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1.
Mol Cell ; 84(8): 1496-1511.e7, 2024 Apr 18.
Article in English | MEDLINE | ID: mdl-38537639

ABSTRACT

Understanding the mechanisms of pre-mRNA splicing is limited by the technical challenges to examining spliceosomes in vivo. Here, we report the isolation of RNP complexes derived from precatalytic A or B-like spliceosomes solubilized from the chromatin pellet of mammalian cell nuclei. We found that these complexes contain U2 snRNP proteins and a portion of the U2 snRNA bound with protected RNA fragments that precisely map to intronic branch sites across the transcriptome. These U2 complexes also contained the splicing regulators RBM5 and RBM10. We found RBM5 and RBM10 bound to nearly all branch site complexes and not simply those at regulated exons. The deletion of a conserved RBM5/RBM10 peptide sequence, including a zinc finger motif, disrupted U2 interaction and rendered the proteins inactive for the repression of many alternative exons. We propose a model where RBM5 and RBM10 regulate splicing as components of the U2 snRNP complex following branch site base pairing.


Subject(s)
Ribonucleoprotein, U2 Small Nuclear , Spliceosomes , Animals , Spliceosomes/genetics , Spliceosomes/metabolism , Ribonucleoprotein, U2 Small Nuclear/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism , Introns/genetics , Chromatin/genetics , Chromatin/metabolism , RNA Splicing , RNA Precursors/metabolism , Mammals/metabolism
2.
Nat Struct Mol Biol ; 31(5): 835-845, 2024 May.
Article in English | MEDLINE | ID: mdl-38196034

ABSTRACT

Selection of the pre-mRNA branch site (BS) by the U2 small nuclear ribonucleoprotein (snRNP) is crucial to prespliceosome (A complex) assembly. The RNA helicase PRP5 proofreads BS selection but the underlying mechanism remains unclear. Here we report the atomic structures of two sequential complexes leading to prespliceosome assembly: human 17S U2 snRNP and a cross-exon pre-A complex. PRP5 is anchored on 17S U2 snRNP mainly through occupation of the RNA path of SF3B1 by an acidic loop of PRP5; the helicase domain of PRP5 associates with U2 snRNA; the BS-interacting stem-loop (BSL) of U2 snRNA is shielded by TAT-SF1, unable to engage the BS. In the pre-A complex, an initial U2-BS duplex is formed; the translocated helicase domain of PRP5 stays with U2 snRNA and the acidic loop still occupies the RNA path. The pre-A conformation is specifically stabilized by the splicing factors SF1, DNAJC8 and SF3A2. Cancer-derived mutations in SF3B1 damage its association with PRP5, compromising BS proofreading. Together, these findings reveal key insights into prespliceosome assembly and BS selection or proofreading by PRP5.


Subject(s)
Models, Molecular , RNA Splicing Factors , Spliceosomes , Humans , Spliceosomes/metabolism , Spliceosomes/chemistry , RNA Splicing Factors/metabolism , RNA Splicing Factors/chemistry , Ribonucleoprotein, U2 Small Nuclear/metabolism , Ribonucleoprotein, U2 Small Nuclear/chemistry , Ribonucleoprotein, U2 Small Nuclear/genetics , Cryoelectron Microscopy , RNA Splicing , RNA Precursors/metabolism , Nucleic Acid Conformation , RNA, Small Nuclear/metabolism , RNA, Small Nuclear/chemistry , Phosphoproteins
3.
Nat Commun ; 14(1): 7166, 2023 11 07.
Article in English | MEDLINE | ID: mdl-37935663

ABSTRACT

The conserved SR-like protein Npl3 promotes splicing of diverse pre-mRNAs. However, the RNA sequence(s) recognized by the RNA Recognition Motifs (RRM1 & RRM2) of Npl3 during the splicing reaction remain elusive. Here, we developed a split-iCRAC approach in yeast to uncover the consensus sequence bound to each RRM. High-resolution NMR structures show that RRM2 recognizes a 5´-GNGG-3´ motif leading to an unusual mille-feuille topology. These structures also reveal how RRM1 preferentially interacts with a CC-dinucleotide upstream of this motif, and how the inter-RRM linker and the region C-terminal to RRM2 contribute to cooperative RNA-binding. Structure-guided functional studies show that Npl3 genetically interacts with U2 snRNP specific factors and we provide evidence that Npl3 melts U2 snRNA stem-loop I, a prerequisite for U2/U6 duplex formation within the catalytic center of the Bact spliceosomal complex. Thus, our findings suggest an unanticipated RNA chaperoning role for Npl3 during spliceosome active site formation.


Subject(s)
RNA Splicing , RNA , Nucleic Acid Conformation , Ribonucleoprotein, U2 Small Nuclear/metabolism , RNA/metabolism , RNA, Small Nuclear/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Spliceosomes/metabolism
4.
Int J Mol Sci ; 24(6)2023 Mar 09.
Article in English | MEDLINE | ID: mdl-36982311

ABSTRACT

The formation of mature mRNA requires cutting introns and splicing exons. The occurrence of splicing involves the participation of the spliceosome. Common spliceosomes mainly include five snRNPs: U1, U2, U4/U6, and U5. SF3a2, an essential component of spliceosome U2 snRNP, participates in splicing a series of genes. There is no definition of SF3a2 in plants. The paper elaborated on SF3a2s from a series of plants through protein sequence similarity. We constructed the evolutionary relationship of SF3a2s in plants. Moreover, we analyzed the similarities and differences in gene structure, protein structure, the cis-element of the promoter, and expression pattern; we predicted their interacting proteins and constructed their collinearity. We have preliminarily analyzed SF3a2s in plants and clarified the evolutionary relationship between different species; these studies can better serve for in-depth research on the members of the spliceosome in plants.


Subject(s)
Ribonucleoproteins, Small Nuclear , Spliceosomes , Spliceosomes/metabolism , Phylogeny , Ribonucleoproteins, Small Nuclear/genetics , RNA Splicing/genetics , Ribonucleoprotein, U2 Small Nuclear/chemistry , Ribonucleoprotein, U2 Small Nuclear/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism , RNA, Messenger/metabolism
5.
Nat Commun ; 14(1): 897, 2023 02 17.
Article in English | MEDLINE | ID: mdl-36797247

ABSTRACT

Three RNA helicases - DDX42, DDX46 and DHX15 - are found to be associated with human U2 snRNP, but their roles and mechanisms in U2 snRNP and spliceosome assembly are insufficiently understood. Here we report the cryo-electron microscopy (cryo-EM) structures of the DDX42-SF3b complex and a putative assembly precursor of 17S U2 snRNP that contains DDX42 (DDX42-U2 complex). DDX42 is anchored on SF3B1 through N-terminal sequences, with its N-plug occupying the RNA path of SF3B1. The binding mode of DDX42 to SF3B1 is in striking analogy to that of DDX46. In the DDX42-U2 complex, the N-terminus of DDX42 remains anchored on SF3B1, but the helicase domain has been displaced by U2 snRNA and TAT-SF1. Through in vitro assays, we show DDX42 and DDX46 are mutually exclusive in terms of binding to SF3b. Cancer-driving mutations of SF3B1 target the residues in the RNA path that directly interact with DDX42 and DDX46. These findings reveal the distinct roles of DDX42 and DDX46 in assembly of 17S U2 snRNP and provide insights into the mechanisms of SF3B1 cancer mutations.


Subject(s)
Neoplasms , Spliceosomes , Humans , Spliceosomes/metabolism , Ribonucleoprotein, U2 Small Nuclear/metabolism , RNA Helicases/genetics , RNA Helicases/metabolism , Cryoelectron Microscopy , Protein Binding , RNA, Small Nuclear/metabolism , Neoplasms/metabolism , RNA Splicing , RNA Precursors/metabolism , RNA Splicing Factors/metabolism , DEAD-box RNA Helicases/genetics , DEAD-box RNA Helicases/metabolism
6.
J Cell Sci ; 136(2)2023 01 15.
Article in English | MEDLINE | ID: mdl-36620952

ABSTRACT

SART3 is a multifunctional protein that acts in several steps of gene expression, including assembly and recycling of the spliceosomal U4/U6 small nuclear ribonucleoprotein particle (snRNP). In this work, we provide evidence that SART3 associates via its N-terminal HAT domain with the 12S U2 snRNP. Further analysis showed that SART3 associates with the post-splicing complex containing U2 and U5 snRNP components. In addition, we observed an interaction between SART3 and the RNA helicase DHX15, which disassembles post-splicing complexes. Based on our data, we propose a model that SART3 associates via its N-terminal HAT domain with the post-splicing complex, where it interacts with U6 snRNA to protect it and to initiate U6 snRNA recycling before a next round of splicing.


Subject(s)
RNA Splicing , Spliceosomes , RNA Splicing/genetics , Spliceosomes/genetics , Spliceosomes/metabolism , RNA, Small Nuclear/genetics , RNA, Small Nuclear/metabolism , Ribonucleoprotein, U4-U6 Small Nuclear/genetics , Ribonucleoprotein, U4-U6 Small Nuclear/metabolism , Ribonucleoprotein, U5 Small Nuclear/genetics , Ribonucleoprotein, U5 Small Nuclear/metabolism , Ribonucleoprotein, U2 Small Nuclear/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism , Ribonucleoproteins, Small Nuclear/genetics , Ribonucleoproteins, Small Nuclear/metabolism
7.
Cell Biol Int ; 47(1): 283-291, 2023 Jan.
Article in English | MEDLINE | ID: mdl-36200534

ABSTRACT

DDX46, a member of DEAD-box (DDX) proteins, is associated with various cancers, while its involvement in the pathogenesis of breast cancer hasn't been reported so far. The study demonstrated the overexpression of DDX46 in human breast cancer cells and tissue samples, and correlated with high histological grade and lymph node metastasis. Downregulation of DDX46 in the breast cancer cell lines inhibited their proliferation and invasiveness in vitro. Furthermore, the growth of MDA-MB-231 xenografts was suppressed in nude mice by DDX46 knockingdown. Taken together, our findings suggest that DDX46 is an oncogenic factor in human breast cancer, and a potential therapeutic target.


Subject(s)
Breast Neoplasms , Cell Proliferation , DEAD-box RNA Helicases , Animals , Female , Humans , Mice , Breast Neoplasms/genetics , Breast Neoplasms/metabolism , Cell Line, Tumor , Cell Movement/genetics , Cell Proliferation/genetics , DEAD-box RNA Helicases/genetics , DEAD-box RNA Helicases/metabolism , Gene Expression Regulation, Neoplastic , MCF-7 Cells , Mice, Nude , Neoplasm Invasiveness/genetics , Ribonucleoprotein, U2 Small Nuclear/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism
8.
BMC Genomics ; 23(1): 744, 2022 Nov 08.
Article in English | MEDLINE | ID: mdl-36348279

ABSTRACT

BACKGROUND: Alternative splicing (AS) is an important channel for gene expression regulation and protein diversification, in addition to a major reason for the considerable differences in the number of genes and proteins in eukaryotes. In plants, U2 small nuclear ribonucleoprotein B″ (U2B″), a component of splicing complex U2 snRNP, plays an important role in AS. Currently, few studies have investigated plant U2B″, and its mechanism remains unclear. RESULT: Phylogenetic analysis, including gene and protein structures, revealed that U2B″ is highly conserved in plants and typically contains two RNA recognition motifs. Subcellular localisation showed that OsU2B″ is located in the nucleus and cytoplasm, indicating that it has broad functions throughout the cell. Elemental analysis of the promoter region showed that it responded to numerous external stimuli, including hormones, stress, and light. Subsequent qPCR experiments examining response to stress (cold, salt, drought, and heavy metal cadmium) corroborated the findings. The prediction results of protein-protein interactions showed that its function is largely through a single pathway, mainly through interaction with snRNP proteins. CONCLUSION: U2B″ is highly conserved in the plant kingdom, functions in the nucleus and cytoplasm, and participates in a wide range of processes in plant growth and development.


Subject(s)
Ribonucleoprotein, U2 Small Nuclear , Spliceosomes , snRNP Core Proteins/genetics , Ribonucleoprotein, U2 Small Nuclear/chemistry , Ribonucleoprotein, U2 Small Nuclear/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism , Phylogeny , Amino Acid Sequence , RNA, Small Nuclear/genetics , RNA Splicing
9.
Nature ; 609(7928): 829-834, 2022 09.
Article in English | MEDLINE | ID: mdl-36104565

ABSTRACT

RNA splicing, the process of intron removal from pre-mRNA, is essential for the regulation of gene expression. It is controlled by the spliceosome, a megadalton RNA-protein complex that assembles de novo on each pre-mRNA intron through an ordered assembly of intermediate complexes1,2. Spliceosome activation is a major control step that requires substantial protein and RNA rearrangements leading to a catalytically active complex1-5. Splicing factor 3B subunit 1 (SF3B1) protein-a subunit of the U2 small nuclear ribonucleoprotein6-is phosphorylated during spliceosome activation7-10, but the kinase that is responsible has not been identified. Here we show that cyclin-dependent kinase 11 (CDK11) associates with SF3B1 and phosphorylates threonine residues at its N terminus during spliceosome activation. The phosphorylation is important for the association between SF3B1 and U5 and U6 snRNAs in the activated spliceosome, termed the Bact complex, and the phosphorylation can be blocked by OTS964, a potent and selective inhibitor of CDK11. Inhibition of CDK11 prevents spliceosomal transition from the precatalytic complex B to the activated complex Bact and leads to widespread intron retention and accumulation of non-functional spliceosomes on pre-mRNAs and chromatin. We demonstrate a central role of CDK11 in spliceosome assembly and splicing regulation and characterize OTS964 as a highly selective CDK11 inhibitor that suppresses spliceosome activation and splicing.


Subject(s)
Cyclin-Dependent Kinases , Phosphoproteins , RNA Precursors , RNA Splicing , Ribonucleoprotein, U2 Small Nuclear , Spliceosomes , Chromatin/metabolism , Cyclin-Dependent Kinases/antagonists & inhibitors , Cyclin-Dependent Kinases/metabolism , Enzyme Activation/drug effects , Phosphoproteins/chemistry , Phosphoproteins/metabolism , Phosphorylation , Quinolones/pharmacology , RNA Precursors/genetics , RNA Precursors/metabolism , RNA Splicing/drug effects , Ribonucleoprotein, U2 Small Nuclear/chemistry , Ribonucleoprotein, U2 Small Nuclear/metabolism , Spliceosomes/drug effects , Spliceosomes/metabolism , Threonine/metabolism
10.
Protein Sci ; 31(10): e4437, 2022 10.
Article in English | MEDLINE | ID: mdl-36173164

ABSTRACT

SURP domains are exclusively found in splicing-related proteins in all eukaryotes. SF3A1, a component of the U2 snRNP, has two tandem SURP domains, SURP1, and SURP2. SURP2 is permanently associated with a specific short region of SF3A3 within the SF3A protein complex whereas, SURP1 binds to the splicing factor SF1 for recruitment of U2 snRNP to the early spliceosomal complex, from which SF1 is dissociated during complex conversion. Here, we determined the solution structure of the complex of SURP1 and the human SF1 fragment using nuclear magnetic resonance (NMR) methods. SURP1 adopts the canonical topology of α1-α2-310 -α3, in which α1 and α2 are connected by a single glycine residue in a particular backbone conformation, allowing the two α-helices to be fixed at an acute angle. A hydrophobic patch, which is part of the characteristic surface formed by α1 and α2, specifically contacts a hydrophobic cluster on a 16-residue α-helix of the SF1 fragment. Furthermore, whereas only hydrophobic interactions occurred between SURP2 and the SF3A3 fragment, several salt bridges and hydrogen bonds were found between the residues of SURP1 and the SF1 fragment. This finding was confirmed through mutational studies using bio-layer interferometry. The study also revealed that the dissociation constant between SURP1 and the SF1 fragment peptide was approximately 20 µM, indicating a weak or transient interaction. Collectively, these results indicate that the interplay between U2 snRNP and SF1 involves a transient interaction of SURP1, and this transient interaction appears to be common to most SURP domains, except for SURP2.


Subject(s)
RNA Splicing Factors , Ribonucleoprotein, U2 Small Nuclear , Spliceosomes , Glycine , Humans , Protein Binding , RNA Splicing , RNA Splicing Factors/genetics , RNA Splicing Factors/metabolism , Ribonucleoprotein, U2 Small Nuclear/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism , Spliceosomes/genetics , Spliceosomes/metabolism
11.
J Biochem ; 172(2): 117-126, 2022 Jul 25.
Article in English | MEDLINE | ID: mdl-35652295

ABSTRACT

While cancer-associated SF3B1 mutations causes alternative RNA splicing, the molecular mechanism underlying the alternative RNA splicing is not fully elucidated. Here, we analysed the proteins that interacted with the wild-type and K700E-mutated SF3B1 and found that the interactions of two RNA helicases, DDX42 and DDX46, with the mutated SF3B1 were reduced. Overexpression of DDX42 restored the decreased interaction between DDX42 and the K700E-mutated SF3B1, and suppressed some alternative RNA splicing associated with the SF3B1 mutation. Mutation that decreased the ATP hydrolysis activities of DDX42 abolished the suppressive effects of DDX42 on the alternative RNA splicing, suggesting that the ATP hydrolysis activity of DDX42 is involved in the mechanism of the altered RNA splicing associated with the SF3B1 mutation. Our study demonstrates an important function of the interaction between DDX42 and SF3B1 on regulating RNA splicing and revealed a potential role of DDX42 in the altered RNA splicing associated with the SF3B1 mutation.


Subject(s)
DEAD-box RNA Helicases , Neoplasms , Phosphoproteins , RNA Splicing Factors , Ribonucleoprotein, U2 Small Nuclear , Adenosine Triphosphate , DEAD-box RNA Helicases/genetics , DEAD-box RNA Helicases/metabolism , Humans , Mutation , Neoplasms/genetics , Phosphoproteins/genetics , Phosphoproteins/metabolism , RNA Splicing , RNA Splicing Factors/genetics , RNA Splicing Factors/metabolism , Ribonucleoprotein, U2 Small Nuclear/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism
12.
Plant Physiol ; 190(1): 621-639, 2022 08 29.
Article in English | MEDLINE | ID: mdl-35640107

ABSTRACT

Pre-mRNA splicing is an important step in the posttranscriptional processing of transcripts and a key regulator of development. The heterotrimeric retention and splicing (RES) complex plays vital roles in the growth and development of yeast, zebrafish, and humans by mediating pre-mRNA splicing of multiple genes. However, whether the RES complex is conserved in plants and what specific functions it has remain unknown. In this study, we identified Arabidopsis (Arabidopsis thaliana) BUD13 (AtBUD13), GROWTH, DEVELOPMENT AND SPLICING 1 (GDS1), and DAWDLE (DDL) as the counterparts of the yeast RES complex subunits Bud site selection protein 13 (Bud13), U2 snRNP component Snu17 (Snu17), and Pre-mRNA leakage protein 1, respectively. Moreover, we showed that RES is an ancient complex evolutionarily conserved in eukaryotes. GDS1 directly interacts with both AtBUD13 and DDL in nuclear speckles. The BUD13 domain of AtBUD13 and the RNA recognition motif domain of GDS1 are necessary and sufficient for AtBUD13-GDS1 interaction. Mutants of AtBUD13, GDS1, and DDL failed to properly splice multiple genes involved in cell proliferation and showed defects in early embryogenesis and root development. In addition, we found that GDS1 and DDL interact, respectively, with the U2 small nuclear ribonucleoproteins auxiliary factor AtU2AF65B and the NineTeen Complex-related splicing factor SKIP, which are essential for early steps of spliceosome assembly and recognition of splice sites. Altogether, our work reveals that the Arabidopsis RES complex is important for root and early embryo development by modulating pre-mRNA splicing.


Subject(s)
Arabidopsis , Animals , Arabidopsis/metabolism , Embryonic Development , Humans , RNA Precursors/genetics , RNA Precursors/metabolism , RNA Splicing/genetics , Ribonucleoprotein, U2 Small Nuclear/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism , Saccharomyces cerevisiae/metabolism , Zebrafish/genetics , Zebrafish/metabolism
13.
J Exp Clin Cancer Res ; 41(1): 120, 2022 Apr 01.
Article in English | MEDLINE | ID: mdl-35365208

ABSTRACT

BACKGROUND: Circular RNA (circRNA) has been recently identified as a critical regulator during carcinogenesis. However, the biological function and potential underlying mechanisms of circRNAs in lung cancer remain to be further elucidated. METHODS: Here, we first evaluated the differentially expressed circRNAs between tumor and the matched adjacent nontumor tissues (3 pairs) of lung cancer patients via circRNA microarray. The expression of top five dysregulated circRNAs were tested in lung cancer cell lines and the circSCAP with concordant alteration in microarray data and cell lines was selected for further investigation. Then we validated the expression level of circSCAP in tumor and corresponding adjacent tissues (161 pairs) from a lung cancer cohort by RT-PCR analysis followed by correlation and prognosis analysis between circSCAP and clinical characteristics. Non-small cell lung cancer (NSCLC) accounts for the majority of lung cancer diagnosis (about 80% in the cohort used in this study). Therefore, we focused the role of circSCAP in NSCLC in the present study. In vitro and in vivo assays were performed to study the biological function of circSCAP in NSCLC. Biotin-labeled RNA pulldown and RNA immunoprecipitation (RIP) assays were carried out to identify the proteins directly interacting with circSCAP. The molecular mechanism of circSCAP-driven tumor suppression was demonstrated by immunoblotting, immunoprecipitation and luciferase reporter assays. In vitro and in vivo rescue experiments were conducted to verify the role of the circSCAP/SF3A3/p53 signaling axis in NSCLC. RESULTS: We screened the expression profiles of human circRNAs in lung cancer tissues and found that hsa_circ_0065214 (termed as circSCAP) was significantly decreased. Kaplan-Meier analysis showed that patients with low level of circSCAP had a significantly poor prognosis. Gain- and loss-of-function experiments suggested that circSCAP played an important role in NSCLC cell proliferation, cell migration and apoptosis. Mechanistically, circSCAP directly binds to the SF3A3 protein, facilitating the reduction of SF3A3 by promoting its ubiquitin-proteasome-mediated degradation, which enhances the expression of MDM4-S to finally activate its downstream p53 signaling. CONCLUSION: These findings illustrate a novel circSCAP/SF3A3/p53 signaling axis involved in suppressing the malignance of NSCLC and provide a promising target for NSCLC prognosis prediction and treatment.


Subject(s)
Carcinoma, Non-Small-Cell Lung , Lung Neoplasms , MicroRNAs , RNA, Circular/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism , Carcinoma, Non-Small-Cell Lung/genetics , Carcinoma, Non-Small-Cell Lung/pathology , Cell Cycle Proteins/metabolism , Cell Proliferation/genetics , Humans , Lung Neoplasms/pathology , MicroRNAs/genetics , Proto-Oncogene Proteins/metabolism , Tumor Suppressor Protein p53/genetics
14.
RNA ; 28(4): 583-595, 2022 04.
Article in English | MEDLINE | ID: mdl-35046126

ABSTRACT

A critical step of pre-mRNA splicing is the recruitment of U2 snRNP to the branch point sequence of an intron. U2 snRNP conformation changes extensively during branch helix formation, and several RNA-dependent ATPases are implicated in the process. However, the molecular mechanisms involved remain to be fully dissected. We took advantage of the differential nucleotide triphosphates requirements for DExD/H-box enzymes to probe their contributions to in vitro spliceosome assembly. Both ATP and GTP hydrolysis support the formation of A-complex, indicating the activity of a DEAH-enzyme because DEAD-enzymes are selective for ATP. We immunodepleted DHX15 to assess its involvement, and although splicing efficiency decreases with reduced DHX15, A-complex accumulation incongruently increases. DHX15 depletion also results in the persistence of the atypical ATP-independent interaction between U2 snRNP and a minimal substrate that is otherwise destabilized in the presence of either ATP or GTP. These results lead us to hypothesize that DHX15 plays a quality control function in U2 snRNP's engagement with an intron. In efforts to identify the RNA target of DHX15, we determined that an extended polypyrimidine tract is not necessary for disruption of the atypical interaction between U2 snRNP and the minimal substrate. We also examined U2 snRNA by RNase H digestion and identified nucleotides in the branch binding region that become accessible with both ATP and GTP hydrolysis, again implicating a DEAH-enzyme. Together, our results demonstrate that multiple ATP-dependent rearrangements are likely involved in U2 snRNP addition to the spliceosome and that DHX15 may have an expanded role in maintaining splicing fidelity.


Subject(s)
Ribonucleoprotein, U2 Small Nuclear , Spliceosomes , Introns/genetics , RNA Precursors/metabolism , RNA Splicing , RNA, Small Nuclear/genetics , Ribonuclease H/metabolism , Ribonucleoprotein, U2 Small Nuclear/metabolism , Spliceosomes/metabolism
15.
Science ; 375(6576): 50-57, 2022 Jan 07.
Article in English | MEDLINE | ID: mdl-34822310

ABSTRACT

Recognition of the intron branch site (BS) by the U2 small nuclear ribonucleoprotein (snRNP) is a critical event during spliceosome assembly. In mammals, BS sequences are poorly conserved, and unambiguous intron recognition cannot be achieved solely through a base-pairing mechanism. We isolated human 17S U2 snRNP and reconstituted in vitro its adenosine 5´-triphosphate (ATP)­dependent remodeling and binding to the pre­messenger RNA substrate. We determined a series of high-resolution (2.0 to 2.2 angstrom) structures providing snapshots of the BS selection process. The substrate-bound U2 snRNP shows that SF3B6 stabilizes the BS:U2 snRNA duplex, which could aid binding of introns with poor sequence complementarity. ATP-dependent remodeling uncoupled from substrate binding captures U2 snRNA in a conformation that competes with BS recognition, providing a selection mechanism based on branch helix stability.


Subject(s)
Introns , RNA Precursors/chemistry , Ribonucleoprotein, U2 Small Nuclear/chemistry , Spliceosomes/chemistry , Cryoelectron Microscopy , Humans , Models, Molecular , Nucleic Acid Conformation , Phosphoproteins/chemistry , Phosphoproteins/metabolism , Protein Binding , Protein Conformation , RNA Precursors/metabolism , RNA Splicing , RNA Splicing Factors/chemistry , RNA Splicing Factors/metabolism , RNA, Small Nuclear/chemistry , RNA, Small Nuclear/metabolism , Ribonucleoprotein, U2 Small Nuclear/metabolism , Spliceosomes/metabolism , Trans-Activators/chemistry , Trans-Activators/metabolism
16.
Planta ; 255(1): 25, 2021 Dec 23.
Article in English | MEDLINE | ID: mdl-34940917

ABSTRACT

MAIN CONCLUSION: This study systematically identifies 112 U2A genes from 80 plant species by combinatory bioinformatics analysis, which is important for understanding their phylogenetic history, expression profiles and for predicting specific functions. In eukaryotes, a pre-mRNA can generate multiple transcripts by removing certain introns and joining corresponding exons, thus greatly expanding the transcriptome and proteome diversity. The spliceosome is a mega-Dalton ribonucleoprotein (RNP) complex that is essential for the process of splicing. In spliceosome components, the U2 small nuclear ribonucleoprotein (U2 snRNP) forms the pre-spliceosome by association with the branch site. An essential component that promotes U2 snRNP assembly, named U2A, has been extensively identified in humans, yeast and nematodes. However, studies examining U2A genes in plants are scarce. In this study, we performed a comprehensive analysis and identified a total of 112 U2A genes from 80 plant species representing dicots, monocots, mosses and algae. Comparisons of the gene structures, protein domains, and expression patterns of 112 U2A genes indicated that the conserved functions were likely retained by plant U2A genes and important for responses to internal and external stimuli. In addition, analysis of alternative transcripts and splice sites of U2A genes indicated that the fifth intron contained a conserved alternative splicing event that might be important for its molecular function. Our work provides a general understanding of this splicing factor family in terms of genes and proteins, and it will serve as a fundamental resource that will contribute to further mechanistic characterization in plants.


Subject(s)
Plants/genetics , Ribonucleoprotein, U2 Small Nuclear , Spliceosomes , Phylogeny , RNA Splicing/genetics , RNA Splicing Factors/metabolism , Ribonucleoprotein, U2 Small Nuclear/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism , Spliceosomes/genetics , Spliceosomes/metabolism
17.
PLoS One ; 16(10): e0258551, 2021.
Article in English | MEDLINE | ID: mdl-34648557

ABSTRACT

U2 snRNP is an essential component of the spliceosome. It is responsible for branch point recognition in the spliceosome A-complex via base-pairing of U2 snRNA with an intron to form the branch helix. Small molecule inhibitors target the SF3B component of the U2 snRNP and interfere with A-complex formation during spliceosome assembly. We previously found that the first SF3B inhibited-complex is less stable than A-complex and hypothesized that SF3B inhibitors interfere with U2 snRNA secondary structure changes required to form the branch helix. Using RNA chemical modifiers, we probed U2 snRNA structure in A-complex and SF3B inhibited splicing complexes. The reactivity pattern for U2 snRNA in the SF3B inhibited-complex is indistinguishable from that of A-complex, suggesting that they have the same secondary structure conformation, including the branch helix. This observation suggests SF3B inhibited-complex instability does not stem from an alternate RNA conformation and instead points to the inhibitors interfering with protein component interactions that normally stabilize U2 snRNP's association with an intron. In addition, we probed U2 snRNA in the free U2 snRNP in the presence of SF3B inhibitor and again saw no differences. However, increased protection of nucleotides upstream of Stem I in the absence of SF3A and SF3B proteins suggests a change of secondary structure at the very 5' end of U2 snRNA. Chemical probing of synthetic U2 snRNA in the absence of proteins results in similar protections and predicts a previously uncharacterized extension of Stem I. Because this stem must be disrupted for SF3A and SF3B proteins to stably join the snRNP, the structure has the potential to influence snRNP assembly and recycling after spliceosome disassembly.


Subject(s)
RNA, Small Nuclear/chemistry , Ribonucleoprotein, U2 Small Nuclear/metabolism , HeLa Cells , Humans , Nucleic Acid Conformation , Protein Structure, Secondary , Protein Subunits/chemistry , Protein Subunits/metabolism , Ribonucleoprotein, U2 Small Nuclear/chemistry , Spliceosomes/metabolism
18.
Genes (Basel) ; 12(9)2021 08 28.
Article in English | MEDLINE | ID: mdl-34573320

ABSTRACT

Pulmonary arterial hypertension (PAH) is a rare cardiovascular disease with very high mortality rate. The currently available therapeutic strategies, which improve symptoms, cannot fundamentally reverse the condition. Thus, new therapeutic strategies need to be established. Our research analyzed three microarray datasets of lung tissues from human PAH samples retrieved from the Gene Expression Omnibus (GEO) database. We combined two datasets for subsequent analyses, with the batch effects removed. In the merged dataset, 542 DEGs were identified and the key module relevant to PAH was selected using WGCNA. GO and KEGG analyses of DEGs and the key module indicated that the pre-ribosome, ribosome biogenesis, centriole, ATPase activity, helicase activity, hypertrophic cardiomyopathy, melanoma, and dilated cardiomyopathy pathways are involved in PAH. With the filtering standard (|MM| > 0.95 and |GS| > 0.90), 70 hub genes were identified. Subsequently, five candidate marker genes (CDC5L, AP3B1, ZFYVE16, DDX46, and PHAX) in the key module were found through overlapping with the top thirty genes calculated by two different methods in CytoHubb. Two of them (CDC5L and DDX46) were found to be significantly upregulated both in the merged dataset and the validating dataset in PAH patients. Meanwhile, expression of the selected genes in lung from PAH chicken measured by qRT-PCR and the ROC curve analyses further verified the potential marker genes' predictive value for PAH. In conclusion, CDC5L and DDX46 may be marker genes and potential therapeutic targets for PAH.


Subject(s)
Cell Cycle Proteins/genetics , DEAD-box RNA Helicases/genetics , Pulmonary Arterial Hypertension/diagnosis , RNA-Binding Proteins/genetics , Ribonucleoprotein, U2 Small Nuclear/genetics , Animals , Biomarkers/analysis , Biomarkers/metabolism , Cell Cycle Proteins/antagonists & inhibitors , Cell Cycle Proteins/metabolism , Chickens , Computational Biology , DEAD-box RNA Helicases/antagonists & inhibitors , DEAD-box RNA Helicases/metabolism , Datasets as Topic , Disease Models, Animal , Gene Expression Profiling , Gene Regulatory Networks/drug effects , Humans , Lung/pathology , Microarray Analysis , Molecular Targeted Therapy/methods , Predictive Value of Tests , Protein Interaction Maps/drug effects , Protein Interaction Maps/genetics , Pulmonary Arterial Hypertension/drug therapy , Pulmonary Arterial Hypertension/genetics , Pulmonary Arterial Hypertension/pathology , RNA-Binding Proteins/antagonists & inhibitors , RNA-Binding Proteins/metabolism , ROC Curve , Ribonucleoprotein, U2 Small Nuclear/antagonists & inhibitors , Ribonucleoprotein, U2 Small Nuclear/metabolism , Up-Regulation/drug effects
19.
Nucleic Acids Res ; 49(17): 9965-9977, 2021 09 27.
Article in English | MEDLINE | ID: mdl-34387687

ABSTRACT

Splicing of pre-mRNA is initiated by binding of U1 to the 5' splice site and of Msl5-Mud2 heterodimer to the branch site (BS). Subsequent binding of U2 displaces Msl5-Mud2 from the BS to form the prespliceosome, a step governing branchpoint selection and hence 3' splice site choice, and linking splicing to myelodysplasia and many cancers in human. Two DEAD-box proteins, Prp5 and Sub2, are required for this step, but neither is stably associated with the pre-mRNA during the reaction. Using BS-mutated ACT1 pre-mRNA, we previously identified a splicing intermediate complex, FIC, which contains U2 and Prp5, but cannot bind the tri-snRNP. We show here that Msl5 remains associated with the upstream cryptic branch site (CBS) in the FIC, with U2 binding a few bases downstream of the BS. U2 mutants that restore U2-BS base pairing enable dissociation of Prp5 and allows splicing to proceed. The CBS is required for splicing rescue by compensatory U2 mutants, and for formation of FIC, demonstrating a role for Msl5 in directing U2 to the BS, and of U2-BS base pairing for release of Prp5 and Msl5-Mud2 to form the prespliceosome. Our results provide insights into how the prespliceosome may form in normal splicing reaction.


Subject(s)
RNA Splicing/genetics , RNA, Messenger/genetics , Ribonucleoprotein, U2 Small Nuclear/metabolism , Spliceosomes/genetics , Actins/genetics , Adenosine Triphosphatases/genetics , DEAD-box RNA Helicases/genetics , Humans , RNA Splicing Factors/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Splicing Factor U2AF/metabolism
20.
Nature ; 596(7871): 296-300, 2021 08.
Article in English | MEDLINE | ID: mdl-34349264

ABSTRACT

During the splicing of introns from precursor messenger RNAs (pre-mRNAs), the U2 small nuclear ribonucleoprotein (snRNP) must undergo stable integration into the spliceosomal A complex-a poorly understood, multistep process that is facilitated by the DEAD-box helicase Prp5 (refs. 1-4). During this process, the U2 small nuclear RNA (snRNA) forms an RNA duplex with the pre-mRNA branch site (the U2-BS helix), which is proofread by Prp5 at this stage through an unclear mechanism5. Here, by deleting the branch-site adenosine (BS-A) or mutating the branch-site sequence of an actin pre-mRNA, we stall the assembly of spliceosomes in extracts from the yeast Saccharomyces cerevisiae directly before the A complex is formed. We then determine the three-dimensional structure of this newly identified assembly intermediate by cryo-electron microscopy. Our structure indicates that the U2-BS helix has formed in this pre-A complex, but is not yet clamped by the HEAT domain of the Hsh155 protein (Hsh155HEAT), which exhibits an open conformation. The structure further reveals a large-scale remodelling/repositioning of the U1 and U2 snRNPs during the formation of the A complex that is required to allow subsequent binding of the U4/U6.U5 tri-snRNP, but that this repositioning is blocked in the pre-A complex by the presence of Prp5. Our data suggest that binding of Hsh155HEAT to the bulged BS-A of the U2-BS helix triggers closure of Hsh155HEAT, which in turn destabilizes Prp5 binding. Thus, Prp5 proofreads the branch site indirectly, hindering spliceosome assembly if branch-site mutations prevent the remodelling of Hsh155HEAT. Our data provide structural insights into how a spliceosomal helicase enhances the fidelity of pre-mRNA splicing.


Subject(s)
DEAD-box RNA Helicases/chemistry , DEAD-box RNA Helicases/metabolism , RNA Precursors/chemistry , RNA Precursors/genetics , RNA Splicing , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae , Spliceosomes/enzymology , Actins/genetics , Adenosine/metabolism , Binding Sites , Cryoelectron Microscopy , DEAD-box RNA Helicases/ultrastructure , Models, Molecular , Mutation , Protein Domains , RNA Precursors/metabolism , RNA Precursors/ultrastructure , RNA Splicing/genetics , Ribonucleoprotein, U1 Small Nuclear/metabolism , Ribonucleoprotein, U2 Small Nuclear/chemistry , Ribonucleoprotein, U2 Small Nuclear/metabolism , Saccharomyces cerevisiae/enzymology , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/ultrastructure , Spliceosomes/chemistry , Spliceosomes/metabolism
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