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1.
Proc Natl Acad Sci U S A ; 121(20): e2403871121, 2024 May 14.
Article En | MEDLINE | ID: mdl-38717857

DNA base damage is a major source of oncogenic mutations and disruption to gene expression. The stalling of RNA polymerase II (RNAP) at sites of DNA damage and the subsequent triggering of repair processes have major roles in shaping the genome-wide distribution of mutations, clearing barriers to transcription, and minimizing the production of miscoded gene products. Despite its importance for genetic integrity, key mechanistic features of this transcription-coupled repair (TCR) process are controversial or unknown. Here, we exploited a well-powered in vivo mammalian model system to explore the mechanistic properties and parameters of TCR for alkylation damage at fine spatial resolution and with discrimination of the damaged DNA strand. For rigorous interpretation, a generalizable mathematical model of DNA damage and TCR was developed. Fitting experimental data to the model and simulation revealed that RNA polymerases frequently bypass lesions without triggering repair, indicating that small alkylation adducts are unlikely to be an efficient barrier to gene expression. Following a burst of damage, the efficiency of transcription-coupled repair gradually decays through gene bodies with implications for the occurrence and accurate inference of driver mutations in cancer. The reinitation of transcription from the repair site is not a general feature of transcription-coupled repair, and the observed data is consistent with reinitiation never taking place. Collectively, these results reveal how the directional but stochastic activity of TCR shapes the distribution of mutations following DNA damage.


DNA Damage , DNA Repair , RNA Polymerase II , Transcription, Genetic , RNA Polymerase II/metabolism , RNA Polymerase II/genetics , Animals , Stochastic Processes , Mice , DNA/metabolism , DNA/genetics , Humans , Alkylation , Mutation , Excision Repair
2.
J Mol Biol ; 436(10): 168570, 2024 May 15.
Article En | MEDLINE | ID: mdl-38604529

Cellular mRNA levels, particularly under stress conditions, can be finely regulated by the coordinated action of transcription and degradation processes. Elements of the 5'-3' mRNA degradation pathway, functionally associated with the exonuclease Xrn1, can bind to nuclear chromatin and modulate gene transcription. Within this group are the so-called decapping activators, including Pat1, Dhh1, and Lsm1. In this work, we have investigated the role of Pat1 in the yeast adaptive transcriptional response to cell wall stress. Thus, we demonstrated that in the absence of Pat1, the transcriptional induction of genes regulated by the Cell Wall Integrity MAPK pathway was significantly affected, with no effect on the stability of these transcripts. Furthermore, under cell wall stress conditions, Pat1 is recruited to Cell Wall Integrity-responsive genes in parallel with the RNA Pol II complex, participating both in pre-initiation complex assembly and transcriptional elongation. Indeed, strains lacking Pat1 showed lower recruitment of the transcription factor Rlm1, less histone H3 displacement at Cell Wall Integrity gene promoters, and impaired recruitment and progression of RNA Pol II. Moreover, Pat1 and the MAPK Slt2 occupied the coding regions interdependently. Our results support the idea that Pat1 and presumably other decay factors behave as transcriptional regulators of Cell Wall Integrity-responsive genes under cell wall stress conditions.


Cell Wall , Gene Expression Regulation, Fungal , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Cell Wall/metabolism , Cell Wall/genetics , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , MAP Kinase Signaling System , Transcription, Genetic , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA Polymerase II/metabolism , RNA Polymerase II/genetics , RNA Stability , Transcription Factors/metabolism , Transcription Factors/genetics , Endoribonucleases/metabolism , Endoribonucleases/genetics , RNA-Binding Proteins , MADS Domain Proteins
3.
EMBO J ; 43(9): 1799-1821, 2024 May.
Article En | MEDLINE | ID: mdl-38565951

A great deal of work has revealed, in structural detail, the components of the preinitiation complex (PIC) machinery required for initiation of mRNA gene transcription by RNA polymerase II (Pol II). However, less-well understood are the in vivo PIC assembly pathways and their kinetics, an understanding of which is vital for determining how rates of in vivo RNA synthesis are established. We used competition ChIP in budding yeast to obtain genome-scale estimates of the residence times for five general transcription factors (GTFs): TBP, TFIIA, TFIIB, TFIIE and TFIIF. While many GTF-chromatin interactions were short-lived ( < 1 min), there were numerous interactions with residence times in the range of several minutes. Sets of genes with a shared function also shared similar patterns of GTF kinetic behavior. TFIIE, a GTF that enters the PIC late in the assembly process, had residence times correlated with RNA synthesis rates. The datasets and results reported here provide kinetic information for most of the Pol II-driven genes in this organism, offering a rich resource for exploring the mechanistic relationships between PIC assembly, gene regulation, and transcription.


Chromatin , RNA Polymerase II , Saccharomyces cerevisiae , Transcription, Genetic , RNA Polymerase II/metabolism , RNA Polymerase II/genetics , Chromatin/metabolism , Chromatin/genetics , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Genome, Fungal , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/genetics , Kinetics , Protein Binding , Gene Expression Regulation, Fungal
4.
Nucleic Acids Res ; 52(8): 4483-4501, 2024 May 08.
Article En | MEDLINE | ID: mdl-38587191

Messenger RNA precursors (pre-mRNA) generally undergo 3' end processing by cleavage and polyadenylation (CPA), which is specified by a polyadenylation site (PAS) and adjacent RNA sequences and regulated by a large variety of core and auxiliary CPA factors. To date, most of the human CPA factors have been discovered through biochemical and proteomic studies. However, genetic identification of the human CPA factors has been hampered by the lack of a reliable genome-wide screening method. We describe here a dual fluorescence readthrough reporter system with a PAS inserted between two fluorescent reporters. This system enables measurement of the efficiency of 3' end processing in living cells. Using this system in combination with a human genome-wide CRISPR/Cas9 library, we conducted a screen for CPA factors. The screens identified most components of the known core CPA complexes and other known CPA factors. The screens also identified CCNK/CDK12 as a potential core CPA factor, and RPRD1B as a CPA factor that binds RNA and regulates the release of RNA polymerase II at the 3' ends of genes. Thus, this dual fluorescence reporter coupled with CRISPR/Cas9 screens reliably identifies bona fide CPA factors and provides a platform for investigating the requirements for CPA in various contexts.


CRISPR-Cas Systems , Genes, Reporter , Polyadenylation , RNA Precursors , Humans , RNA Precursors/metabolism , RNA Precursors/genetics , HEK293 Cells , Genome, Human , RNA Polymerase II/metabolism , Cyclin-Dependent Kinases/metabolism , Cyclin-Dependent Kinases/genetics , mRNA Cleavage and Polyadenylation Factors/metabolism , mRNA Cleavage and Polyadenylation Factors/genetics , RNA Cleavage
5.
J Virol ; 98(5): e0013824, 2024 May 14.
Article En | MEDLINE | ID: mdl-38563748

Influenza A viruses, causing seasonal epidemics and occasional pandemics, rely on interactions with host proteins for their RNA genome transcription and replication. The viral RNA polymerase utilizes host RNA polymerase II (Pol II) and interacts with the serine 5 phosphorylated (pS5) C-terminal domain (CTD) of Pol II to initiate transcription. Our study, using single-particle electron cryomicroscopy (cryo-EM), reveals the structure of the 1918 pandemic influenza A virus polymerase bound to a synthetic pS5 CTD peptide composed of four heptad repeats mimicking the 52 heptad repeat mammalian Pol II CTD. The structure shows that the CTD peptide binds at the C-terminal domain of the PA viral polymerase subunit (PA-C) and reveals a previously unobserved position of the 627 domain of the PB2 subunit near the CTD. We identify crucial residues of the CTD peptide that mediate interactions with positively charged cavities on PA-C, explaining the preference of the viral polymerase for pS5 CTD. Functional analysis of mutants targeting the CTD-binding site within PA-C reveals reduced transcriptional function or defects in replication, highlighting the multifunctional role of PA-C in viral RNA synthesis. Our study provides insights into the structural and functional aspects of the influenza virus polymerase-host Pol II interaction and identifies a target for antiviral development.IMPORTANCEUnderstanding the intricate interactions between influenza A viruses and host proteins is crucial for developing targeted antiviral strategies. This study employs advanced imaging techniques to uncover the structural nuances of the 1918 pandemic influenza A virus polymerase bound to a specific host protein, shedding light on the vital process of viral RNA synthesis. The study identifies key amino acid residues in the influenza polymerase involved in binding host polymerase II (Pol II) and highlights their role in both viral transcription and genome replication. These findings not only deepen our understanding of the influenza virus life cycle but also pinpoint a potential target for antiviral development. By elucidating the structural and functional aspects of the influenza virus polymerase-host Pol II interaction, this research provides a foundation for designing interventions to disrupt viral replication and transcription, offering promising avenues for future antiviral therapies.


Cryoelectron Microscopy , Influenza A virus , Protein Binding , RNA Polymerase II , RNA-Dependent RNA Polymerase , Viral Proteins , Humans , RNA Polymerase II/metabolism , RNA Polymerase II/chemistry , RNA-Dependent RNA Polymerase/metabolism , RNA-Dependent RNA Polymerase/chemistry , Influenza A virus/metabolism , Influenza A virus/genetics , Influenza A virus/enzymology , Viral Proteins/metabolism , Viral Proteins/chemistry , Viral Proteins/genetics , Virus Replication , Protein Domains , Models, Molecular , Phosphorylation , Transcription, Genetic , Influenza, Human/virology , RNA, Viral/metabolism , RNA, Viral/genetics
6.
Nat Commun ; 15(1): 3253, 2024 Apr 16.
Article En | MEDLINE | ID: mdl-38627396

Plants, as sessile organisms, deploy transcriptional dynamics for adapting to extreme growth conditions such as cold stress. Emerging evidence suggests that chromatin architecture contributes to transcriptional regulation. However, the relationship between chromatin architectural dynamics and transcriptional reprogramming in response to cold stress remains unclear. Here, we apply a chemical-crosslinking assisted proximity capture (CAP-C) method to elucidate the fine-scale chromatin landscape, revealing chromatin interactions within gene bodies closely associated with RNA polymerase II (Pol II) densities across initiation, pausing, and termination sites. We observe dynamic changes in chromatin interactions alongside Pol II activity alterations during cold stress, suggesting local chromatin dynamics may regulate Pol II activity. Notably, cold stress does not affect large-scale chromatin conformations. We further identify a comprehensive promoter-promoter interaction (PPI) network across the genome, potentially facilitating co-regulation of gene expression in response to cold stress. Our study deepens the understanding of chromatin conformation-associated gene regulation in plant response to cold.


Arabidopsis , Chromatin , Chromatin/genetics , Arabidopsis/genetics , Arabidopsis/metabolism , Gene Expression Regulation , RNA Polymerase II/genetics , RNA Polymerase II/metabolism , Promoter Regions, Genetic/genetics , Transcription, Genetic
7.
Nat Cell Biol ; 26(4): 604-612, 2024 Apr.
Article En | MEDLINE | ID: mdl-38589534

The localization of transcriptional activity in specialized transcription bodies is a hallmark of gene expression in eukaryotic cells. It remains unclear, however, if and how transcription bodies affect gene expression. Here we disrupted the formation of two prominent endogenous transcription bodies that mark the onset of zygotic transcription in zebrafish embryos and analysed the effect on gene expression using enriched SLAM-seq and live-cell imaging. We find that the disruption of transcription bodies results in the misregulation of hundreds of genes. Here we focus on genes that are upregulated. These genes have accessible chromatin and are poised to be transcribed in the presence of the two transcription bodies, but they do not go into elongation. Live-cell imaging shows that disruption of the two large transcription bodies enables these poised genes to be transcribed in ectopic transcription bodies, suggesting that the large transcription bodies sequester a pause release factor. Supporting this hypothesis, we find that CDK9-the kinase that releases paused polymerase II-is highly enriched in the two large transcription bodies. Overexpression of CDK9 in wild-type embryos results in the formation of ectopic transcription bodies and thus phenocopies the removal of the two large transcription bodies. Taken together, our results show that transcription bodies regulate transcription by sequestering machinery, thereby preventing genes elsewhere in the nucleus from being transcribed.


Positive Transcriptional Elongation Factor B , RNA Polymerase II , Animals , Chromatin/genetics , Gene Expression , Positive Transcriptional Elongation Factor B/genetics , Positive Transcriptional Elongation Factor B/metabolism , RNA Polymerase II/genetics , Transcription, Genetic , Zebrafish/genetics , Zebrafish/metabolism
8.
Front Immunol ; 15: 1366235, 2024.
Article En | MEDLINE | ID: mdl-38601157

Introduction: The human orthopneumovirus, Respiratory Syncytial Virus (RSV), is the causative agent of severe lower respiratory tract infections (LRTI) and exacerbations of chronic lung diseases. In immune competent hosts, RSV productively infects highly differentiated epithelial cells, where it elicits robust anti-viral, cytokine and remodeling programs. By contrast, basal cells are relatively resistant to RSV infection, in part, because of constitutive expression of an intrinsic innate immune response (IIR) consisting of a subgroup of interferon (IFN) responsive genes. The mechanisms controlling the intrinsic IIR are not known. Methods: Here, we use human small airway epithelial cell hSAECs as a multipotent airway stem cell model to examine regulatory control of an intrinsic IIR pathway. Results: We find hSAECs express patterns of intrinsic IIRs, highly conserved with pluri- and multi-potent stem cells. We demonstrate a core intrinsic IIR network consisting of Bone Marrow Stromal Cell Antigen 2 (Bst2), Interferon Induced Transmembrane Protein 1 (IFITM1) and Toll-like receptor (TLR3) expression are directly under IRF1 control. Moreover, expression of this intrinsic core is rate-limited by ambient IRF1• phospho-Ser 2 CTD RNA Polymerase II (pSer2 Pol II) complexes binding to their proximal promoters. In response to RSV infection, the abundance of IRF1 and pSer2 Pol II binding is dramatically increased, with IRF1 complexing to the BRD4 chromatin remodeling complex (CRC). Using chromatin immunoprecipitation in IRF1 KD cells, we find that the binding of BRD4 is IRF1 independent. Using a small molecule inhibitor of the BRD4 acetyl lysine binding bromodomain (BRD4i), we further find that BRD4 bromodomain interactions are required for stable BRD4 promoter binding to the intrinsic IIR core promoters, as well as for RSV-inducible pSer2 Pol II recruitment. Surprisingly, BRD4i does not disrupt IRF1-BRD4 interactions, but disrupts both RSV-induced BRD4 and IRF1 interactions with pSer2 Pol II. Conclusions: We conclude that the IRF1 functions in two modes- in absence of infection, ambient IRF1 mediates constitutive expression of the intrinsic IIR, whereas in response to RSV infection, the BRD4 CRC independently activates pSer2 Pol II to mediates robust expression of the intrinsic IIR. These data provide insight into molecular control of anti-viral defenses of airway basal cells.


Immunity, Innate , RNA Polymerase II , Respiratory Syncytial Virus Infections , Respiratory Syncytial Virus, Human , Humans , Antiviral Agents , Bromodomain Containing Proteins , Cell Cycle Proteins , Nuclear Proteins/metabolism , RNA Polymerase II/genetics , RNA Polymerase II/metabolism , Transcription Factors
9.
Org Lett ; 26(15): 3263-3266, 2024 Apr 19.
Article En | MEDLINE | ID: mdl-38598422

The ability of α-amanitin to potently inhibit RNA polymerase II (RNAP II) has elicited further research into its use as a novel payload for antibody-drug conjugates. Despite this promise, the de novo synthesis of α-amanitin is still a major challenge as it possesses an unusual bicyclic octapeptide structure that contains several oxidized amino acids, most notably 4,5-dihydroxy-l-isoleucine. Here, we report a concise chemoenzymatic synthesis of this key amino acid residue, which features two regioselective and diastereoselective enzymatic C-H oxidations on l-isoleucine.


Alpha-Amanitin , Amanitins , Alpha-Amanitin/chemistry , Amanitins/pharmacology , Isoleucine , RNA Polymerase II/chemistry , RNA Polymerase II/genetics , RNA Polymerase II/metabolism
10.
Proc Natl Acad Sci U S A ; 121(15): e2321502121, 2024 Apr 09.
Article En | MEDLINE | ID: mdl-38564636

The release of paused RNA polymerase II (RNAPII) from promoter-proximal regions is tightly controlled to ensure proper regulation of gene expression. The elongation factor PTEF-b is known to release paused RNAPII via phosphorylation of the RNAPII C-terminal domain by its cyclin-dependent kinase component, CDK9. However, the signal and stress-specific roles of the various RNAPII-associated macromolecular complexes containing PTEF-b/CDK9 are not yet clear. Here, we identify and characterize the CDK9 complex required for transcriptional response to hypoxia. Contrary to previous reports, our data indicate that a CDK9 complex containing BRD4 but not AFF1/4 is essential for this hypoxic stress response. We demonstrate that BRD4 bromodomains (BET) are dispensable for the release of paused RNAPII at hypoxia-activated genes and that BET inhibition by JQ1 is insufficient to impair hypoxic gene response. Mechanistically, we demonstrate that the C-terminal region of BRD4 is required for Polymerase-Associated Factor-1 Complex (PAF1C) recruitment to establish an elongation-competent RNAPII complex at hypoxia-responsive genes. PAF1C disruption using a small-molecule inhibitor (iPAF1C) impairs hypoxia-induced, BRD4-mediated RNAPII release. Together, our results provide insight into potentially targetable mechanisms that control the hypoxia-responsive transcriptional elongation.


Nuclear Proteins , Transcription Factors , Humans , Transcription Factors/genetics , Transcription Factors/metabolism , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Gene Expression Regulation , Cyclin-Dependent Kinases/metabolism , Cyclin-Dependent Kinase 9/genetics , Cyclin-Dependent Kinase 9/metabolism , RNA Polymerase II/genetics , RNA Polymerase II/metabolism , Phosphorylation , Hypoxia , Transcription, Genetic , Positive Transcriptional Elongation Factor B/genetics , Positive Transcriptional Elongation Factor B/metabolism , Bromodomain Containing Proteins , Cell Cycle Proteins/genetics , Cell Cycle Proteins/metabolism
11.
Mol Cell ; 84(7): 1180-1182, 2024 Apr 04.
Article En | MEDLINE | ID: mdl-38579674

Using cryo-EM and biochemical methods, Su and Vos1 discover an alternative NELF structural state that enables transcription and switches NELF-RNA polymerase II (RNAPII) compatibility with other RNAPII-associated factors that regulate pausing, elongation, termination, and transcription-coupled DNA repair.


RNA Polymerase II , Transcription Factors , Promoter Regions, Genetic , RNA Polymerase II/genetics , RNA Polymerase II/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Transcription, Genetic
12.
Genome Biol ; 25(1): 102, 2024 Apr 19.
Article En | MEDLINE | ID: mdl-38641822

BACKGROUND: Splicing factors are vital for the regulation of RNA splicing, but some have also been implicated in regulating transcription. The underlying molecular mechanisms of their involvement in transcriptional processes remain poorly understood. RESULTS: Here, we describe a direct role of splicing factor RBM22 in coordinating multiple steps of RNA Polymerase II (RNAPII) transcription in human cells. The RBM22 protein widely occupies the RNAPII-transcribed gene locus in the nucleus. Loss of RBM22 promotes RNAPII pause release, reduces elongation velocity, and provokes transcriptional readthrough genome-wide, coupled with production of transcripts containing sequences from downstream of the gene. RBM22 preferentially binds to the hyperphosphorylated, transcriptionally engaged RNAPII and coordinates its dynamics by regulating the homeostasis of the 7SK-P-TEFb complex and the association between RNAPII and SPT5 at the chromatin level. CONCLUSIONS: Our results uncover the multifaceted role of RBM22 in orchestrating the transcriptional program of RNAPII and provide evidence implicating a splicing factor in both RNAPII elongation kinetics and termination control.


Positive Transcriptional Elongation Factor B , RNA Polymerase II , Humans , Chromatin , Positive Transcriptional Elongation Factor B/genetics , Positive Transcriptional Elongation Factor B/metabolism , RNA Polymerase II/metabolism , RNA Splicing , RNA Splicing Factors/genetics , Transcription, Genetic , Transcriptional Elongation Factors/genetics , Transcriptional Elongation Factors/metabolism
13.
Nature ; 629(8010): 219-227, 2024 May.
Article En | MEDLINE | ID: mdl-38570683

The Integrator complex can terminate RNA polymerase II (Pol II) in the promoter-proximal region of genes. Previous work has shed light on how Integrator binds to the paused elongation complex consisting of Pol II, the DRB sensitivity-inducing factor (DSIF) and the negative elongation factor (NELF) and how it cleaves the nascent RNA transcript1, but has not explained how Integrator removes Pol II from the DNA template. Here we present three cryo-electron microscopy structures of the complete Integrator-PP2A complex in different functional states. The structure of the pre-termination complex reveals a previously unresolved, scorpion-tail-shaped INTS10-INTS13-INTS14-INTS15 module that may use its 'sting' to open the DSIF DNA clamp and facilitate termination. The structure of the post-termination complex shows that the previously unresolved subunit INTS3 and associated sensor of single-stranded DNA complex (SOSS) factors prevent Pol II rebinding to Integrator after termination. The structure of the free Integrator-PP2A complex in an inactive closed conformation2 reveals that INTS6 blocks the PP2A phosphatase active site. These results lead to a model for how Integrator terminates Pol II transcription in three steps that involve major rearrangements.


Cryoelectron Microscopy , Models, Molecular , Protein Phosphatase 2 , RNA Polymerase II , RNA Polymerase II/metabolism , RNA Polymerase II/chemistry , RNA Polymerase II/ultrastructure , Protein Phosphatase 2/metabolism , Protein Phosphatase 2/chemistry , Protein Phosphatase 2/ultrastructure , Transcription Termination, Genetic , Humans , Transcription Factors/metabolism , Transcription Factors/chemistry , Protein Binding , Transcriptional Elongation Factors/metabolism , Transcriptional Elongation Factors/chemistry , Nuclear Proteins/metabolism , Nuclear Proteins/chemistry , Nuclear Proteins/ultrastructure , Protein Subunits/metabolism , Protein Subunits/chemistry
14.
Mol Cell ; 84(9): 1711-1726.e11, 2024 May 02.
Article En | MEDLINE | ID: mdl-38569554

N6-methyladenosine (m6A) is a crucial RNA modification that regulates diverse biological processes in human cells, but its co-transcriptional deposition and functions remain poorly understood. Here, we identified the RNA helicase DDX21 with a previously unrecognized role in directing m6A modification on nascent RNA for co-transcriptional regulation. DDX21 interacts with METTL3 for co-recruitment to chromatin through its recognition of R-loops, which can be formed co-transcriptionally as nascent transcripts hybridize onto the template DNA strand. Moreover, DDX21's helicase activity is needed for METTL3-mediated m6A deposition onto nascent RNA following recruitment. At transcription termination regions, this nexus of actions promotes XRN2-mediated termination of RNAPII transcription. Disruption of any of these steps, including the loss of DDX21, METTL3, or their enzymatic activities, leads to defective termination that can induce DNA damage. Therefore, we propose that the R-loop-DDX21-METTL3 nexus forges the missing link for co-transcriptional modification of m6A, coordinating transcription termination and genome stability.


Adenosine , Adenosine/analogs & derivatives , DEAD-box RNA Helicases , Exoribonucleases , Genomic Instability , Methyltransferases , R-Loop Structures , RNA Polymerase II , Transcription Termination, Genetic , Humans , DEAD-box RNA Helicases/metabolism , DEAD-box RNA Helicases/genetics , Methyltransferases/metabolism , Methyltransferases/genetics , Adenosine/metabolism , Adenosine/genetics , Exoribonucleases/metabolism , Exoribonucleases/genetics , RNA Polymerase II/metabolism , RNA Polymerase II/genetics , HEK293 Cells , Chromatin/metabolism , Chromatin/genetics , DNA Damage , HeLa Cells , RNA/metabolism , RNA/genetics , Transcription, Genetic , RNA Methylation
15.
Mol Cell ; 84(9): 1699-1710.e6, 2024 May 02.
Article En | MEDLINE | ID: mdl-38604172

The transition from transcription initiation to elongation is highly regulated in human cells but remains incompletely understood at the structural level. In particular, it is unclear how interactions between RNA polymerase II (RNA Pol II) and initiation factors are broken to enable promoter escape. Here, we reconstitute RNA Pol II promoter escape in vitro and determine high-resolution structures of initially transcribing complexes containing 8-, 10-, and 12-nt ordered RNAs and two elongation complexes containing 14-nt RNAs. We suggest that promoter escape occurs in three major steps. First, the growing RNA displaces the B-reader element of the initiation factor TFIIB without evicting TFIIB. Second, the rewinding of the transcription bubble coincides with the eviction of TFIIA, TFIIB, and TBP. Third, the binding of DSIF and NELF facilitates TFIIE and TFIIH dissociation, establishing the paused elongation complex. This three-step model for promoter escape fills a gap in our understanding of the initiation-elongation transition of RNA Pol II transcription.


Phosphoproteins , Promoter Regions, Genetic , RNA Polymerase II , TATA-Box Binding Protein , Transcription Factor TFIIB , Transcription Factors , RNA Polymerase II/metabolism , RNA Polymerase II/genetics , Humans , Transcription Factor TFIIB/metabolism , Transcription Factor TFIIB/genetics , TATA-Box Binding Protein/metabolism , TATA-Box Binding Protein/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , Transcription Initiation, Genetic , Transcription Factor TFIIH/metabolism , Transcription Factor TFIIH/genetics , Transcription Factor TFIIH/chemistry , Nuclear Proteins/metabolism , Nuclear Proteins/genetics , Protein Binding , Transcription Factor TFIIA/metabolism , Transcription Factor TFIIA/genetics , Transcription, Genetic , Transcription Elongation, Genetic , RNA/metabolism , RNA/genetics , Transcription Factors, TFII/metabolism , Transcription Factors, TFII/genetics
16.
Mol Cell ; 84(9): 1637-1650.e10, 2024 May 02.
Article En | MEDLINE | ID: mdl-38604171

Long interspersed element-1 (LINE-1 or L1) comprises 17% of the human genome, continuously generates genetic variations, and causes disease in certain cases. However, the regulation and function of L1 remain poorly understood. Here, we uncover that L1 can enrich RNA polymerase IIs (RNA Pol IIs), express L1 chimeric transcripts, and create contact domain boundaries in human cells. This impact of L1 is restricted by a nuclear matrix protein scaffold attachment factor B (SAFB) that recognizes transcriptionally active L1s by binding L1 transcripts to inhibit RNA Pol II enrichment. Acute inhibition of RNA Pol II transcription abolishes the domain boundaries associated with L1 chimeric transcripts, indicating a transcription-dependent mechanism. Deleting L1 impairs domain boundary formation, and L1 insertions during evolution have introduced species-specific domain boundaries. Our data show that L1 can create RNA Pol II-enriched regions that alter genome organization and that SAFB regulates L1 and RNA Pol II activity to preserve gene regulation.


Long Interspersed Nucleotide Elements , Matrix Attachment Region Binding Proteins , RNA Polymerase II , Receptors, Estrogen , Transcription, Genetic , Humans , RNA Polymerase II/metabolism , RNA Polymerase II/genetics , Long Interspersed Nucleotide Elements/genetics , Matrix Attachment Region Binding Proteins/metabolism , Matrix Attachment Region Binding Proteins/genetics , Nuclear Matrix-Associated Proteins/metabolism , Nuclear Matrix-Associated Proteins/genetics , Gene Expression Regulation , Protein Binding , HEK293 Cells , Genome, Human
17.
J Am Chem Soc ; 146(17): 12074-12086, 2024 May 01.
Article En | MEDLINE | ID: mdl-38639141

Phosphorylation is a major constituent of the CTD code, which describes the set of post-translational modifications on 52 repeats of a YSPTSPS consensus heptad that orchestrates the binding of regulatory proteins to the C-terminal domain (CTD) of RNA polymerase II. Phospho-specific antibodies are used to detect CTD phosphorylation patterns. However, their recognition repertoire is underexplored due to limitations in the synthesis of long multiphosphorylated peptides. Herein, we describe the development of a synthesis strategy that provides access to multiphosphorylated CTD peptides in high purity without HPLC purification for immobilization onto microtiter plates. Native chemical ligation was used to assemble 12 heptad repeats in various phosphoforms. The synthesis of >60 CTD peptides, 48-90 amino acids in length and containing up to 6 phosphosites, enabled a detailed and rapid analysis of the binding characteristics of different anti-pSer2 antibodies. The three antibodies tested showed positional selectivity with marked differences in the affinity of the antibodies for pSer2-containing peptides. Furthermore, the length of the phosphopeptides allowed a systematic analysis of the multivalent chelate-type interactions. The absence of multivalency-induced binding enhancements is probably due to the high flexibility of the CTD scaffold. The effect of clustered phosphorylation proved to be more complex. Recognition of pSer2 by anti-pSer2-antibodies can be prevented and, perhaps surprisingly, enhanced by the phosphorylation of "bystander" amino acids in the vicinity. The results have relevance for functional analysis of the CTD in cell biological experiments.


RNA Polymerase II , Phosphorylation , RNA Polymerase II/metabolism , RNA Polymerase II/chemistry , Antibodies/immunology , Antibodies/chemistry , Protein Domains , Humans
18.
PLoS Pathog ; 20(4): e1012138, 2024 Apr.
Article En | MEDLINE | ID: mdl-38640110

Proper transcription orchestrated by RNA polymerase II (RNPII) is crucial for cellular development, which is rely on the phosphorylation state of RNPII's carboxyl-terminal domain (CTD). Sporangia, developed from mycelia, are essential for the destructive oomycetes Phytophthora, remarkable transcriptional changes are observed during the morphological transition. However, how these changes are rapidly triggered and their relationship with the versatile RNPII-CTD phosphorylation remain enigmatic. Herein, we found that Phytophthora capsici undergone an elevation of Ser5-phosphorylation in its uncanonical heptapeptide repeats of RNPII-CTD during sporangia development, which subsequently changed the chromosomal occupation of RNPII and primarily activated transcription of certain genes. A cyclin-dependent kinase, PcCDK7, was highly induced and phosphorylated RNPII-CTD during this morphological transition. Mechanistically, a novel DCL1-dependent microRNA, pcamiR1, was found to be a feedback modulator for the precise phosphorylation of RNPII-CTD by complexing with PcAGO1 and regulating the accumulation of PcCDK7. Moreover, this study revealed that the pcamiR1-CDK7-RNPII regulatory module is evolutionarily conserved and the impairment of the balance between pcamiR1 and PcCDK7 could efficiently reduce growth and virulence of P. capsici. Collectively, this study uncovers a novel and evolutionary conserved mechanism of transcription regulation which could facilitate correct development and identifies pcamiR1 as a promising target for disease control.


MicroRNAs , Phytophthora , RNA Polymerase II , Transcription, Genetic , RNA Polymerase II/metabolism , RNA Polymerase II/genetics , Phosphorylation , MicroRNAs/metabolism , MicroRNAs/genetics , Phytophthora/pathogenicity , Phytophthora/genetics , Phytophthora/metabolism , Cyclin-Dependent Kinases/metabolism , Cyclin-Dependent Kinases/genetics
19.
Mol Cell Biol ; 44(3): 103-122, 2024.
Article En | MEDLINE | ID: mdl-38506112

EWSR1 is a member of the FET family of nucleic acid binding proteins that includes FUS and TAF15. Here, we report the systematic analysis of endogenous EWSR1's cellular organization in human cells. We demonstrate that EWSR1, which contains low complexity and nucleic acid binding domains, is present in cells in faster and slower-recovering fractions, indicative of a protein undergoing both rapid exchange and longer-term interactions. The employment of complementary high-resolution imaging approaches shows EWSR1 exists in two visual modalities, a distributed state which is present throughout the nucleoplasm, and a concentrated state consistent with the formation of foci. Both EWSR1 visual modalities localize with nascent RNA. EWSR1 foci concentrate in regions of euchromatin, adjacent to protein markers of transcriptional activation, and significantly colocalize with phosphorylated RNA polymerase II. Our results contribute to bridging the gap between our understanding of the biophysical and biochemical properties of FET proteins, including EWSR1, their functions as transcriptional regulators, and the participation of these proteins in tumorigenesis and neurodegenerative disease.


Neurodegenerative Diseases , Nucleic Acids , RNA-Binding Protein EWS , Humans , Nucleic Acids/chemistry , Nucleic Acids/metabolism , RNA Polymerase II/metabolism , RNA-Binding Protein EWS/genetics , RNA-Binding Protein EWS/metabolism
20.
Mol Cell ; 84(8): 1475-1495.e18, 2024 Apr 18.
Article En | MEDLINE | ID: mdl-38521065

Transcription and splicing of pre-messenger RNA are closely coordinated, but how this functional coupling is disrupted in human diseases remains unexplored. Using isogenic cell lines, patient samples, and a mutant mouse model, we investigated how cancer-associated mutations in SF3B1 alter transcription. We found that these mutations reduce the elongation rate of RNA polymerase II (RNAPII) along gene bodies and its density at promoters. The elongation defect results from disrupted pre-spliceosome assembly due to impaired protein-protein interactions of mutant SF3B1. The decreased promoter-proximal RNAPII density reduces both chromatin accessibility and H3K4me3 marks at promoters. Through an unbiased screen, we identified epigenetic factors in the Sin3/HDAC/H3K4me pathway, which, when modulated, reverse both transcription and chromatin changes. Our findings reveal how splicing factor mutant states behave functionally as epigenetic disorders through impaired transcription-related changes to the chromatin landscape. We also present a rationale for targeting the Sin3/HDAC complex as a therapeutic strategy.


Chromatin , Neoplasms , Animals , Humans , Mice , Chromatin/genetics , Mutation , Phosphoproteins/genetics , Phosphoproteins/metabolism , RNA Polymerase II/genetics , RNA Polymerase II/metabolism , RNA Splicing/genetics , RNA Splicing Factors/genetics , RNA Splicing Factors/metabolism
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