Cell Cycle
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All preprints, ranked by how well they match Cell Cycle's content profile, based on 17 papers previously published here. The average preprint has a 0.01% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.
Kim, H.; Park, H.; Schulz, E. T.; Azuma, Y.; Azuma, M.
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EWSR1 (Ewing sarcoma breakpoint region 1) was originally identified as a part of an aberrant EWSR1/FLI1 fusion gene in Ewing sarcoma, the second most common pediatric bone cancer. Due to formation of the EWSR1/FLI1 fusion gene in the tumor genome, the cell loses one wild type EWSR1 allele. Our previous study demonstrated that the loss of ewsr1a (homologue of human EWSR1) in zebrafish leads to the high incidence of mitotic dysfunction, of aneuploidy, and of tumorigenesis in the tp53 mutant background. To dissect the molecular function of EWSR1, we successfully established a stable DLD-1 cell line that enables a conditional knockdown of EWSR1 using Auxin Inducible Degron (AID) system. When both EWSR1 genes of DLD-1 cell were tagged with mini-AID at its 5-end using CRISPR/Cas9 system, treatment of the (AID-EWSR1/AID-EWSR1) DLD-1 cells with a plant-based Auxin (AUX) led to the significant levels of degradation of AID-EWSR1 proteins. During anaphase, the EWSR1 knockdown (AUX+) cells displayed higher incidence of lagging chromosomes compared to the control (AUX-) cells. This defect was proceeded by a lower incidence of the localization of Aurora B at inner centromeres, and by a higher incidence of the protein at kinetochores compared to the control cells during pro/metaphase. Despite these defects, the EWSR1 knockdown cells did not undergo mitotic arrest, suggesting that the cell lacks the error correction mechanism. Significantly, the EWSR1 knockdown (AUX+) cells induced higher incidence of aneuploidy compared to the control (AUX-) cells. Since our previous study demonstrated that EWSR1 interacts with the key mitotic kinase, Aurora B, we generated replacement lines of EWSR1-mCherry and EWSR1:R565A-mCherry (a mutant that has low affinity for Aurora B) in the (AID-EWSR1/AID-EWSR1) DLD-1 cells. The EWSR1-mCherry rescued the high incidence of aneuploidy of EWSR1 knockdown cells, whereas EWSR1-mCherry:R565A failed to rescue the phenotype. Together, we demonstrate that EWSR1 is essential to prevent aneuploidy through interaction with Aurora B, most likely by regulating the localization of Aurora B at centromere.
Shao, B.; Panchenko, M.
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Members of the conserved subfamily, JADE1S and JADE1L isoforms, are expressed in epithelial cells, fibroblasts, and epithelial cell lining in vivo. JADE1 proteins interact with histone acetyl transferase HBO1 complex. The two consecutive PHD zinc fingers of JADE1 bind chromatin. We recently reported novel effects of JADE1S on cytokinesis progression. JADE1S depletion facilitated G2/M-to-G1 transition and increased polyploidy and aneuploidy. JADE1S over-expression arrested cells in late cytokinesis, an effect reversed by AURKB inhibitor. In late cytokinesis cells JADE1S protein localized to the midbody. Results suggested a JADE1S role in final abscission delay. Here we investigated the expression of JADE1 in the central spindle, interactions with HBO1, and the role of PHD fingers in late cytokinesis arrest. The midzone begins to assemble in anaphase and forms into a midbody in cytokinesis. The midbody structure connects two daughter cells and is thought to bear factors controlling the final abscission. We questioned whether, similar to established factors, JADE1S is targeted to the central spindle structures in anaphase. Indeed, in cells transitioning from mitosis to cytokinesis, JADE1S was sequentially targeted to early midzone, midbody flanking zone, and midbody. The step-wise increase of JADE1S expression in midzone and midbody of synchronously dividing cells suggested protein recruitment. The increase of late cytokinesis arrest caused by recombinant JADE1S correlated with increased expression in midbody. Spatial analysis of the members of the chromatin passenger complex, microtubule associated proteins, and centralspindlin, revealed transient co-localization with JADE1S and mapped JADE1S within the cytokinesis bridge. Deletion of the two PHD zinc fingers inactivated JADE1S ability to arrest cells in late cytokinesis but did not affect its midbody localization. Thus, PHD zinc fingers are required for JADE1S cytokinesis delay but not for midbody targeting. Recombinant HBO1 protein decreased the proportion of late cytokinesis cells, prevented late cytokinesis arrest by JADE1S as well as its midbody localization. Enzyme inactive HBO1 mutant recapitulated the wild type phenotype. The results demonstrate antagonistic relationship and suggest HBO1-mediated midbody dislocation of JADE1S. Our study supports the role of JADE1S in cytokinesis delay and implicates protein partners.
Tolbert, Z.; Reed, S.; Goodson, S.; Mason, J. M.
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Interstrand crosslinks are cytotoxic lesions that inhibit essential processes including replication and transcription. Replication fork reversal occurs in response to interstrand crosslink inducing drug, MMC, but how replication fork reversal promotes repair of interstrand crosslinks is poorly understood. Here, we investigated the role of the RAD54L translocase in interstrand crosslink repair. We found RAD54L is required to promote nascent DNA degradation in FANCD2 and FANCA-depleted cells consistent with a previous study indicating RAD54L promotes replication fork reversal. We further show RAD54L activity is required for formation of radial chromosomes in FANCD2-deficient cells suggesting fork reversal may be required to generate the intermediate undergoing aberrant fusion in FANC-deficient cells. Finally, we demonstrate FANCD2 foci accumulate and DSBs persist in RAD54L-deficient cells indicating RAD54L is required for efficient repair of DSBs. Together, our results indicate RAD54L plays multiple roles in efficient processing and repair of interstrand crosslinks.
Kaida, D.; Satoh, T.; Ishida, K.; Yoshimoto, R.
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Pre-mRNA splicing is an indispensable mechanism for eukaryotic gene expression. Splicing inhibition causes cell cycle arrest at G1 and G2/M phases, which is thought to be one of the reasons for the potent antitumor activity of splicing inhibitors. However, the molecular mechanisms underlying the cell cycle arrest have many unknown aspects. In particular, the mechanism of G2/M-phase arrest caused by splicing inhibition is completely unknown. Here, we found that lower and higher concentrations of pladienolide B caused M-phase and G2-phase arrest, respectively. We analyzed protein levels of cell cycle regulators and found that a truncated form of the p27 CDK inhibitor, named p27*, accumulates in G2-arrested cells. Overexpression of p27* caused partial G2-phase arrest. Conversely, knockdown of p27* accelerated exit from G2/M phase after washout of splicing inhibitor. These results suggest that p27* contributes to G2/M-phase arrest caused by splicing inhibition. We also found that p27* bound to and inhibited M-phase cyclins, although it is well known that p27 regulates G1/S transition. Intriguingly, p27*, but not full-length p27, was resistant to proteasomal degradation and remained in G2/M phase. These results suggest that p27*, which is a very stable truncated protein in G2/M phase, contributes to G2-phase arrest caused by splicing inhibition.
Pang, H.; He, W.; Hou, Y.; Feng, S.; Zhang, H.; Guo, W.; Liu, R.; Meng, J.
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Cell cycle division 25B (CDC25B) belongs to the family of cell cycle regulatory proteins. It drives G2/M transition by activating cyclin-dependent protein kinases (CDK1), also known as CDC2, whose activity is directly related to its subcellular localization and phosphorylation state.14-3-3 (YHWA) regulates cell division cycle by binding to Cdc25B as a chaperone protein in mammals. Previously, we found that Cdc25B-Ser149 plays an important role in G2/M transition of mouse fertilized eggs, but the molecular mechanism of this transition remains unclear. In this study, we assessed the role of 14-3-3{varepsilon} (YHWAE) interaction with phosphorylated Cdc25B-Ser149 in G2/M transition of mouse fertilized eggs. Co-expression of Cdc25B-Ser149A and 14-3-3{varepsilon} could effectively activate maturation promoting factor (MPF) through direct dephosphorylation of Cdc2-Tyr15, and induce G2 fertilized eggs to enter mitosis rapidly. However, co-expression of the phosphomimic Cdc25B-Ser149D or Cdc25B-WT and 14-3-3{varepsilon} showed no significant difference in comparison with control groups. 14-3-3{varepsilon} binds to Cdc25B-WT, which is abolished when Ser149 is mutated to Ala. In addition, we found that 14-3-3{varepsilon} and Cdc25B were co-localized in the cytoplasm at the G1, S and early G2 phases. Cdc25B was translocated from the cytoplasm to the nucleus at the late G2 phase. However, when Ser149 is mutated to Ala, the cytoplasmic localization of Cdc25B is completely abolished. Our findings suggest that Cdc25B-Ser149 is another specific binding site for 14-3-3{varepsilon} in G2/M transition of one-cell fertilized mouse eggs, which plays essential roles in the regulation of early development of fertilized mouse eggs.
Dongardive, V.; Jathar, S.; Srivastava, J.; Tripathi, V.
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The cell cycle comprises different phases and is a tightly regulated process at the molecular level. During the cell cycle, two key events occurred: DNA duplication during the S phase and chromosome segregation during mitosis. Accurate cell cycle progression, achieved through faithful chromosome segregation, is essential for maintaining cell fidelity. Long noncoding RNAs are a subclass of noncoding RNA that are longer than 200 bp and form RNA protein complexes (RNPs) to regulate various biological processes. Herein, we demonstrate that lncRNA NORM is involved in regulating the cell cycle by maintaining proper chromosome segregation. NORM exhibited G2 phase-specific expression, and the depletion of NORM resulted in a significant G2/M arrest. NORM-depleted cells failed to progress in mitosis and showed defects in chromosome segregation. We further demonstrated that NORM binds to proteins such as Plk1 and Nsun2. Depletion of NORM hindered the interaction between Plk1 and Bub1, resulting in reduced kinetochore localization of Plk1 during prometaphase. Our results also show that the depletion of NORM affects the binding of Nsun2 protein to CDK1 mRNA and, consequently, the stabilization of CDK1 at the protein level. Altogether, our results demonstrate that NORM regulates chromosome segregation by mediating the interaction between Plk1 and Bub1.
Sharma, V.; Thakore, P.; Krishnan, M.; Majumdar, S.
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Transposable elements function as one of the major effectors in response to biological or environmental stress. Under normal conditions, host organisms deploy epigenetic and post-transcriptional machinery (histone modifications, chromatin remodelers, long non-coding RNAs (lncRNAs)) at the TE sites to contain their mobility. But many a times, the chromatin architecture undergoes TE induced changes under the effect of stress that in turn might lead to unprecedented gene expression. LncRNAs are emerging as a crucial tool in the regulation of TEs. TEs possess remarkable abilities to respond in the face of stress, ranging from undetected mutations to changing the regulatory landscape of the host. Although the relationship between stress response and TE activation/deactivation is well acknowledged but our understanding of the mechanism of regulation remains poor. This study focuses on the gene expression of THAP9, a domesticated transposon and lncRNA THAP9-AS1 (THAP9-anti sense1), which form a sense and anti-sense gene pair with a promoter overlap of approximately 350bp. The two genes exhibit different patterns of gene expression under different types of stresses in the S-phase of the cell cycle. THAP9-AS1 is always upregulated under stress whereas THAP9 exhibits both downregulation and upregulation in different stresses. Both THAP9 and THAP9-AS1 exhibit a periodic gene expression throughout the S-phase which is a characteristic of cell cycle regulated genes.
Walne, T.; Maple, L.; Li, N.; Christie, I. N.; Smythe, C.; Thompson, R. H.
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Accurate DNA replication is essential for the faithful transmission of genetic information to daughter cells. Disruption of this process leads to replication stress, which can trigger mutagenesis, double-stranded DNA breaks, and genomic instability. Transcription is a well-established source of replication stress, contributing through altered chromatin dynamics, DNA structural changes, and direct transcription-replication collisions (TRCs). Here, we uncover a novel role for the RNA/DNA helicase UPF1 in maintaining replication fidelity and responding to replication stress. We show that cancer cells deficient in UPF1 exhibit elevated levels of spontaneous, transcription-dependent replication fork stalling and double-stranded breaks, along with heightened sensitivity to Rad51 and PARP1 inhibitors. Paradoxically, these cells also display resistance to exogenous replication stress, with reduced replication fork stalling, diminished mitotic delays, and decreased activation of mitotic DNA synthesis (MiDAS), a key salvage pathway under stress conditions. Low UPF1 expression has been previously linked to drug resistance in renal carcinoma and correlates with poor prognosis across multiple cancer types. Our findings position UPF1 as a critical guardian against transcription-associated replication stress and suggest that UPF1 deficiency may underlie mechanisms of cancer therapy resistance whilst leaving cells vulnerable to the depletion of key DNA repair pathways. Targeting this vulnerability could offer a promising avenue for therapeutic intervention in UPF1-low tumours.
Kim, S.-J.; Maric, C.; Briu, l.-m.; Fauchereau, F.; Baldacci, G.; Debatisse, M.; KOUNDRIOUKOFF, S.; cadoret, J. C.
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Over the last decade, CDK4/6 inhibitors (palbociclib, ribociclib and abemaciclib) have emerged as promising anticancer drugs. Numerous studies have demonstrated that CDK4/6 inhibitors efficiently block the pRb-E2F pathway and induce cell cycle arrest in pRb-proficient cells. Based on these studies, the inhibitors have been approved by the FDA for treatment of advanced hormonal receptor (HR) positive breast cancers in combination with hormonal therapy. However, some evidence has recently shown unexpected effects of the inhibitors, promoting needs to understand more about the mechanism of inhibitors beyond pRb. Our study demonstrates here how palbociclib impairs the origin firing in the DNA replication process in pRb-deficient cell lines. Strikingly, despite the absence of pRb, cells treated with palbociclib synthesize less DNA without any induced cell cycle arrest. Furthermore, palbociclib treatment disturbs the temporal program of DNA replication and reduces the density of replication forks. Cells treated with palbociclib show a defect in the loading of proteins of the Pre-initiation complex (Pre-IC) on chromatin, indicating a reduced initiation of DNA replication. Our findings highlight hidden effects of palbociclib on the dynamics of DNA replication and on its cytotoxic consequences on cell viability in the absence of pRb. This study provides a potential therapeutic application of palbociclib to target genomic instability towards pRb deficient patients. Significance StatementPalbociclib is a promising anticancer drug for pRb-proficient cell, particularly for hormonal receptor positive breast cancer, that induces the cell cycle arrest. But what about pRb deficient cell lines ? Our results show that Palbociclib disturb the DNA replication process inducing a replicative stress, an increase of DNA damages and leading to a significant decrease in cell viability. Palbociclib impairs the DNA synthesis reducing the number of active origins with the decrease of availability of the pre-initiation complexes. We believe that the demonstration of this effect of palbociclib on pRb-deficient cells may be a new therapeutic entry point in combination with other treatments for these types of cancer. Replicative stress can be one of weaknesses of pRb defficient cancer cells.
Messina, G.; Prozzillo, Y.; Delle Monache, F.; Santopietro, M. V.; Atterrato, M. T.; Dimitri, P.
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Floating-Harbor syndrome (FHS) is a rare genetic disease affecting human development caused by heterozygous truncating mutations in the Srcap gene, which encodes the ATPase SRCAP, the core catalytic subunit of the homonymous chromatin-remodeling complex. Using a combined approach, we studied the involvement of SRCAP protein in cell cycle progression in HeLa cells. In addition to the canonical localization in interphase nuclei, both SRCAP and its Drosophila orthologue DOMINO-A localized to the mitotic apparatus after nuclear envelope breakdown. Moreover, SRCAP and DOMINO-A depletion impaired mitosis and cytokinesis in human and Drosophila cells, respectively. Importantly, SRCAP interacted with several cytokinesis regulators at telophase, strongly supporting a direct role in cytokinesis, independent of its chromatin remodeling functions. Our results provide clues about previously undetected, evolutionarily conserved roles of SRCAP in ensuring proper mitosis and cytokinesis. We propose that perturbations in cell division contribute to the onset of developmental defects characteristic of FHS. SummaryO_ST_ABSSignificance statementC_ST_ABSSrcap is the causative gene of the rare Floating Harbor syndrome (FHS). It encodes the ATPase SRCAP, the core catalytic subunit of the homonymous multiprotein chromatin-remodeling complex in humans, which promotes the exchange of canonical histone H2A with the H2A.Z variant. According to the current view on SRCAP protein functions, FHS is caused by chromatin remodeling defects. Our findings suggest that, in addition to the established function as epigenetic regulator, SRCAP plays previously undetected and evolutionarily conserved roles in cell division. Hence, we propose that perturbations in cell division produced by SRCAP mutations are important causative factors co-occurring at the onset of FHS.
Subhadarsini, I.; Sahu, J. K.; Thakur, S.; dash, r.; Acharya, N.
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Cisplatin and its analogues are valuable anti-cancer drugs that target the genome, block DNA replication, and induce apoptosis. As a counteractive response, cancer cells activate several mechanisms to maintain uninterrupted DNA replication, and those are yet to be fully elucidated. This study using head and neck squamous carcinoma cells (HNSCC) demonstrated the involvement of DNA polymerase Kappa (Pol{kappa}), a trans-lesion DNA synthesis (TLS) polymerase that primarily functions as a mismatch extender, in cisplatin resistance. Interestingly, the catalytic activity of Pol{kappa} plays a minimal role in adduct bypass; rather, tripartite interactions involving it, rewire and stabilize the stalled replication fork. While the Pol{kappa}-PCNA-Pol{delta} axis facilitates efficient proliferation of cisplatin-resistant cells, the Pol{kappa}-PCNA-USP18 axis stabilizes critical proteins of ATM-ATR, and HR and NHEJ pathways to protect replication fork, repair damage, and restart DNA synthesis under cisplatin-induced stress. In resistant cells, the efficiency of ubiquitin-mediated proteasomal degradation is low, which is further diminished by Pol{kappa}-recruited USP18 deubiquitinase, maintaining a cellular homeostasis. In conclusion, for the first time, we uncovered two critical Pol{kappa} axes crucial for regulating cisplatin toxicity in cells and provided foundation for future drug discovery against advance HNSCC by targeting this non-essential DNA polymerase.
Feu, S.; Unzueta, F.; Ercilla, A.; Jaumot, M.; Agell, N.
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Solving the problems that replication forks encounter when synthesizing DNA is essential to prevent genomic instability. Besides their role in DNA repair in the G2 phase, several homologous recombination proteins, specifically Rad51, have prominent roles in the S phase. Using different cellular models, Rad51 has been shown not only to be present at ongoing and arrested replication forks but also to be involved in nascent DNA protection and replication fork restart. Through pharmacological inhibition, here we study the specific role of Rad51 in the S phase. Rad51 inhibition in non-transformed cell lines did not have a major effect on replication fork progression under non-perturbed conditions, but when the same cells were subjected to replication stress, Rad51 became necessary to maintain replication fork progression. Notably, the inhibition or depletion of Rad51 did not compromise fork integrity when subjected to hydroxyurea treatment. Rad51 inhibition also did not decrease the ability to restart, but rather compromised, fork progression during reinitiation. In agreement with the presence of basal replication stress in human colorectal cancer cells, Rad51 inhibition reduced replication fork speed in these cells and increased {gamma}H2Ax foci under control conditions. These alterations could have resulted from the reduced association of DNA polymerase to chromatin, as observed when inhibiting Rad51. It may be possible to exploit the differential dependence of non-transformed cells versus colorectal cancer cells on Rad51 activity under basal conditions to design new therapies that specifically target cancer cells.
Kubiak, J. Z.; El Dika, M.; Wechselberger, L.; Djeghout, B.; Benouareth, D. E.; Jederka, K.; Lewicki, S.; Prigent, C.; Kloc, M.
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The timing of the M-phase entry and its progression are precisely controlled by a CDC6-dependent mechanism that inhibits the major mitotic kinase CDK1, and, thus, regulates the dynamic of CDK1 during the M-phase. In this paper, we describe the differential regulation of the mitotic CDK1 dynamics by exogenous cyclin A or a non-degradable cyclin B added to the Xenopus laevis embryo cycling extracts. We showed that the variations in the level of cyclin B modify both CDK1 activity and the timing of the M-phase progression, while the cyclin A levels modify only CDK1 activity without changing the timing of the M-phase events. In consequence, CDC6 regulates the M-phase through endogenous cyclin B, but not cyclin A, which we demonstrated directly by the depletion of cyclin A, and the addition of CDC6 to the cycling extracts. Further, we showed, by p9 precipitation (p9 protein associates with Cyclin-Dependent Kinases, CDK), followed by the Western blotting that CDC6, and the bona fide CDK1 inhibitor Xic1, associate with CDK1 and/or another CDK present in Xenopus embryos, the CDK2. Finally, we demonstrated that the Xic1 temoprarily separates from the mitotic CDK complexes during the peak of CDK1 activity. These data show the differential coordination of the M-phase progression by CDK1/cyclin A and CDK1/cyclin B, confirm the critical role of the CDC6-dependent CDK1 inhibition in this process and show that CDC6 acts through the cyclin B- and not cyclin A/CDK complexes. This CDC6- and cyclin B-dependent mechanism may also depend on the precisely regulated association of Xic1 with the CDK complexes. We postulate that the dissociation of Xic1 from the CDK complexes allows the maximal activation of CDK1 during the M-phase.
Bhattacharya, M.; Sivan, A.; Baum, G.; Mukherjee, S.; Morgenstern, M.
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The expression and functions of genes are largely dependent on genome integrity and stability. Codon usage plays a significant role in maintaining stability and functions of genes. Perturbation in codon sequence can lead to functional and structural dysfunction of a gene. In our study, we performed the codon usage analyses of cell cycle-dependent genes. Various codon usage parameters were analyzed using nucleotide compositions like RSCU, ENC, and GC analyses. Codon usage analysis using nucleotide composition analysis showed that cell cycle dependent genes follow non-optimal codon usage. Genes preferred AT-rich ending over GC-rich ending, thereby suggesting preference for non-optimal codons. Neutrality and parity plot showed that the codon preference is a result of mutation selection pressure. To study the codon usage implications, we optimized the codons of cell cycle dependent genes (CDK1 and NUF2) to study their effects on cell cycle as well as on the apoptosis in vitro. We observed that codon optimization alters the cell cycle length in cell cycle-dependent genes. Codon changes further influence cell fate and survival, highlighting the impact of codon usage on cellular outcomes. Apart from affecting the functional aspects of the proteins, our studies revealed that codon usage preferences directly affect the stability of both mRNA and proteins. Specifically, genes and proteins with non-optimal codons exhibited reduced stability compared to their optimized counterparts, suggesting critical implications for cell cycle regulation and apoptosis.
You, Z.; Hsiao, H.-W.; Yang, C.-C.; Goto, H.; Masai, H.
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Claspin, known to be highly disordered, plays important roles in replication fork progression, initiation and cellular responses to replication stress. However, regulation of its structure and molecular interactions is not completely understood. We show here, through Proximity-Ligation-Assays, the evidence for intramolecular interaction between the N- and C-terminal segments of Claspin, which depends on the Acidic-Patch [AP] segment near its C-terminus. Interaction of Claspin with DNA and replication factors is highly stimulated in {Delta}AP mutant and by prior dephosphorylation. The wild-type Claspin inhibits the helicase activity of MCM in an AP-dependent manner. {Delta}AP and dephosphorylated Claspin exhibit resistance to trypsin digestion compared to wild-type, suggesting the presence of structural domains in the formers. We propose that Claspin is converted from disordered (closed) to structured (open) conformation at initiation, which stimulates its DNA binding and interaction with replication factors and counteracts its helicase inhibitory activity to trigger initiation of DNA replication.
Niljikar, M.; Barreto-Galvez, A.; Patel, S.; Gagliardi, J. E.; Kumar, V.; Pradeep, A.; Juwarwala, A.; Gerhardt, J.; Chang, Y.; Montagna, C.; Madireddy, A.
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The replicative polymerase delta is inefficient copying repetitive DNA sequences. Error-prone translesion polymerases have been shown to switch with high-fidelity replicative polymerases to help navigate repetitive DNA. We and others have demonstrated the importance of one such translesion polymerase, polymerase Eta (pol eta), in facilitating replication at genomic regions called common fragile sites (CFS), which are difficult-to-replicate genomic regions that are hypersensitive to replication stress. However, the mechanistic basis for pol etas role in facilitating DNA replication at CFS and(or) at other genomic regions is currently unclear. Importantly, the functional importance of three non-catalytic domains of pol eta, the Ubiquitin-binding Zinc finger (UBZ), PCNA interacting protein (PIP) domain, and the F1 domain which mediates its switch with replicative DNA polymerases in mediating replication stress, especially at CFS loci is not clear. Here, we report that the PIP and UBZ domains of Pol Eta are both critical for its role in mediating cellular replication stress, especially at CFS. The absence of either domain induced elevated replication stress, replication stalling and DNA damage accumulation genome wide. This effect was even more pronounced at CFS loci leading to the accumulation of under replication DNA in G2/M. Importantly, while the inactivation of the UBZ domain resulted in a robust FANCD2 monoubiquitylation (a prominent marker of FANCD2 activation), FANCD2 recruitment genome wide was significantly impacted, especially at CFSs such as FRA16D. These S-phase phenotypes result in ssDNA gap formation and the persistence of under-replicated genomic regions upon transition to G2/M. While post-replicative gap filing/ repair by Mitotic DNA synthesis is activated in the mutants, it only effectively resolves UFBs in the F1* cells. The PIP*, UBZ* and pol eta-/- cells unfortunately manifest excessive toxic cytosolic DNA that instigates a strong innate immune response. These results collectively show that translesion polymerase Eta functions in a common pathway with FANCD2 to prevent replication perturbation and instability at CFS loci.
Ghosh, I.; Khalil, M. I.; De Benedetti, A.
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A main focus of the work in our lab is on the activity of Tousled Like Kinase 1 (TLK1) in the area of DNA Damage and Repair. As one of its key interactor, TLK1 phosphorylates NIMA related kinase 1 (Nek1), and Nek1 was reported by Spies et al. to phosphorylate and regulate the activity of the key HRR protein Rad541, which suggested an intriguing signal transduction pathway: TLK1>Nek1>Rad54. In an effort to confirm such relations, we now report that we have not been able to reproduce key findings from that study. Specifically, we found that Nek1 does not phosphorylate RAD54-S572 as was reported. We generated Nek1-KO mouse NT1 cells2 and Nek1-Knock-down in Hek293 (same cells as in Spies et al.), and the pRAD54-S572 signal does not change with our custom Ab, with or w/o IR. When we used an Ab from the Lobrich lab, it detected an immunoreactive band of wrong size for RAD54, which also did not change after IR even in synchronized G2 cells, contrary to their report. We also note that their P-assignment was based on guessing a weak consensus Nek1 sequence, and that site-directed mutagenesis of RAD54-S572 failed to yield biological effects in their in in vitro studies1. To conclusively establish that S572 is not a site of phosphorylation of Nek1, we carried out a IVK with purified Nek1 and RAD54 followed by MS analysis of the phosphatides, which revealed several but not S572. We also could not reproduce their copurification of Nek1-RAD54 by coIP, calling into question this interaction. Neither we could reproduce their results demonstrating the importance of Nek1 for HRR using the same SceI-mediated DR-GFP conversion assays.
Andrabi, S.; Sarwar, Z.; Bhat, S. A.; Gillani, S. Q.; Reshi, I.; Un Nisa, M.; Adelmant, G.; Marto, J.
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DBC1 plays a critical role in various cellular functions notably cell proliferation, transcription, histone modification and adipogenesis. Current reports about the role of DBC1 in tumorigenesis are paradoxical and designate DBC1 both as a tumor suppressor or an oncogene. Here, using small T antigen of polyoma virus (PyST) as a tool, we have delineated a signaling mechanism that connects LKB1 to AKT1 via DBC1. We report that PyST associates with DBC1 and leads to its down-regulation. Our results also show that PyST expression promotes LKB1 activation which in turn leads to in the downregulation of DBC1 protein. Absence of DBC1 results in transcriptional upregulation and consequently enhanced protein levels of TRB3. TRB3 sequesters AKT1, and consequently the phosphorylation and activity of AKT1 is compromised. This ultimately results in inactivation of pro-survival pathways triggered via AKT1 signaling. Our studies thus provide an insight into a signaling pathway that connects LKB1, DBC1, TRB3 and AKT1.
de Campos Nebel, M.
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DNA-Topoisomerase crosslinks are lesions formed by proteins covalently bound to DNA, and these complexes directly impede transcription and replication, thereby threatening genomic integrity. Tyrosyl-DNA phosphodiesterase 1 (TDP1) and MRE11 remove DNA-protein adducts, but their functional relationship remains unclear. We show TDP1 and MRE11 act epistatically in the removal of etoposide-stimulated topoisomerase II cleavage complexes (TOP2cc) in S/G2 phases of the cell cycle. Etoposide-stimulated TOP2cc formed ahead of and behind replication forks, inhibiting fork progression. Consistently, replication fork progression was decreased in cells lacking TDP1 or upon inhibition of MRE11 nuclease activity, and a similar defect was observed when combining both conditions. Furthermore, TDP1 promotes DNA end resection downstream of MRE11 and facilitates nascent strand degradation at stalled forks independently of MRE11 nuclease activity. Accordingly, combined TDP1 loss and MRE11 inhibition did not exacerbate etoposide hypersensitivity. We provide evidence that TDP1 stimulates replication-coupled removal of TOP2cc by facilitating DNA end processing through both MRE11-dependent and -independent pathways. Overall, our results suggest TDP1 promotes nucleolytic excision of TOP2-mediated replication blocks, in addition to its canonical hydrolase activity.
Sharma, V. K.; Islam, S.; Borkar, J.; Mishra, S.; Panda, D.; Santra, M. K.; Lahiri, M.
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Apoptosis inhibitor 5 (Api5) is an inhibitor of apoptosis, which is found to be upregulated in several cancers and promotes invasion as well as metastasis. Over-expression of Api5 is positively co-related with poor survival of cancers and inhibition of DNA damage induced apoptosis in cancerous cells. Acetylation at lysine 251 (K251) on Api5 facilitates the stability of the protein and thus functionally provides resistance to cancer cells against chemotherapeutic or anti-cancerous agents. However, the regulation of Api5 upon DNA damage is not yet known. In this study, we demonstrate that Api5 undergoes degradation following DNA damage via the ubiquitin-proteasome system. Upon DNA damage, ATR was observed to phosphorylate Api5 at serine 138 which led to the cytoplasmic localisation of Api5. The E3-ubiquitin ligase, SCF-FBXW2 ubiquitinates Api5 leading to its proteasomal degradation.