ-irradiation which was mediated by p53. cyclin A1 −/− cells showed increased radiosensitivity. To unravel a potential role of cyclin A1 in DNA repair, we performed a yeast triple hybrid screen and identified the Ku70 DNA repair protein as a binding partner and substrate of the cyclin A1-CDK2 complex. DNA double-strand break (DSB) repair was deficient in cyclin A1 −/− cells. Further experiments indicated that A-type cyclins activate DNA DSB repair by mechanisms that depend on CDK2 activity and Ku proteins. Both cyclin A1 and cyclin A2 enhanced DSB repair by homologous recombination, but only cyclin A1 significantly activated nonhomologous end joining. DNA DSB repair was specific for A-type cyclins because cyclin E was ineffective. These findings establish a novel function for cyclin A1 and CDK2 in DNA DSB repair following radiation damage.


2019 ◽  
Author(s):  
M.A. White ◽  
E. Darmon ◽  
M.A. Lopez-Vernaza ◽  
D.R.F. Leach

AbstractTo prevent the transmission of damaged genomic material between generations, cells require a system for accommodating DNA repair within their cell cycles. We have previously shown that Escherichia coli cells subject to a single, repairable site-specific DNA double-strand break (DSB) per DNA replication cycle reach a new average cell length, with a negligible effect on population growth rate. We show here that this new cell size distribution is caused by a DSB repair-dependent delay in completion of cell division. This delay occurs despite unperturbed cell size regulated initiation of both chromosomal DNA replication and cell division. Furthermore, despite DSB repair altering the profile of DNA replication across the genome, the time required to complete chromosomal duplication is invariant. The delay in completion of cell division is accompanied by a DSB repair-dependent delay in individualization of sister nucleoids. We suggest that DSB repair events create inter-sister connections that persist until those chromosomes are separated by a closing septum.Author SummaryThe bacterium Escherichia coli has a remarkable cell cycle where overlapping rounds of DNA replication can occur in a single generation between cell birth and division. This implies a complex coordination network between growth, genome duplication and cell division to ensure that the right number of genomes are created and distributed to daughter cells at all growth rates. This network must be robust to a number of unpredictable challenges. One such challenge is broken DNA, something that in E. coli is estimated to occur in ~20% of cell division cycles. In this work we perturb the E. coli cell cycle by elevating the frequency of repairable DNA double-strand breaks to determine which parameters of the cell cycle are conserved and which are changed. Our results demonstrate that this perturbation does not alter the average cell size at initiation of DNA replication or initiation of cell division. Furthermore, it does not alter the time taken to replicate the genome or the generation time. However, it does delay the segregation of the DNA to daughter cells and the completion of cell division explaining the increase in average cell size observed previously.


2019 ◽  
Vol 21 (Supplement_6) ◽  
pp. vi196-vi196
Author(s):  
Sharmistha Pal ◽  
Jie Bian ◽  
Brendan Price ◽  
Dipanjan Chowdhury ◽  
Daphne Haas-Kogan

Abstract New approaches to the treatment of diffuse intrinsic pontine gliomas (DIPGs) are desperately needed. DNA damage response is essential for cells to maintain genome integrity as DNA is damaged by both endogenous and exogenous stressors. Many cancer cells exhibit hyper-dependency on specific DNA repair pathways due to either defects in DNA repair mechanisms and/or high levels of endogenous stress leading to accumulation of DNA damage lesions. Identification of DIPG-specific DNA repair deficiencies and resultant dependencies may establish novel therapeutic strategies for DIPGs. METHODS To identify pathways critical for DIPG cell survival, genome wide CRISPR-Cas9 screen was performed on patient derived DIPG cell lines followed by gene set enrichment analyses. To monitor the effects of pathway inhibition on survival, apoptosis, DNA damage and repair, assays were performed to measure cell proliferation, cleaved-caspase3, gamma-H2AX and reporter based-DNA repair efficiency. RESULTS Our unbiased CRISPR approach to uncover vulnerabilities in DIPGs identified DNA double strand break (DSBs) repair pathways as essential for DIPG cell proliferation and survival. Further studies revealed high basal DSBs in DIPG cells compared to neural stem cells and primary astrocytes that suggest dependence of DIPG cell survival on specific DSB repair pathways. We confirmed the intrinsic reliance of DIPG cells on the specific DSB repair pathway of mutagenic end-joining, and defined a key role for DNA repair in suppressing endogenous DNA damage-induced apoptotic cell death. CONCLUSION DIPG cells have high endogenous DNA damage levels and escape catastrophic genomic instability and cell death by engaging DNA repair pathways, in particular the mutagenic end-joining DNA repair pathway. Inhibition of this specific DNA repair pathway represents a promising new avenue for the treatment of DIPGs.


2020 ◽  
Vol 117 (42) ◽  
pp. 26356-26365 ◽  
Author(s):  
Chen Wang ◽  
Huanyin Tang ◽  
Anke Geng ◽  
Binghua Dai ◽  
Haiping Zhang ◽  
...  

Understanding differences in DNA double-strand break (DSB) repair between tumor and normal tissues would provide a rationale for developing DNA repair-targeted cancer therapy. Here, using knock-in mouse models for measuring the efficiency of two DSB repair pathways, homologous recombination (HR) and nonhomologous end-joining (NHEJ), we demonstrated that both pathways are up-regulated in hepatocellular carcinoma (HCC) compared with adjacent normal tissues due to altered expression of DNA repair factors, including PARP1 and DNA-PKcs. Surprisingly, inhibiting PARP1 with olaparib abrogated HR repair in HCC. Mechanistically, inhibiting PARP1 suppressed the clearance of nucleosomes at DNA damage sites by blocking the recruitment of ALC1 to DSB sites, thereby inhibiting RPA2 and RAD51 recruitment. Importantly, combining olaparib with NU7441, a DNA-PKcs inhibitor that blocks NHEJ in HCC, synergistically suppressed HCC growth in both mice and HCC patient-derived-xenograft models. Our results suggest the combined inhibition of both HR and NHEJ as a potential therapy for HCC.


2010 ◽  
Vol 84 (17) ◽  
pp. 8673-8682 ◽  
Author(s):  
Marcela P. Cataldi ◽  
Douglas M. McCarty

ABSTRACT The linear DNA genomes of recombinant adeno-associated virus (rAAV) gene delivery vectors are acted upon by multiple DNA repair and recombination pathways upon release into the host nucleus, resulting in circularization, concatemer formation, or chromosomal integration. We have compared the fates of single-strand rAAV (ssAAV) and self-complementary AAV (scAAV) genomes in cell lines deficient in each of three signaling factors, ATM, ATR, and DNA-PKCS, orchestrating major DNA double-strand break (DSB) repair pathways. In cells deficient in ATM, transduction as scored by green fluorescent protein (GFP) expression is increased relative to that in wild-type (wt) cells by 2.6-fold for ssAAV and 6.6-fold for scAAV vectors, arguing against a mechanism related to second-strand synthesis. The augmented transduction is not reflected in Southern blots of nuclear vector DNA, suggesting that interactions with ATM lead to silencing in normal cells. The additional functional genomes in ATM−/− cells remain linear, and the number of circularized genomes is not affected by the mutation, consistent with compartmentalization of genomes into different DNA repair pathways. A similar effect is observed in ATR-deficient cells but is specific for ssAAV vector. Conversely, a large decrease in transduction is observed in cells deficient in DNA-PKCS, which is involved in DSB repair by nonhomologous end joining rather than homologous recombination. The mutations also have differential effects on chromosomal integration of ssAAV versus scAAV vector genomes. Integration of ssAAV was specifically reduced in ATM−/− cells, while scAAV integration was more profoundly inhibited in DNA-PKCS −/− cells. Taken together, the results suggest that productive rAAV genome circularization is mediated primarily by nonhomologous end joining.


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