Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 348
Filter
1.
Cell ; 179(2): 448-458.e11, 2019 10 03.
Article in English | MEDLINE | ID: mdl-31564454

ABSTRACT

Bacteria and archaea possess a striking diversity of CRISPR-Cas systems divided into six types, posing a significant barrier to viral infection. As part of the virus-host arms race, viruses encode protein inhibitors of type I, II, and V CRISPR-Cas systems, but whether there are natural inhibitors of the other, mechanistically distinct CRISPR-Cas types is unknown. Here, we present the discovery of a type III CRISPR-Cas inhibitor, AcrIIIB1, encoded by the Sulfolobus virus SIRV2. AcrIIIB1 exclusively inhibits CRISPR-Cas subtype III-B immunity mediated by the RNase activity of the accessory protein Csx1. AcrIIIB1 does not appear to bind Csx1 but, rather, interacts with two distinct subtype III-B effector complexes-Cmr-α and Cmr-γ-which, in response to protospacer transcript binding, are known to synthesize cyclic oligoadenylates (cOAs) that activate the Csx1 "collateral" RNase. Taken together, we infer that AcrIIIB1 inhibits type III-B CRISPR-Cas immunity by interfering with a Csx1 RNase-related process.


Subject(s)
CRISPR-Associated Proteins/physiology , CRISPR-Cas Systems , Host-Pathogen Interactions , Rudiviridae/metabolism , Sulfolobus/virology , Ribonucleases/metabolism
2.
Cell ; 173(7): 1663-1677.e21, 2018 06 14.
Article in English | MEDLINE | ID: mdl-29906447

ABSTRACT

The ribonucleolytic RNA exosome interacts with RNA helicases to degrade RNA. To understand how the 3' to 5' Mtr4 helicase engages RNA and the nuclear exosome, we reconstituted 14-subunit Mtr4-containing RNA exosomes from Saccharomyces cerevisiae, Schizosaccharomyces pombe, and human and show that they unwind structured substrates to promote degradation. We loaded a human exosome with an optimized DNA-RNA chimera that stalls MTR4 during unwinding and determined its structure to an overall resolution of 3.45 Å by cryoelectron microscopy (cryo-EM). The structure reveals an RNA-engaged helicase atop the non-catalytic core, with RNA captured within the central channel and DIS3 exoribonuclease active site. MPP6 tethers MTR4 to the exosome through contacts to the RecA domains of MTR4. EXOSC10 remains bound to the core, but its catalytic module and cofactor C1D are displaced by RNA-engaged MTR4. Competition for the exosome core may ensure that RNA is committed to degradation by DIS3 when engaged by MTR4.


Subject(s)
DNA Helicases/metabolism , Exosome Multienzyme Ribonuclease Complex/metabolism , RNA Helicases/metabolism , RNA/metabolism , Catalytic Domain , Cryoelectron Microscopy , DNA/genetics , DNA/metabolism , Exoribonucleases/chemistry , Exoribonucleases/metabolism , Exosome Multienzyme Ribonuclease Complex/chemistry , Humans , Image Processing, Computer-Assisted , Membrane Proteins/chemistry , Membrane Proteins/metabolism , Protein Binding , Protein Structure, Quaternary , RNA/genetics , RNA Helicases/chemistry , RNA Stability , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Schizosaccharomyces/metabolism , Schizosaccharomyces pombe Proteins/chemistry , Schizosaccharomyces pombe Proteins/metabolism , Substrate Specificity
3.
Mol Cell ; 84(14): 2765-2784.e16, 2024 Jul 25.
Article in English | MEDLINE | ID: mdl-38964322

ABSTRACT

Dissecting the regulatory mechanisms controlling mammalian transcripts from production to degradation requires quantitative measurements of mRNA flow across the cell. We developed subcellular TimeLapse-seq to measure the rates at which RNAs are released from chromatin, exported from the nucleus, loaded onto polysomes, and degraded within the nucleus and cytoplasm in human and mouse cells. These rates varied substantially, yet transcripts from genes with related functions or targeted by the same transcription factors and RNA-binding proteins flowed across subcellular compartments with similar kinetics. Verifying these associations uncovered a link between DDX3X and nuclear export. For hundreds of RNA metabolism genes, most transcripts with retained introns were degraded by the nuclear exosome, while the remaining molecules were exported with stable cytoplasmic lifespans. Transcripts residing on chromatin for longer had extended poly(A) tails, whereas the reverse was observed for cytoplasmic mRNAs. Finally, machine learning identified molecular features that predicted the diverse life cycles of mRNAs.


Subject(s)
Cell Nucleus , Chromatin , DEAD-box RNA Helicases , RNA, Messenger , Animals , Humans , Mice , RNA, Messenger/metabolism , RNA, Messenger/genetics , Cell Nucleus/metabolism , Cell Nucleus/genetics , DEAD-box RNA Helicases/metabolism , DEAD-box RNA Helicases/genetics , Chromatin/metabolism , Chromatin/genetics , Cytoplasm/metabolism , Cytoplasm/genetics , RNA Stability , Active Transport, Cell Nucleus , Polyribosomes/metabolism , Polyribosomes/genetics , Machine Learning , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , Exosomes/metabolism , Exosomes/genetics
4.
Mol Cell ; 83(22): 4093-4105.e7, 2023 Nov 16.
Article in English | MEDLINE | ID: mdl-37879335

ABSTRACT

The Ski2-Ski3-Ski8 (Ski238) helicase complex directs cytoplasmic mRNAs toward the nucleolytic exosome complex for degradation. In yeast, the interaction between Ski238 and exosome requires the adaptor protein Ski7. We determined different cryo-EM structures of the Ski238 complex depicting the transition from a rigid autoinhibited closed conformation to a flexible active open conformation in which the Ski2 helicase module has detached from the rest of Ski238. The open conformation favors the interaction of the Ski3 subunit with exosome-bound Ski7, leading to the recruitment of the exosome. In the Ski238-Ski7-exosome holocomplex, the Ski2 helicase module binds the exosome cap, enabling the RNA to traverse from the helicase through the internal exosome channel to the Rrp44 exoribonuclease. Our study pinpoints how conformational changes within the Ski238 complex regulate exosome recruitment for RNA degradation. We also reveal the remarkable conservation of helicase-exosome RNA channeling mechanisms throughout eukaryotic nuclear and cytoplasmic exosome complexes.


Subject(s)
Exosomes , Saccharomyces cerevisiae Proteins , Exosomes/metabolism , RNA/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Exosome Multienzyme Ribonuclease Complex/genetics , Exosome Multienzyme Ribonuclease Complex/metabolism , RNA Stability
5.
Mol Cell ; 83(13): 2290-2302.e13, 2023 Jul 06.
Article in English | MEDLINE | ID: mdl-37295431

ABSTRACT

Microtubules play crucial roles in cellular architecture, intracellular transport, and mitosis. The availability of free tubulin subunits affects polymerization dynamics and microtubule function. When cells sense excess free tubulin, they trigger degradation of the encoding mRNAs, which requires recognition of the nascent polypeptide by the tubulin-specific ribosome-binding factor TTC5. How TTC5 initiates the decay of tubulin mRNAs is unknown. Here, our biochemical and structural analysis reveals that TTC5 recruits the poorly studied protein SCAPER to the ribosome. SCAPER, in turn, engages the CCR4-NOT deadenylase complex through its CNOT11 subunit to trigger tubulin mRNA decay. SCAPER mutants that cause intellectual disability and retinitis pigmentosa in humans are impaired in CCR4-NOT recruitment, tubulin mRNA degradation, and microtubule-dependent chromosome segregation. Our findings demonstrate how recognition of a nascent polypeptide on the ribosome is physically linked to mRNA decay factors via a relay of protein-protein interactions, providing a paradigm for specificity in cytoplasmic gene regulation.


Subject(s)
Ribosomes , Tubulin , Humans , Tubulin/genetics , Tubulin/metabolism , Ribosomes/genetics , Ribosomes/metabolism , Microtubules/metabolism , Homeostasis , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA Stability , Carrier Proteins/metabolism , Transcription Factors/metabolism
6.
Mol Cell ; 83(2): 237-251.e7, 2023 Jan 19.
Article in English | MEDLINE | ID: mdl-36599352

ABSTRACT

N6-methyladenosine (m6A), a widespread destabilizing mark on mRNA, is non-uniformly distributed across the transcriptome, yet the basis for its selective deposition is unknown. Here, we propose that m6A deposition is not selective. Instead, it is exclusion based: m6A consensus motifs are methylated by default, unless they are within a window of ∼100 nt from a splice junction. A simple model which we extensively validate, relying exclusively on presence of m6A motifs and exon-intron architecture, allows in silico recapitulation of experimentally measured m6A profiles. We provide evidence that exclusion from splice junctions is mediated by the exon junction complex (EJC), potentially via physical occlusion, and that previously observed associations between exon-intron architecture and mRNA decay are mechanistically mediated via m6A. Our findings establish a mechanism coupling nuclear mRNA splicing and packaging with the covalent installation of m6A, in turn controlling cytoplasmic decay.


Subject(s)
RNA Splicing , Transcriptome , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA Stability , Exons/genetics
7.
Mol Cell ; 83(23): 4255-4271.e9, 2023 Dec 07.
Article in English | MEDLINE | ID: mdl-37995687

ABSTRACT

Endogenous retroviruses (ERVs) are remnants of ancient parasitic infections and comprise sizable portions of most genomes. Although epigenetic mechanisms silence most ERVs by generating a repressive environment that prevents their expression (heterochromatin), little is known about mechanisms silencing ERVs residing in open regions of the genome (euchromatin). This is particularly important during embryonic development, where induction and repression of distinct classes of ERVs occur in short temporal windows. Here, we demonstrate that transcription-associated RNA degradation by the nuclear RNA exosome and Integrator is a regulatory mechanism that controls the productive transcription of most genes and many ERVs involved in preimplantation development. Disrupting nuclear RNA catabolism promotes dedifferentiation to a totipotent-like state characterized by defects in RNAPII elongation and decreased expression of long genes (gene-length asymmetry). Our results indicate that RNA catabolism is a core regulatory module of gene networks that safeguards RNAPII activity, ERV expression, cell identity, and developmental potency.


Subject(s)
Endogenous Retroviruses , Endogenous Retroviruses/genetics , RNA, Nuclear , Epigenesis, Genetic , Heterochromatin , Gene Expression
8.
Mol Cell ; 82(4): 756-769.e8, 2022 02 17.
Article in English | MEDLINE | ID: mdl-35120588

ABSTRACT

The superkiller (SKI) complex is the cytoplasmic co-factor and regulator of the RNA-degrading exosome. In human cells, the SKI complex functions mainly in co-translational surveillance-decay pathways, and its malfunction is linked to a severe congenital disorder, the trichohepatoenteric syndrome. To obtain insights into the molecular mechanisms regulating the human SKI (hSKI) complex, we structurally characterized several of its functional states in the context of 80S ribosomes and substrate RNA. In a prehydrolytic ATP form, the hSKI complex exhibits a closed conformation with an inherent gating system that effectively traps the 80S-bound RNA into the hSKI2 helicase subunit. When active, hSKI switches to an open conformation in which the gating is released and the RNA 3' end exits the helicase. The emerging picture is that the gatekeeping mechanism and architectural remodeling of hSKI underpin a regulated RNA channeling system that is mechanistically conserved among the cytoplasmic and nuclear helicase-exosome complexes.


Subject(s)
Exoribonucleases/metabolism , Exosome Multienzyme Ribonuclease Complex/metabolism , RNA Helicases/metabolism , RNA Processing, Post-Transcriptional , RNA Stability , RNA/metabolism , Ribosome Subunits/metabolism , Adenosine Triphosphate/metabolism , Binding Sites , Exoribonucleases/genetics , Exoribonucleases/ultrastructure , Exosome Multienzyme Ribonuclease Complex/genetics , Exosome Multienzyme Ribonuclease Complex/ultrastructure , HEK293 Cells , Humans , Models, Molecular , Nucleic Acid Conformation , Protein Conformation , RNA/genetics , RNA/ultrastructure , RNA Helicases/genetics , RNA Helicases/ultrastructure , Ribosome Subunits/genetics , Ribosome Subunits/ultrastructure , Structure-Activity Relationship
9.
Mol Cell ; 82(13): 2505-2518.e7, 2022 07 07.
Article in English | MEDLINE | ID: mdl-35688157

ABSTRACT

In mammalian cells, spurious transcription results in a vast repertoire of unproductive non-coding RNAs, whose deleterious accumulation is prevented by rapid decay. The nuclear exosome targeting (NEXT) complex plays a central role in directing non-functional transcripts to exosome-mediated degradation, but the structural and molecular mechanisms remain enigmatic. Here, we elucidated the architecture of the human NEXT complex, showing that it exists as a dimer of MTR4-ZCCHC8-RBM7 heterotrimers. Dimerization preconfigures the major MTR4-binding region of ZCCHC8 and arranges the two MTR4 helicases opposite to each other, with each protomer able to function on many types of RNAs. In the inactive state of the complex, the 3' end of an RNA substrate is enclosed in the MTR4 helicase channel by a ZCCHC8 C-terminal gatekeeping domain. The architecture of a NEXT-exosome assembly points to the molecular and regulatory mechanisms with which the NEXT complex guides RNA substrates to the exosome.


Subject(s)
Exosomes , RNA , Cell Nucleus/genetics , Cell Nucleus/metabolism , DEAD-box RNA Helicases/metabolism , DNA Helicases/metabolism , Exosome Multienzyme Ribonuclease Complex/metabolism , Exosomes/genetics , Exosomes/metabolism , Humans , Protein Binding , RNA/genetics , RNA/metabolism , RNA Helicases/metabolism , RNA Stability/genetics
10.
Mol Cell ; 82(12): 2236-2251, 2022 06 16.
Article in English | MEDLINE | ID: mdl-35714585

ABSTRACT

Information in mRNA has largely been thought to be confined to its nucleotide sequence. However, the advent of mapping techniques to detect modified nucleotides has revealed that mRNA contains additional information in the form of chemical modifications. The most abundant modified nucleotide is N6-methyladenosine (m6A), a methyl modification of adenosine. Although early studies viewed m6A as a dynamic and tissue-specific modification, it is now clear that the mRNAs that contain m6A and the location of m6A in those transcripts are largely universal and are influenced by gene architecture, i.e., the size and location of exons and introns. m6A can affect nuclear processes such as splicing and epigenetic regulation, but the major effect of m6A on mRNAs is to promote degradation in the cytoplasm. m6A marks a functionally related cohort of mRNAs linked to certain biological processes, including cell differentiation and cell fate determination. m6A is also enriched in other cohorts of mRNAs and can therefore affect their respective cellular processes and pathways. Future work will focus on understanding how the m6A pathway is regulated to achieve control of m6A-containing mRNAs.


Subject(s)
Adenosine , Epigenesis, Genetic , Adenosine/genetics , Adenosine/metabolism , Gene Expression , Humans , Methyltransferases/genetics , Methyltransferases/metabolism , Nucleotides , RNA, Messenger/genetics , RNA, Messenger/metabolism
11.
Mol Cell ; 77(6): 1222-1236.e13, 2020 03 19.
Article in English | MEDLINE | ID: mdl-32048998

ABSTRACT

RNA decay is crucial for mRNA turnover and surveillance and misregulated in many diseases. This complex system is challenging to study, particularly in mammals, where it remains unclear whether decay pathways perform specialized versus redundant roles. Cytoplasmic pathways and links to translation are particularly enigmatic. By directly profiling decay factor targets and normal versus aberrant translation in mouse embryonic stem cells (mESCs), we uncovered extensive decay pathway specialization and crosstalk with translation. XRN1 (5'-3') mediates cytoplasmic bulk mRNA turnover whereas SKIV2L (3'-5') is universally recruited by ribosomes, tackling aberrant translation and sometimes modulating mRNA abundance. Further exploring translation surveillance revealed AVEN and FOCAD as SKIV2L interactors. AVEN prevents ribosome stalls at structured regions, which otherwise require SKIV2L for clearance. This pathway is crucial for histone translation, upstream open reading frame (uORF) regulation, and counteracting ribosome arrest on small ORFs. In summary, we uncovered key targets, components, and functions of mammalian RNA decay pathways and extensive coupling to translation.


Subject(s)
Apoptosis Regulatory Proteins/physiology , DNA-Binding Proteins/physiology , Exoribonucleases/physiology , Mouse Embryonic Stem Cells/metabolism , Protein Biosynthesis , RNA Helicases/physiology , RNA Stability , RNA, Messenger/metabolism , Animals , CRISPR-Cas Systems , Gene Expression Regulation , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Mouse Embryonic Stem Cells/cytology , Open Reading Frames , Proto-Oncogene Proteins/physiology , RNA, Messenger/chemistry , RNA, Messenger/genetics , Ribosomes/genetics , Ribosomes/metabolism
12.
Mol Cell ; 73(6): 1204-1216.e4, 2019 03 21.
Article in English | MEDLINE | ID: mdl-30770239

ABSTRACT

PARN loss-of-function mutations cause a severe form of the hereditary disease dyskeratosis congenita (DC). PARN deficiency affects the stability of non-coding RNAs such as human telomerase RNA (hTR), but these effects do not explain the severe disease in patients. We demonstrate that PARN deficiency affects the levels of numerous miRNAs in human cells. PARN regulates miRNA levels by stabilizing either mature or precursor miRNAs by removing oligo(A) tails added by the poly(A) polymerase PAPD5, which if remaining recruit the exonuclease DIS3L or DIS3L2 to degrade the miRNA. PARN knockdown destabilizes multiple miRNAs that repress p53 translation, which leads to an increase in p53 accumulation in a Dicer-dependent manner, thus explaining why PARN-defective patients show p53 accumulation. This work also reveals that DIS3L and DIS3L2 are critical 3' to 5' exonucleases that regulate miRNA stability, with the addition and removal of 3' end extensions controlling miRNA levels in the cell.


Subject(s)
Exoribonucleases/metabolism , MicroRNAs/metabolism , RNA Stability , Tumor Suppressor Protein p53/metabolism , Uterine Cervical Neoplasms/enzymology , 3' Untranslated Regions , Antineoplastic Agents/pharmacology , Cell Survival , DEAD-box RNA Helicases/genetics , DEAD-box RNA Helicases/metabolism , Doxorubicin/pharmacology , Etoposide/pharmacology , Exoribonucleases/genetics , Female , Gene Expression Regulation, Neoplastic , HCT116 Cells , HeLa Cells , Humans , MicroRNAs/genetics , Polyadenylation , RNA Nucleotidyltransferases/genetics , RNA Nucleotidyltransferases/metabolism , Ribonuclease III/genetics , Ribonuclease III/metabolism , Ribonucleases/genetics , Ribonucleases/metabolism , Signal Transduction , Tumor Suppressor Protein p53/genetics , Uterine Cervical Neoplasms/drug therapy , Uterine Cervical Neoplasms/genetics , Uterine Cervical Neoplasms/pathology
13.
Mol Cell ; 75(5): 957-966.e8, 2019 09 05.
Article in English | MEDLINE | ID: mdl-31178354

ABSTRACT

Present in all realms of life, dinucleoside tetraphosphates (Np4Ns) are generally considered signaling molecules. However, only a single pathway for Np4N signaling has been delineated in eukaryotes, and no receptor that mediates the influence of Np4Ns has ever been identified in bacteria. Here we show that, under disulfide stress conditions that elevate cellular Np4N concentrations, diverse Escherichia coli mRNAs and sRNAs acquire a cognate Np4 cap. Purified E. coli RNA polymerase and lysyl-tRNA synthetase are both capable of adding such 5' caps. Cap removal by either of two pyrophosphatases, ApaH or RppH, triggers rapid RNA degradation in E. coli. ApaH, the predominant decapping enzyme, functions as both a sensor and an effector of disulfide stress, which inactivates it. These findings suggest that the physiological changes attributed to elevated Np4N concentrations in bacteria may result from widespread Np4 capping, leading to altered RNA stability and consequent changes in gene expression.


Subject(s)
Acid Anhydride Hydrolases/metabolism , Dinucleoside Phosphates/metabolism , Escherichia coli K12/metabolism , Escherichia coli Proteins/metabolism , RNA Stability , RNA, Bacterial/metabolism , Acid Anhydride Hydrolases/genetics , Dinucleoside Phosphates/genetics , Escherichia coli K12/genetics , Escherichia coli Proteins/genetics , RNA, Bacterial/genetics
14.
Mol Cell ; 71(6): 1027-1039.e14, 2018 09 20.
Article in English | MEDLINE | ID: mdl-30197298

ABSTRACT

Ribonucleoprotein (RNP) granules play an important role in organizing eukaryotic mRNA metabolism via liquid-liquid phase separation (LLPS) of mRNA decay factors into membrane-less organelles in the cytoplasm. Here we show that the bacterium Caulobacter crescentus Ribonuclease (RNase) E assembles RNP LLPS condensates that we term bacterial RNP-bodies (BR-bodies), similar to eukaryotic P-bodies and stress granules. RNase E requires RNA to assemble a BR-body, and disassembly requires RNA cleavage, suggesting BR-bodies provide localized sites of RNA degradation. The unstructured C-terminal domain of RNase E is both necessary and sufficient to assemble the core of the BR-body, is functionally conserved in related α-proteobacteria, and influences mRNA degradation. BR-bodies are rapidly induced under cellular stresses and provide enhanced cell growth under stress. To our knowledge, Caulobacter RNase E is the first bacterial protein identified that forms LLPS condensates, providing an effective strategy for subcellular organization in cells lacking membrane-bound compartments.


Subject(s)
Caulobacter crescentus/metabolism , Cytoplasmic Granules/physiology , Ribonucleoproteins/metabolism , Alphaproteobacteria/metabolism , Caulobacter crescentus/genetics , Cytoplasmic Granules/metabolism , Endoribonucleases/metabolism , Liquid-Liquid Extraction , Multienzyme Complexes/metabolism , Polyribonucleotide Nucleotidyltransferase/metabolism , RNA Helicases/metabolism , RNA Stability
15.
Mol Cell ; 72(2): 275-285.e4, 2018 10 18.
Article in English | MEDLINE | ID: mdl-30270108

ABSTRACT

The endoribonuclease RNase E is a principal factor in RNA turnover and processing that helps to exercise fine control of gene expression in bacteria. While its catalytic activity can be strongly influenced by the chemical identity of the 5' end of RNA substrates, the enzyme can also cleave numerous substrates irrespective of the chemistry of their 5' ends through a mechanism that has remained largely unexplained. We report structural and functional data illuminating details of both operational modes. Our crystal structure of RNase E in complex with the sRNA RprA reveals a duplex recognition site that saddles an inter-protomer surface to help present substrates for cleavage. Our data also reveal an autoinhibitory pocket that modulates the overall activity of the ribonuclease. Taking these findings together, we propose how RNase E uses versatile modes of RNA recognition to achieve optimal activity and specificity.


Subject(s)
Endoribonucleases/genetics , Substrate Specificity/genetics , Amino Acid Sequence , Catalysis , Escherichia coli/genetics , Escherichia coli Proteins/genetics , Gene Expression Regulation, Bacterial/genetics , Protein Subunits/genetics , RNA/genetics , RNA, Bacterial/genetics , Sequence Alignment
16.
Crit Rev Biochem Mol Biol ; 58(2-6): 118-131, 2023 Dec.
Article in English | MEDLINE | ID: mdl-38064689

ABSTRACT

2',3'-cyclic nucleotide monophosphates (2',3'-cNMPs) have been discovered within both prokaryotes and eukaryotes in the past decade and a half, raising questions about their conserved existence in cells. In plants and mammals, wounding has been found to cause increased levels of 2',3'-cNMPs. Roles for 2',3'-cNMPs in plant immunity suggest that their regulation may be valuable for both plant hosts and microbial pathogens. In support of this hypothesis, a plethora of microbial enzymes have been found with activities related to these molecules. Studies in bacteria suggest that 2',3'-cNMPs are also produced in response to cellular stress and modulate expression of numerous genes. 2',3'-cNMP levels affect bacterial phenotypes, including biofilm formation, motility, and growth. Within E. coli and Salmonella enterica, 2',3'-cNMPs are produced by RNA degradation by RNase I, highlighting potential roles for Type 2 RNases producing 2',3'-cNMPs in a range of organisms. Development of cellular tools to modulate 2',3'-cNMP levels in bacteria has allowed for interrogation of the effects of 2',3'-cNMP concentration on bacterial transcriptomes and physiology. Pull-downs of cellular 2',3'-cNMP binding proteins have identified the ribosome and in vitro studies demonstrated that 2',3'-cNMPs decrease translation, suggesting a direct mechanism for 2',3-cNMP-dependent control of bacterial phenotypes. Future studies dissecting the cellular roles of 2',3'-cNMPs will highlight novel signaling pathways within prokaryotes and which can potentially be engineered to control bacterial physiology.


Subject(s)
Escherichia coli , Nucleotides, Cyclic , Animals , Nucleotides, Cyclic/metabolism , Escherichia coli/metabolism , Signal Transduction , Plants/metabolism , Mammals/metabolism
17.
J Biol Chem ; 300(8): 107600, 2024 Jul 25.
Article in English | MEDLINE | ID: mdl-39059490

ABSTRACT

RNase R (encoded by the rnr gene) is a highly processive 3' → 5' exoribonuclease essential for the growth of the psychrotrophic bacterium Pseudomonas syringae Lz4W at low temperature. The cell death of a rnr deletion mutant at low temperature has been previously attributed to processing defects in 16S rRNA, defective ribosomal assembly, and inefficient protein synthesis. We recently showed that RNase R is required to protect P. syringae Lz4W from DNA damage and oxidative stress, independent of its exoribonuclease activity. Here, we show that the processing defect in 16S rRNA does not cause cell death of the rnr mutant of P. syringae at low temperature. Our results demonstrate that the rnr mutant of P. syringae Lz4W, complemented with a RNase R deficient in exoribonuclease function (RNase RD284A), is defective in 16S rRNA processing but can grow at 4 °C. This suggested that the processing defect in ribosomal RNAs is not a cause of the cold sensitivity of the rnr mutant. We further show that the rnr mutant accumulates copies of the indigenous plasmid pLz4W that bears a type II toxin-antitoxin (TA) system (P. syringae antitoxin-P. syringae toxin). This phenotype was rescued by overexpressing antitoxin psA in the rnr mutant, suggesting that activation of the type II TA system leads to cold sensitivity of the rnr mutant of P. syringae Lz4W. Here, we report a previously unknown functional relationship between the cold sensitivity of the rnr mutant and a type II TA system in P. syringae Lz4W.

18.
J Biol Chem ; 300(2): 105646, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38219817

ABSTRACT

The RNA exosome is a ribonuclease complex that mediates both RNA processing and degradation. This complex is evolutionarily conserved, ubiquitously expressed, and required for fundamental cellular functions, including rRNA processing. The RNA exosome plays roles in regulating gene expression and protecting the genome, including modulating the accumulation of RNA-DNA hybrids (R-loops). The function of the RNA exosome is facilitated by cofactors, such as the RNA helicase MTR4, which binds/remodels RNAs. Recently, missense mutations in RNA exosome subunit genes have been linked to neurological diseases. One possibility to explain why missense mutations in genes encoding RNA exosome subunits lead to neurological diseases is that the complex may interact with cell- or tissue-specific cofactors that are impacted by these changes. To begin addressing this question, we performed immunoprecipitation of the RNA exosome subunit, EXOSC3, in a neuronal cell line (N2A), followed by proteomic analyses to identify novel interactors. We identified the putative RNA helicase, DDX1, as an interactor. DDX1 plays roles in double-strand break repair, rRNA processing, and R-loop modulation. To explore the functional connections between EXOSC3 and DDX1, we examined the interaction following double-strand breaks and analyzed changes in R-loops in N2A cells depleted for EXOSC3 or DDX1 by DNA/RNA immunoprecipitation followed by sequencing. We find that EXOSC3 interaction with DDX1 is decreased in the presence of DNA damage and that loss of EXOSC3 or DDX1 alters R-loops. These results suggest EXOSC3 and DDX1 interact during events of cellular homeostasis and potentially suppress unscrupulous expression of genes promoting neuronal projection.


Subject(s)
Exosomes , RNA , DEAD-box RNA Helicases/genetics , DEAD-box RNA Helicases/metabolism , DNA/metabolism , Exosome Multienzyme Ribonuclease Complex/genetics , Exosome Multienzyme Ribonuclease Complex/metabolism , Exosomes/genetics , Exosomes/metabolism , Proteomics , R-Loop Structures , RNA/metabolism , RNA Helicases/metabolism , RNA, Nuclear/metabolism , Cell Line , Animals , Mice
19.
Mol Microbiol ; 121(1): 40-52, 2024 01.
Article in English | MEDLINE | ID: mdl-37994189

ABSTRACT

Here, we employ coelution experiments and far-western blotting to identify stable interactions between the main components of the B. subtilis degradosome and the small proteins SR1P and SR7P. Our data indicate that B. subtilis has a degradosome comprising at least RNases Y and PnpA, enolase, phosphofructokinase, glycerol-3-phosphate dehydrogenase GapA, and helicase CshA that can be co-purified without cross-linking. All interactions were corroborated by far-western blotting with proteins purified from E. coli. Previously, we discovered that stress-induced SR7P binds enolase to enhance its interaction with and activity of enolase-bound RNase Y (RnY), while SR1P transcribed under gluconeogenic conditions interacts with GapA to stimulate its interaction with and the activity of RnjA (RnjA). We show that SR1P can directly bind RnjA, RnY, and PnpA independently of GapA, whereas SR7P only interacts with enolase. Northern blotting suggests that the degradation of individual RNAs in B. subtilis under gluconeogenic or stress conditions depends on either RnjA or RnY alone or on RnjA-SR1P, RnY-SR1P, or RnY-Eno. In vitro degradation assays with RnY or RnjA substrates corroborate the in vivo role of SR1P. Currently, it is unknown which substrate property is decisive for the utilization of one of the complexes.


Subject(s)
Bacillus subtilis , Escherichia coli , Multienzyme Complexes , Bacillus subtilis/genetics , Bacillus subtilis/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , Endoribonucleases/metabolism , RNA Helicases/metabolism , Polyribonucleotide Nucleotidyltransferase/metabolism , Phosphopyruvate Hydratase/genetics , Phosphopyruvate Hydratase/metabolism
20.
RNA ; 29(10): 1481-1499, 2023 10.
Article in English | MEDLINE | ID: mdl-37369528

ABSTRACT

Noncoding 6S RNAs regulate transcription by binding to the active site of bacterial RNA polymerase holoenzymes. Processing and decay of 6S-1 and 6S-2 RNA were investigated in Bacillus subtilis by northern blot and RNA-seq analyses using different RNase knockout strains, as well as by in vitro processing assays. For both 6S RNA paralogs, we identified a key-but mechanistically different-role of RNase J1. RNase J1 catalyzes 5'-end maturation of 6S-1 RNA, yet relatively inefficient and possibly via the enzyme's "sliding endonuclease" activity. 5'-end maturation has no detectable effect on 6S-1 RNA function, but rather regulates its decay: The generated 5'-monophosphate on matured 6S-1 RNA propels endonucleolytic cleavage in its apical loop region. The major 6S-2 RNA degradation pathway is initiated by endonucleolytic cleavage in the 5'-central bubble to trigger 5'-to-3'-exoribonucleolytic degradation of the downstream fragment by RNase J1. The four 3'-exonucleases of B. subtilis-RNase R, PNPase, YhaM, and particularly RNase PH-are involved in 3'-end trimming of both 6S RNAs, degradation of 6S-1 RNA fragments, and decay of abortive transcripts (so-called product RNAs, ∼14 nt in length) synthesized on 6S-1 RNA during outgrowth from stationary phase. In the case of the growth-retarded RNase Y deletion strain, we were unable to infer a specific role of RNase Y in 6S RNA decay. Yet, a participation of RNase Y in 6S RNA decay still remains possible, as evidence for such a function may have been obscured by overlapping substrate specificities of RNase Y, RNase J1, and RNase J2.


Subject(s)
Bacillus subtilis , RNA, Bacterial , RNA, Bacterial/metabolism , Endoribonucleases/genetics , Endoribonucleases/metabolism , RNA, Untranslated/metabolism , Ribonuclease, Pancreatic/metabolism , RNA Stability/genetics
SELECTION OF CITATIONS
SEARCH DETAIL