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Genes & Development

Cold Spring Harbor Laboratory

All preprints, ranked by how well they match Genes & Development's content profile, based on 90 papers previously published here. The average preprint has a 0.06% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.

1
Differential usage of two, distinct DNA-binding domains regulates tissue-specific occupancy of the pioneer factor Zelda

Torres-Zelada, E. F.; Komori, H.; Liu, H.-Y.; Larson, E. D.; Yang, A. W.; Fitzpatrick, Z. A.; Hughes, T. R.; Rushlow, C. A.; Lee, C.-Y.; Harrison, M. M.

2025-10-07 developmental biology 10.1101/2025.10.06.680768 medRxiv
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Pioneer transcription factors act at the top of gene-regulatory networks by promoting accessible chromatin at the cis-regulatory regions that drive gene expression. Despite their ability to bind closed chromatin, pioneer factors occupy distinct binding sites in different tissues. The pioneer factor Zelda promotes the undifferentiated fate in both the early Drosophila embryo and in the neural stem cells (neuroblasts) of the larval brain. Tissue-specific binding by Zelda identifies cell-type specific enhancers, which are enriched for different DNA-sequence motifs. We investigated the features that promoted cell-type specific occupancy by testing the role of conserved, structured protein domains in the capacity of Zelda to promote the embryonic and neuroblast cell fates. We unexpectedly identified that the most deeply conserved region in Zelda, the second zinc finger, has opposing functions in the embryo and neuroblasts. We showed that this zinc finger is a previously unrecognized DNA-binding domain that is specifically required for Zelda binding to a G-rich motif in larval neuroblasts. The pioneering function of Zelda depends largely on the C-terminal cluster of zinc fingers that promotes binding in the early embryo, suggesting that pioneer function may depend on how Zelda engages the genome. As opposed to co-factor expression or chromatin environment, our data identify tissue-specific usage of two, widely separated DNA-binding domains as the mechanism controlling tissue-specific binding and activity.

2
Dimerization of the S. cerevisiae Spo11 core complex

Ait Bella, H.; Survi, M.; Urdiain-Arraiza, J.; Daga, D.; Subramanian, V. V.; Hochwagen, A.; Claeys Bouuaert, C.

2026-01-17 molecular biology 10.64898/2026.01.16.699991 medRxiv
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Spo11 initiates meiotic recombination by introducing programmed DNA double-strand breaks. DNA cleavage occurs via a topoisomerase-like mechanism involving hybrid active sites formed at the dimer interface. However, in contrast to its topoisomerase relative (Topo VI), Spo11 does not form a stable dimer, likely to prevent uncontrolled DNA cleavage. Here, we investigated the dimerization of S. cerevisiae Spo11 in complex with its partners Ski8, Rec102, and Rec104. We show that the Spo11 complex dimerizes transiently on DNA, forming unstable dimeric complexes with duplex and branched DNA substrates. Guided by AlphaFold modeling of a pre-cleavage complex, we identified mutations that reduce dimerization. Surprisingly, DSB formation is resilient to mutagenesis of the Spo11 dimer interface, implying that additional factors promote dimerization in vivo. Finally, we found that Rec102 exerts a key DNA-binding function, essential for catalysis, and show that it also participates in dimerization through trans contacts with Ski8. Our work provides new insights into the mechanism of Spo11 dimerization and the role of its partners in initiating meiotic recombination.

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Cohesin-axis interaction via a conserved Red1 motif promotes domain-specific DSB formation and Mek1 activation

Rajalingam, A.; Tsuruta, Y.; Roy, T.; Urdiain-Arraiza, J.; Alnaser, H. F.; Hiraga, S.-i.; Claeys Bouuaert, C.; Murakami, H.

2026-07-08 molecular biology 10.64898/2026.07.03.736430 medRxiv
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Faithful chromosome segregation during meiosis I requires tight control of interhomolog recombination. In budding yeast, the meiotic chromosome axis, built on Rec8-containing cohesin together with Red1 and Hop1, acts as a central platform regulating meiotic recombination from programmed DNA double-strand break (DSB) formation to checkpoint signaling and chromosome segregation, yet how cohesin recruits axis proteins remains unclear. Here, we identified a conserved cohesin-interacting motif (CIM) in Red1 that directly binds Rec8. AlphaFold3 modeling predicted that Red1-CIM forms a short -helix that docks into a conserved hydrophobic pocket within the Rec8 C-terminal winged-helix domain, which we confirmed biochemically. Disruption of the Red1-CIM preferentially impaired Red1 recruitment to Rec8-dependent chromosomal regions, while relative enrichment in Rec8-independent domains was preserved, leading to reduced DSB formation in Rec8-dependent domains. The Red1-CIM mutation also reduced crossover formation, increased chromosome missegregation, and reduced spore viability. Notably, this spore lethality exceeded that predicted by the reduction in DSB formation. Consistently, red1-CIM mutants failed to activate the meiotic checkpoint kinase Mek1. Finally, we provide evolutionary, structural, and biochemical evidence that this Red1-Rec8 interaction is conserved across fungi and plants. Together, these findings define a direct molecular bridge linking cohesin to chromosome-axis organization, spatial DSB regulation, and checkpoint signaling during meiosis.

4
Critical roles of MCM8 in meiotic recombination during mouse spermatogenesis

Surarapu, L. K.; Tilton, K.; Stritto, M. R. D.; Acharya, A.; Menendez, A. M.; Lu, M.; Shaheen, N.; Liang, S.; Iyer, M.; Cejka, P.; Pratto, F.; Jain, D.

2026-03-30 molecular biology 10.64898/2026.03.28.714908 medRxiv
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AO_SCPLOWBSTRACTC_SCPLOWMeiotic DNA double-strand break (DSB) formation and repair by homologous recombination is crucial for ensuring proper chromosome segregation. In mice, the mini-chromosome maintenance family protein, MCM8, has been proposed to function in meiotic recombination and its loss leads to infertility, but the underlying mechanisms are poorly understood. Here we used cytological and genomic assays to infer the role of MCM8 during meiotic recombination in mouse spermatocytes. We show that MCM8-deficient spermatocytes exhibit increased levels of SPO11-dependent DSBs at recombination hotspots during early prophase. DSBs are resected normally and accumulate strand-exchange proteins. However, downstream recombination intermediates are barely detected and recombination intermediate-associated MutSgamma foci do not form efficiently. Consistent with a role in early recombination intermediate processing, MCM8 binds to displacement loop (D-loop) structures in vitro. We propose that MCM8 controls meiotic recombination in at least two ways. MCM8 participates in regulating meiotic DSB number. Further, MCM8 plays a role in the formation and/or stability of post-resection recombination intermediates, steps that are critical for DSB repair via recombination and for efficient synapsis of homologous chromosomes during mouse meiosis.

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Auto-methylation of the histone methyltransferase SetDB1 at its histone-mimic motifs ensures the spreading and maintenance of heterochromatin

Tang, Q.; Zhang, A.; Sullivan, M.; Fejes Toth, K.; Aravin, A. A.

2025-01-24 genetics 10.1101/2025.01.21.634156 medRxiv
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Heterochromatin plays a critical role in nuclear organization and the regulation of gene expression by directing 3D genome organization, regulating lineage-specific gene expression, and ensuring the repression of transposable elements and endogenous retroviruses. Functionally and structurally distinct chromatin domains are defined by the so-called histone code, which consists of combinations of post-translational histone modifications deposited by "code writers" and recognized by "code readers." The primary mark of heterochromatin, trimethylation of histone H3 at lysine 9 (H3K9me3), is deposited by histone methyltransferases, such as SetDB1, and serves as a binding platform for readers, most notably HP1 family proteins. Using a reporter system to monitor the dynamics of heterochromatin establishment and maintenance, we demonstrated that transient tethering of HP1 triggers the SetDB1-dependent establishment of stable heterochromatin. This finding indicates the presence of a feedback mechanism wherein the reader of the H3K9me3 mark recruits the writer. We further discovered that the genetic interaction between SetDB1 and HP1 is mirrored by a direct physical interaction. This interaction requires the auto-methylation of two conserved histone mimic motifs located in unstructured regions of SetDB1. HP1 binds these SetDB1 motifs using the same molecular interface it employs to recognize the modified histone tail. Our findings show that SetDB1 auto-methylation is essential for the spreading and stable maintenance of heterochromatin. This includes its roles in processes such as X-chromosome inactivation and the negative feedback regulation of a large gene family encoding KRAB-ZNF transcriptional repressors. Thus, the primary heterochromatin mark is not limited to nucleosomes but is also deployed on the marks writer itself. This fosters a direct physical interaction between the writer and the reader, ensuring key features of heterochromatin: its spreading to establish extended domains and its stable maintenance through cell divisions.

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G-quadruplexes are a source of vulnerability in BRCA2 deficient granule cell progenitors and medulloblastoma

Keahi, D. L.; Sanders, M. A.; Paul, M. R.; Webster, A. L. H.; Fang, Y.; Wiley, T. F.; Shalaby, S.; Carroll, T. S.; Chandrasekharappa, S. C.; Sandoval-Garcia, C.; MacMillan, M. L.; Wagner, J. E.; Hatten, M. E.; Smogorzewska, A.

2024-07-22 cancer biology 10.1101/2024.07.20.604431 medRxiv
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Biallelic pathogenic variants in the essential DNA repair gene BRCA2 causes Fanconi anemia, complementation group FA-D1. Patients in this group are highly prone to develop embryonal tumors, most commonly medulloblastoma arising from the cerebellar granule cell progenitors (GCPs). GCPs undergo high proliferation in the postnatal cerebellum under SHH activation, but the type of DNA lesions that require the function of the BRCA2 to prevent tumorigenesis remains unknown. To identify such lesions, we assessed both GCP neurodevelopment and tumor formation using a mouse model with deletion of exons three and four of Brca2 in the central nervous system, coupled with global Trp53 loss. Brca2{Delta}ex3-4;Trp53-/- animals developed SHH subgroup medulloblastomas with complete penetrance. Whole-genome sequencing of the tumors identified structural variants with breakpoints enriched in areas overlapping G-quadruplexes (G4s). Brca2-deficient GCPs exhibited decreased replication speed in the presence of the G4-stabilizer pyridostatin. Pif1 helicase, which resolves G4s during replication, was highly upregulated in tumors, and Pif1 knockout in primary MB tumor cells resulted in increased genome instability upon pyridostatin treatment. These data suggest that G4s may represent sites prone to replication stalling in highly proliferative GCPs and without BRCA2, G4s become a source of genome instability. Tumor cells upregulate G4-resolving helicases to facilitate rapid proliferation through G4s highlighting PIF1 helicase as a potential therapeutic target for treatment of BRCA2-deficient medulloblastomas.

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Brr2p-mediated unwinding of U4/U6 is promoted by a mutually exclusive intra-molecular stem loop in U4 and involves destabilization of the 5' stem-loop of U4

Nielsen, K. H.; Das, A.; Staley, J. P.

2025-08-02 molecular biology 10.1101/2025.08.01.667943 medRxiv
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Before the spliceosome engages a pre-mRNA to excise its introns, the catalytic small nuclear RNA (snRNA) U6 is inactive because of base pairing with U4 snRNA; thus, spliceosome activation requires unwinding of base paired U4/U6, composed of stem I and stem II. The Ski2-like ATPase and RNA helicase Brr2p facilitates U4/U6 unwinding and the ultimately irreversible release of U4; however, the molecular mechanism behind Brr2p-mediated U4/U6 unwinding and the roles of the snRNAs in unwinding remains incompletely understood. To investigate the mechanism in vivo in budding yeast, we screened an unwinding deficient, cold-sensitive brr2 mutant, associated with retinitis pigmentosa in humans, for genetic interactions with mutations in U4 snRNA. Destabilizing U4 mutations in either stem I or stem II suppressed the brr2 mutant, providing functional evidence that Brr2p disrupts both stems in vivo. Further, destabilizing mutations in the intervening 5 stem loop of U4 also suppressed the brr2 mutant, and in vitro Brr2p displaced Prp31p from this stem loop, implicating Brr2p in disruption of this structure, too. Unexpectedly and counterintuitively, many destabilizing mutations in U4/U6 stem I exacerbated the brr2 mutant. These mutations disrupted an intramolecular stem loop (U4-ISL1) in U4 that is mutually exclusive with U4/U6 stem I. We found that U4-ISL1 is required for splicing in vivo and for U4/U6 unwinding in vitro. Altogether, these results implicate Brr2p in disrupting all U4 secondary structures upstream of its initial U4 binding site and implicate an important role for U4 in antagonizing U4/U6 reannealing during Brr2p-mediated U4/U6 unwinding.

8
The Glc7/PP1 phosphatase triggers Paf1C dissociation from RNA polymerase II to enable transcription termination

Namjilsuren, S.; Arndt, K. M.

2025-09-03 molecular biology 10.1101/2025.09.03.674035 medRxiv
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The mechanisms that control the dynamic composition of RNAPII elongation complexes govern major transitions in the transcription cycle yet are poorly understood. Here, we show that the transcription elongation factor Spt5 determines elongation complex composition to promote productive elongation and the transition to termination. Using an unbiased genetic screen and genomic approaches in Saccharomyces cerevisiae, we provide evidence that dephosphorylation of the Spt5 C-terminal repeat domain (CTR) by Glc7/PP1 is required to dislodge the Paf1 complex (Paf1C) from RNAPII near the cleavage and polyadenylation site (CPS). Mutations in Paf1C or the Spt5 CTR that dissociate Paf1C from RNAPII bypass the requirement for two critical regulators of Glc7 in the cleavage and polyadenylation factor that promote Glc7 enrichment at the 3 ends of genes. Depletion of Glc7 causes aberrant retention of Paf1C past the CPS and a dramatic increase in readthrough transcription, which is fully suppressed by Paf1C mutations. Our results demonstrate that Paf1C retention antagonizes transcription termination and that Glc7-mediated restructuring of the RNAPII elongation complex to evict Paf1C at the CPS is a critical step in the transition from elongation to termination.

9
Spt5's central KOW domains and the Pol II Stalk Collaborate to Regulate Chromatin and 3'-End Processing

Morton, Z. A.; Doody, M. J.; Naik, N.; Paniagua, N.; Delahunty, C.; Yates, J. R.; Bustamante, C. J.; Hartzog, G. A.

2026-03-13 genetics 10.64898/2026.03.09.710576 medRxiv
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Spt5 is a universally conserved multidomain transcription elongation factor that acts as a component of all Pol II elongation complexes. Structural studies indicate that several of Spt5s central KOW domains lie adjacent to the Pol II stalk, composed of subunits Rpb4 and Rpb7. However, their in vivo functions are unknown. Here we show that Spt5 and Rpb4/7 jointly modulate 3-end formation and co-transcriptional chromatin integrity in Saccharomyces cerevisiae. We identify mutations in the SPT5 KOW2-3 domains and RPB7 that cause cryptic initiation of transcription and alter 3-end formation of RNA transcripts. Molecular readthrough assays reveal allele-specific changes at both GAL10 and SNR13, consistent with impacts on CPF/CF- and NNS-dependent termination. Proteomic experiments with isolated KOW2-3 domain enrich factors from both pathways as well as chromatin regulators, overlapping known Rpb7 interactors. Together, these findings support a model in which Spt5 KOW2-3/Pol II stalk region acts as a recruitment platform that coordinates pre-mRNA processing and chromatin dynamics during elongation, revealing new roles for the central KOW domains of Spt5. SummaryThis work describes a cooperative in vivo function for Spt5s central KOW domains and the Pol II stalk in Saccharomyces cerevisiae. Allele-specific genetics and reporter assays show cooperative effects of SPT5 and RPB4/7 on cryptic initiation and 3'-end formation; double-mutant analyses reveal synthetic interactions. RT-qPCR at GAL10 and SNR13 demonstrates regulation of both poly(A) and non-coding transcript termination. Spt5 KOW pull-down proteomics enrich poly(A) and non-coding termination factors, as well as chromatin regulators that overlap with known Rpb7 interactors. Together, the data support a model in which Spt5 and the Pol II stalk coordinate chromatin integrity and termination during elongation.

10
A trimeric USP11/USP7/TCEAL1 complex stabilizes RNAPII during early transcription to sustain oncogenic gene expression

Dehmer, M.; Gallant, P.; Herold, S.; Cossa, G.; Conte, F.; Koster, J.; Sauer, F.; Schuelein-Voelk, C.; Ade, C. P.; Vidal, R.; Kisker, C.; Versteeg, R.; Beli, P.; Vos, S.; Eilers, M.; Buechel, G.

2024-07-30 cancer biology 10.1101/2024.07.29.605622 medRxiv
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During early transcription, RNA polymerase II (RNAPII) undergoes a series of structural transitions controlled by cyclin-dependent kinases. Whether protein ubiquitylation and proteasomal degradation affect the fate of RNAPII close to promoters is less well understood. Here we show that the deubiquitylating enzyme USP11 and its heterodimeric partner USP7 form a trimeric complex with TCEAL1, a member of the poorly understood TCEAL (TCEA/TFIIS-like) protein family. TCEAL1 shares sequence homology with the RNAPII interaction domain of the TCEA/TFIIS elongation factor, which controls the fate of backtracked RNAPII. TCEAL1 stabilizes complexes of USP11 with USP7 and with RNAPII. TCEAL1 is recruited to core promoters when transcription elongation is blocked and globally enhances the chromatin association of RNAPII during early transcription. Mechanistically, the USP11/USP7/TCEAL1 complex competes with TFIIS for binding to core promoters and protects RPB8, an essential subunit of RNAPII, from degradation, likely preventing excessive TFIIS-mediated transcript cleavage and RNAPII disassembly. In neuroblastoma and other tumors, TCEAL1-dependent genes define a TGF beta-dependent gene expression program that is characteristic for mesenchymal and invasive tumor cell types, suggesting that the USP11/USP7/TCEAL1 trimer stabilizes RNAPII during early transcription to support a critical oncogenic gene expression program (190 words).

11
Dual roles of histone H3 lysine-4 in antagonizing Polycomb group function and promoting target gene expression

Anyetei-Anum, C. S.; Leatham-Jensen, M. P.; Fox, G. C.; Smith, B. R.; Krajewski, K.; Strahl, B. D.; Dowen, J.; Matera, A. G.; Duronio, R. J.; McKay, D. J.

2024-06-29 genetics 10.1101/2024.06.25.600669 medRxiv
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Tight control over cell identity gene expression is necessary for proper adult form and function. The opposing activities of Polycomb and trithorax complexes determine the ON/OFF state of targets like the Hox genes. Trithorax encodes a methyltransferase specific to histone H3 lysine-4 (H3K4). However, there is no direct evidence that H3K4 regulates Polycomb group target genes in vivo. Here, we demonstrate two key roles for replication-dependent histone H3.2K4 in target control. We find that H3.2K4 antagonizes Polycomb group catalytic activity and that it is required for proper target gene activation. We conclude that H3.2K4 directly regulates expression of Polycomb targets.

12
HNF1α transcriptional activation and repression maintain human islet α and β cell function

Qian, M. F.; Bevacqua, R. J.; Nguyen, V. M.; Liu, X.; Zhao, W.; Chang, C. A.; Gu, X.; Dai, X.-Q.; Macdonald, P. E.; Kim, S. K.

2022-09-25 genetics 10.1101/2022.09.25.509394 medRxiv
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HNF1A haploinsufficiency underlies the most common form of human monogenic diabetes (HNF1A-MODY) and hypomorphic HNF1A variants confer type 2 diabetes risk, but a lack of experimental systems has limited our understanding of how the transcription factor HNF1 regulates adult human islet function. Here, we combined human islet genetics, RNA sequencing, Cleavage Under Targets & Release Using Nuclease (CUT&RUN) chromatin mapping, patch-clamp electrophysiology and transplantation-based assays to elucidate HNF1-regulated mechanisms in mature pancreatic and {beta} cells. shRNA-mediated suppression of HNF1A in primary human pseudoislets led to blunted insulin output and dysregulated glucagon secretion both in vitro and after transplantation into immunocompromised mice, recapitulating phenotypes observed in HNF1A-MODY patients. These deficits corresponded with altered expression of genes encoding factors critical for hormone secretion, including calcium channel subunits, ATP-transporters and extracellular matrix constituents. Additionally, HNF1A loss led to upregulation of transcriptional repressors, providing evidence for a mechanism of transcriptional de-repression through HNF1. CUT&RUN mapping of HNF1 DNA-binding sites in primary human islets verified that a subset of HNF1-regulated genes were direct targets. These data provide unprecedented mechanistic links between HNF1A loss and diabetic phenotypes in mature human and {beta} cells.

13
Disordered protein COSA-2 maintains crossover-specific repair compartments to ensure meiotic crossover maturation

Uebel, C. J.; Deng, D. Y.; Kim, Y.; Villeneuve, A. M.

2026-05-16 developmental biology 10.64898/2026.05.13.725012 medRxiv
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Faithful genome inheritance during meiosis relies on crossover repair of double-strand DNA breaks (DSBs) to connect homologous chromosomes and direct their proper segregation. The formation of crossover-specific recombination intermediates and accumulation of pro-crossover factors occurs at an extremely limited subset of DSB sites, necessitating that the subset of recombination sites designated to become crossovers reliably mature into crossovers. Here we identify C. elegans disordered protein COSA-2 as crucial for meiotic crossover maturation. COSA-2 abruptly concentrates at crossover intermediates in late pachytene nuclei, where it colocalizes and associates with other pro-crossover factors. COSA-2 is dispensable for early loading of crossover factors and for crossover designation, but is required for maintenance of pro-crossover factors at crossover-designated sites and for focal enrichment of factors initially distributed throughout the synaptonemal complex. We define a COSA-2 execution point during late pachytene wherein crossover intermediates transition from a vulnerable state (in which they require COSA-2 to avoid being dismantled) to a state where COSA-2 and local crossover-factor enrichment are no longer required to connect homologs. We propose that COSA-2 scaffolds privileged DNA repair compartments that promote crossover-factor accumulation and protect crossover intermediates until completion of repair, thereby ensuring that crossover-designated sites reliably mature into crossovers.

14
PP1 PNUTS binds the restrictor and dephosphorylates RNA pol II CTD Ser5 to stimulate transcription termination

Bentley, D.; Treisman, R.; Erickson, B.; Fong, N.; Hansen, K.; Sheridan, R. M.; Larson, K.; Saviola, A.; Fedoryshchak, R.; Mouilleron, S.

2024-07-13 molecular biology 10.1101/2024.07.12.603302 medRxiv
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The restrictor, ZC3H4/WDR82, is the major termination factor for antisense transcription from bidirectional promoters, but its mechanism is poorly understood. We report that ZC3H4/WDR82 co-purifies with PP1 phosphatase and PP1 phosphatase nuclear targeting subunit, PNUTS, which binds directly to the WDR82 subunit of restrictor. AlphaFold predicts a quaternary complex, PPWZ, in which PP1-associated PNUTS and ZC3H4 both contact WDR82. To investigate the role of protein dephosphorylation in PPWZ activity, we expressed a substrate trap comprising inactive PP1H66K linked to the PNUTS C-terminus. PP1H66K-PNUTS binds pol II large subunit and nuclear exosome components. PP1H66K-PNUTS, but not PP1WT-PNUTS, functions as a dominant-negative inhibitor of antisense termination and CTD Ser5 dephosphorylation. Both these activities require the PNUTS WDR82 binding domain that interacts with restrictor. We show that CTD Ser5 hyperphosphorylation is associated with higher processivity and reduced pausing that would counteract termination, and propose that Ser5 dephosphorylation by PPWZ is coupled to termination. In summary, we identify the PP1 phosphatase activity of the PPWZ complex as essential for terminator function and propose that this heterotetramer is the physiologically relevant form of restrictor.

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Localization of the pioneer factor GAF to subnuclear foci is driven by DNA binding and required to silence satellite repeat expression

Gaskill, M. M.; Soluri, I. V.; Branks, A. E.; Boka, A. P.; Stadler, M. R.; Vietor, K.; Huang, H.-Y. S.; Gibson, T. J.; Mir, M.; Blythe, S. A.; Harrison, M. M.

2022-11-29 developmental biology 10.1101/2022.11.29.518380 medRxiv
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Abstract/SummaryThe eukaryotic genome is organized to enable the precise regulation of gene expression required for development. This organization is established during early development when the embryo transitions from a fertilized germ cell to the totipotent zygote. To understand the factors and processes that drive genomic organization, we focused on the pioneer factor GAGA factor (GAF) that is required for early embryonic development in Drosophila. GAF transcriptionally activates the zygotic genome and is localized to subnuclear foci. We show that this non-uniform distribution is driven by binding to the highly abundant GA-satellite repeats. At GA-repeats, GAF is necessary to form heterochromatin and silence transcription. Thus, GAF is required to establish both active and silent regions. We propose that foci formation enables GAF to have opposing transcriptional roles within a single nucleus. Our data support a model in which modulation of the subnuclear concentration of transcription factors acts to organize the nucleus into functionally distinct domains that are essential for the robust regulation of gene expression.

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MCM10 and RECQL4 have cooperative and redundant roles in activating the CMG helicase during the replication initiation

Bektash, A.; Zhu, X.; Hatoyama, Y.; Toyoda, A.; Kanemaki, M.

2026-04-02 molecular biology 10.64898/2026.04.01.715782 medRxiv
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DNA replication initiation requires activation of the CMG helicase to establish the replisome. This process involves the extrusion of single-stranded DNA (ssDNA) from the central channel of MCM double hexamers, allowing the two CMG helicases to pass each other; however, the factors that mediate this process in human cells remain unclear. We show that degron-mediated depletion of either MCM10 or RECQL4 alone causes only mild replication defects, whereas simultaneous depletion of both proteins completely blocks CMG activation. ChIP-seq analyses demonstrate that RECQL4 localises to replication initiation zones (IZs) independently of MCM10, whereas MCM10 recruitment to IZs is enhanced upon RECQL4 depletion, suggesting RECQL4 primarily functions in CMG activation, and MCM10 acts as a backup or supporting factor. Rescue experiments further indicate that RECQL4 cooperates with MCM10 through direct interaction, and that their ssDNA-binding activity underlies their functional overlap. We propose MCM10 and RECQL4 act cooperatively and redundantly to promote CMG activation.

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Human organoid modeling of congenital malformations caused by RFX6 mutations reveal an essential role for this transcription factor in establishing and maintaining duodenal identity upstream of PDX1

Wells, J. M.; Sanchez, G.; Rankin, S. A.; Paul, E.; McCauley, H. A.; Kechele, D.; Enriquez, J.; Jones, N.-H.; Greeley, S. A.; Letourneau-Friedberg, L.; Zorn, A. A.; Krishnamurthy, M.

2023-11-11 developmental biology 10.1101/2023.11.09.566480 medRxiv
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The gastrointestinal (GI) tract consists of highly specialized organs from the proximal esophagus to the distal colon, each with unique functions. Rare congenital malformations of the GI tract, including organ atresia, agenesis or mis-patterning are linked to gene mutations although the molecular basis of these malformations has been poorly studied due to lack of model systems to study human development. We identified a patient with compound heterozygous mutations in the transcription factor RFX6 with pancreatic agenesis as previously described. In addition, the patient had duodenal mal-rotation and atresia suggesting that establishment of the proximal small intestine was impaired in these patients. To identify the molecular basis of the intestinal malformation we generated induced pluripotent stem cell lines from this patient, and derived human intestinal organoid (HIOs) to identify how mutations in RFX6 impact intestinal patterning and function. We identified that the duodenal identity of HIOs and patient tissues had adopted a more distal small intestinal signature, including expression of SATB2, normally expressed in the ileum and colon. CRISPR-mediated correction of RFX6 restored duodenal identity, including expression of PDX1, which is required for duodenal development. Using transcriptomic approaches in HIOs and Xenopus embryos we identified that PDX1 is a downstream transcriptional target of RFX6 and that PDX1 expression in a RFX6 mutant background was sufficient to rescue duodenal identity. However, RFX6 had a PDX1-independent role in regulating expression of components of WNT, HH, and BMP signaling pathways that are critical for establishing early regional identity in the GI tract. In summary, we have identified that RFX6 is one of the most upstream regulators early intestinal patterning in vertebrates and that it acts by regulating key transcriptional and signaling pathways.

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Chromatin Assembly Factor 1 is required for normal structure and function of facultative heterochromatin in Neurospora crassa

Lewis, Z. A.; Torres, E. V.; Yap, R. E.; Ferraro, A. R.; Link, C. D.; Pelham, J. F.

2026-06-16 genetics 10.64898/2026.06.12.731976 medRxiv
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Polycomb Repressive Complex 2 (PRC2) is a conserved epigenetic regulator that represses gene expression through methylation of histone H3 lysine 27 (H3K27me3). In animals, plants, and some fungi, PRC2-directed facultative heterochromatin plays essential roles in development and cellular differentiation. Here, we show that the replication-dependent histone chaperone Chromatin Assembly Factor 1 (CAF-1) is required for proper structure and function of facultative heterochromatin in the model fungus Neurospora crassa. Loss of CAF-1 causes widespread transcriptional misregulation, particularly within PRC2-repressed regions, and leads to redistribution of H3K27me3, reduced ASH1-dependent H3K36 methylation, and accumulation of chromatin marks associated with active transcription. CAF-1 was not required for repressive histone methylation within constitutive heterochromatin. A double mutant lacking both CAF-1 and PRC2 components displayed a synergistic silencing defect, suggesting these complexes make distinct contributions to facultative heterochromatin. Together, our findings indicate that CAF-1 works in concert with PRC2 to silence transcription within N. crassa facultative heterochromatin domains.

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Two independent DNA repair pathways cause mutagenesis in template switching deficient Saccharomyces cerevisiae

Jiang, Y. K.; Medley, E. A.; Brown, G. W.

2023-06-26 genetics 10.1101/2023.06.25.546467 medRxiv
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Upon DNA replication stress, cells utilize the post-replication repair pathway to repair single-stranded DNA and maintain genome integrity. Post-replication repair is divided into two branches: error-prone translesion synthesis, signaled by PCNA mono-ubiquitination, and error-free template switching, signaled by PCNA poly-ubiquitination. In Saccharomyces cerevisiae, Rad5 is involved in both branches of repair during DNA replication stress. When the PCNA poly-ubiquitination function of Rad5 is disrupted, Rad5 recruits translesion synthesis polymerases to stalled replication forks, resulting in mutagenic repair. Details of how mutagenic repair is carried out, as well as the relationship between Rad5-mediated mutagenic repair and the canonical PCNA-mediated mutagenic repair, remain to be understood. We find that Rad5-mediated mutagenic repair requires the translesion synthesis polymerase {zeta} but does not require other yeast translesion polymerase activities. Furthermore, we show that Rad5-mediated mutagenic repair is independent of PCNA binding by Rev1 and so is separable from canonical mutagenic repair. In the absence of error-free template switching, both modes of mutagenic repair contribute additively to replication stress response in a replication timing-independent manner. Cellular contexts where error-free template switching is compromised are not simply laboratory phenomena, as we find that a natural variant in RAD5 is defective in PCNA poly-ubiquitination and therefore defective in error-free repair, resulting in Rad5- and PCNA-mediated mutagenic repair. Our results highlight the importance of Rad5 in regulating spontaneous mutagenesis and genetic diversity in S. cerevisiae through different modes of post-replication repair.

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The impediment to replication at tRNA genes in S. cerevisiae does not require tRNA transcription, and is facilitated by topoisomerases and Rad18-dependent repair pathways

Yeung, R.; Smith, D. J.

2020-01-30 molecular biology 10.1101/2020.01.29.925644 medRxiv
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tRNA genes are widely studied sites of replication-fork pausing and genome instability in the budding yeast Saccharomyces cerevisiae. tRNAs are extremely highly transcribed and serve as constitutive condensin binding sites. tRNA transcription by RNA polymerase III has previously been identified as stimulating replication-fork pausing at tRNA genes, but the nature of the block to replication has not been incontrovertibly demonstrated. Here, we describe a systematic, genome-wide analysis of the contributions of candidates to replication-fork progression at tDNAs in yeast: transcription factor binding, transcription, topoisomerase activity, condensin-mediated clustering, and Rad18-dependent DNA repair. We show that an asymmetric block to replication is maintained even when tRNA transcription is abolished by depletion of one or more subunits of RNA polymerase III. By contrast, analogous depletion of the essential transcription factor TFIIIB removes the obstacle to replication. Therefore, our data suggest that the RNA polymerase III transcription complex itself represents an asymmetric obstacle to replication even in the absence of RNA synthesis. We additionally demonstrate that replication-fork progression past tRNA genes is unaffected by the global depletion of condensin from the nucleus, and can be stimulated by the removal of topoisomerases or Rad18-dependent DNA repair pathways.