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1.
Nat Commun ; 15(1): 3296, 2024 Apr 17.
Article in English | MEDLINE | ID: mdl-38632236

ABSTRACT

DEAD-box ATPases play crucial roles in guiding rRNA restructuring events during the biogenesis of large (60S) ribosomal subunits, but their precise molecular functions are currently unknown. In this study, we present cryo-EM reconstructions of nucleolar pre-60S intermediates that reveal an unexpected, alternate secondary structure within the nascent peptidyl-transferase-center (PTC). Our analysis of three sequential nucleolar pre-60S intermediates reveals that the DEAD-box ATPase Dbp10/DDX54 remodels this alternate base pairing and enables the formation of the rRNA junction that anchors the mature form of the universally conserved PTC A-loop. Post-catalysis, Dbp10 captures rRNA helix H61, initiating the concerted exchange of biogenesis factors during late nucleolar 60S maturation. Our findings show that Dbp10 activity is essential for the formation of the ribosome active site and reveal how this function is integrated with subsequent assembly steps to drive the biogenesis of the large ribosomal subunit.


Subject(s)
DEAD-box RNA Helicases , Peptidyl Transferases , Ribosomes , Saccharomyces cerevisiae Proteins , DEAD-box RNA Helicases/genetics , Ribosomal Proteins/genetics , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosomes/genetics , Ribosomes/metabolism , RNA, Ribosomal/genetics , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism
2.
Nature ; 627(8003): 445-452, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38383785

ABSTRACT

Reversible modification of target proteins by ubiquitin and ubiquitin-like proteins (UBLs) is widely used by eukaryotic cells to control protein fate and cell behaviour1. UFM1 is a UBL that predominantly modifies a single lysine residue on a single ribosomal protein, uL24 (also called RPL26), on ribosomes at the cytoplasmic surface of the endoplasmic reticulum (ER)2,3. UFM1 conjugation (UFMylation) facilitates the rescue of 60S ribosomal subunits (60S) that are released after ribosome-associated quality-control-mediated splitting of ribosomes that stall during co-translational translocation of secretory proteins into the ER3,4. Neither the molecular mechanism by which the UFMylation machinery achieves such precise target selection nor how this ribosomal modification promotes 60S rescue is known. Here we show that ribosome UFMylation in vivo occurs on free 60S and we present sequential cryo-electron microscopy snapshots of the heterotrimeric UFM1 E3 ligase (E3(UFM1)) engaging its substrate uL24. E3(UFM1) binds the L1 stalk, empty transfer RNA-binding sites and the peptidyl transferase centre through carboxy-terminal domains of UFL1, which results in uL24 modification more than 150 Å away. After catalysing UFM1 transfer, E3(UFM1) remains stably bound to its product, UFMylated 60S, forming a C-shaped clamp that extends all the way around the 60S from the transfer RNA-binding sites to the polypeptide tunnel exit. Our structural and biochemical analyses suggest a role for E3(UFM1) in post-termination release and recycling of the large ribosomal subunit from the ER membrane.


Subject(s)
Endoplasmic Reticulum , Protein Processing, Post-Translational , Ribosome Subunits, Large, Eukaryotic , Ubiquitin-Protein Ligases , Binding Sites , Biocatalysis , Cryoelectron Microscopy , Endoplasmic Reticulum/metabolism , Endoplasmic Reticulum/ultrastructure , Intracellular Membranes/chemistry , Intracellular Membranes/metabolism , Intracellular Membranes/ultrastructure , Peptidyl Transferases/chemistry , Peptidyl Transferases/metabolism , Peptidyl Transferases/ultrastructure , Protein Binding , Ribosomal Proteins/chemistry , Ribosomal Proteins/metabolism , Ribosomal Proteins/ultrastructure , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Large, Eukaryotic/metabolism , Ribosome Subunits, Large, Eukaryotic/ultrastructure , RNA, Transfer/metabolism , Substrate Specificity , Ubiquitin-Protein Ligases/chemistry , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/ultrastructure
3.
Nature ; 627(8003): 437-444, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38383789

ABSTRACT

Stalled ribosomes at the endoplasmic reticulum (ER) are covalently modified with the ubiquitin-like protein UFM1 on the 60S ribosomal subunit protein RPL26 (also known as uL24)1,2. This modification, which is known as UFMylation, is orchestrated by the UFM1 ribosome E3 ligase (UREL) complex, comprising UFL1, UFBP1 and CDK5RAP3 (ref. 3). However, the catalytic mechanism of UREL and the functional consequences of UFMylation are unclear. Here we present cryo-electron microscopy structures of UREL bound to 60S ribosomes, revealing the basis of its substrate specificity. UREL wraps around the 60S subunit to form a C-shaped clamp architecture that blocks the tRNA-binding sites at one end, and the peptide exit tunnel at the other. A UFL1 loop inserts into and remodels the peptidyl transferase centre. These features of UREL suggest a crucial function for UFMylation in the release and recycling of stalled or terminated ribosomes from the ER membrane. In the absence of functional UREL, 60S-SEC61 translocon complexes accumulate at the ER membrane, demonstrating that UFMylation is necessary for releasing SEC61 from 60S subunits. Notably, this release is facilitated by a functional switch of UREL from a 'writer' to a 'reader' module that recognizes its product-UFMylated 60S ribosomes. Collectively, we identify a fundamental role for UREL in dissociating 60S subunits from the SEC61 translocon and the basis for UFMylation in regulating protein homeostasis at the ER.


Subject(s)
Endoplasmic Reticulum , Protein Processing, Post-Translational , Ribosome Subunits, Large, Eukaryotic , Ubiquitin-Protein Ligases , Adaptor Proteins, Signal Transducing/metabolism , Binding Sites , Cell Cycle Proteins/chemistry , Cell Cycle Proteins/metabolism , Cell Cycle Proteins/ultrastructure , Cryoelectron Microscopy , Endoplasmic Reticulum/metabolism , Endoplasmic Reticulum/ultrastructure , Homeostasis , Intracellular Membranes/metabolism , Peptidyl Transferases/chemistry , Peptidyl Transferases/metabolism , Peptidyl Transferases/ultrastructure , Ribosomal Proteins/chemistry , Ribosomal Proteins/metabolism , Ribosomal Proteins/ultrastructure , RNA, Transfer/metabolism , SEC Translocation Channels/chemistry , SEC Translocation Channels/metabolism , SEC Translocation Channels/ultrastructure , Tumor Suppressor Proteins/chemistry , Tumor Suppressor Proteins/metabolism , Tumor Suppressor Proteins/ultrastructure , Ubiquitin-Protein Ligases/chemistry , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/ultrastructure , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Large, Eukaryotic/metabolism , Ribosome Subunits, Large, Eukaryotic/ultrastructure
4.
J Mol Biol ; 435(24): 168321, 2023 12 15.
Article in English | MEDLINE | ID: mdl-37865285

ABSTRACT

Ribosomal proteins have important roles in maintaining the structure and function of mature ribosomes, but they also drive crucial rearrangement reactions during ribosome biogenesis. The contribution of most, but not all, ribosomal proteins to ribosome synthesis has been previously analyzed in the yeast Saccharomyces cerevisiae. Herein, we characterize the role of yeast eL15 during 60S ribosomal subunit formation. In vivo depletion of eL15 results in a shortage of 60S subunits and the appearance of half-mer polysomes. This is likely due to defective processing of the 27SA3 to the 27SBS pre-rRNA and impaired subsequent processing of both forms of 27SB pre-rRNAs to mature 25S and 5.8S rRNAs. Indeed, eL15 depletion leads to the efficient turnover of the de novo formed 27S pre-rRNAs. Additionally, depletion of eL15 blocks nucleocytoplasmic export of pre-60S particles. Moreover, we have analyzed the impact of depleting either eL15 or eL36 on the composition of early pre-60S particles, thereby revealing that the depletion of eL15 or eL36 not only affects each other's assembly into pre-60S particles but also that of neighboring ribosomal proteins, including eL8. These intermediates also lack most ribosome assembly factors required for 27SA3 and 27SB pre-rRNA processing, named A3- and B-factors, respectively. Importantly, our results recapitulate previous ones obtained upon eL8 depletion. We conclude that assembly of eL15, together with that of eL8 and eL36, is a prerequisite to shape domain I of 5.8S/25S rRNA within early pre-60S particles, through their binding to this rRNA domain and the recruitment of specific groups of assembly factors.


Subject(s)
Ribosome Subunits, Large, Eukaryotic , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Ribosomal Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/genetics , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Large, Eukaryotic/metabolism , RNA Precursors/genetics , RNA Precursors/metabolism , RNA Processing, Post-Transcriptional , RNA, Ribosomal/genetics , RNA, Ribosomal/chemistry , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/metabolism
5.
Science ; 381(6653): eadh3892, 2023 07 07.
Article in English | MEDLINE | ID: mdl-37410842

ABSTRACT

During the early stages of human large ribosomal subunit (60S) biogenesis, an ensemble of assembly factors establishes and fine-tunes the essential RNA functional centers of pre-60S particles by an unknown mechanism. Here, we report a series of cryo-electron microscopy structures of human nucleolar and nuclear pre-60S assembly intermediates at resolutions of 2.5 to 3.2 angstroms. These structures show how protein interaction hubs tether assembly factor complexes to nucleolar particles and how guanosine triphosphatases and adenosine triphosphatase couple irreversible nucleotide hydrolysis steps to the installation of functional centers. Nuclear stages highlight how a conserved RNA-processing complex, the rixosome, couples large-scale RNA conformational changes with pre-ribosomal RNA processing by the RNA degradation machinery. Our ensemble of human pre-60S particles provides a rich foundation with which to elucidate the molecular principles of ribosome formation.


Subject(s)
RNA, Ribosomal , Ribosome Subunits, Large, Eukaryotic , Humans , Cell Nucleus/chemistry , Cell Nucleus/metabolism , Cryoelectron Microscopy , Ribosomal Proteins/chemistry , Ribosomal Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Large, Eukaryotic/metabolism , RNA, Ribosomal/chemistry , RNA, Ribosomal/metabolism , Saccharomyces cerevisiae , Protein Conformation
6.
Methods ; 211: 68-72, 2023 03.
Article in English | MEDLINE | ID: mdl-36781034

ABSTRACT

The Shwachman-Diamond syndrome (SDS) is a rare inherited ribosomopathy that is predominantly caused by mutations in the Shwachman-Bodian-Diamond Syndrome gene (SBDS). SBDS is a ribosomal maturation factor that is essential for the release of eukaryotic translation initiation factor 6 (eIF6) from 60S ribosomal subunits during the late stages of 60S maturation. Release of eIF6 is critical to permit inter-subunit interactions between the 60S and 40S subunits and to form translationally competent 80S monosomes. SBDS has three key domains that are highly flexible and adopt varied conformations in solution. To better understand the domain dynamics of SBDS upon binding to 60S and to assess the effects of SDS-disease specific mutations, we aimed to site-specifically label individual domains of SBDS. Here we detail the generation of a fluorescently labeled SBDS to monitor the dynamics of select domains upon binding to 60S. We describe the incorporation of 4-azido-l-phenylalanine (4AZP), a noncanonical amino acid in human SBDS. Site-specific labeling of SBDS using fluorophore and assessment of 60S binding activity are also described. Such labeling approaches to capture the interactions of individual domains of SBDS with 60S are also applicable to study the dynamics of other multi-domain proteins that interact with the ribosomal subunits.


Subject(s)
Proteins , Ribosome Subunits, Large, Eukaryotic , Humans , Ribosome Subunits, Large, Eukaryotic/chemistry , Shwachman-Diamond Syndrome/metabolism , Proteins/chemistry , Ribosomes/metabolism , Mutation
7.
Nat Commun ; 12(1): 6153, 2021 10 22.
Article in English | MEDLINE | ID: mdl-34686656

ABSTRACT

Synthesis of eukaryotic ribosomes involves the assembly and maturation of precursor particles (pre-ribosomal particles) containing ribosomal RNA (rRNA) precursors, ribosomal proteins (RPs) and a plethora of assembly factors (AFs). Formation of the earliest precursors of the 60S ribosomal subunit (pre-60S r-particle) is among the least understood stages of ribosome biogenesis. It involves the Npa1 complex, a protein module suggested to play a key role in the early structuring of the pre-rRNA. Npa1 displays genetic interactions with the DExD-box protein Dbp7 and interacts physically with the snR190 box C/D snoRNA. We show here that snR190 functions as a snoRNA chaperone, which likely cooperates with the Npa1 complex to initiate compaction of the pre-rRNA in early pre-60S r-particles. We further show that Dbp7 regulates the dynamic base-pairing between snR190 and the pre-rRNA within the earliest pre-60S r-particles, thereby participating in structuring the peptidyl transferase center (PTC) of the large ribosomal subunit.


Subject(s)
DEAD-box RNA Helicases/metabolism , Molecular Chaperones/metabolism , RNA, Small Nucleolar/metabolism , Ribosome Subunits, Large, Eukaryotic/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Base Pairing , DEAD-box RNA Helicases/genetics , Molecular Chaperones/genetics , Mutation , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Organelle Biogenesis , RNA Folding , RNA Precursors/chemistry , RNA Precursors/genetics , RNA Precursors/metabolism , RNA, Ribosomal/chemistry , RNA, Ribosomal/genetics , RNA, Ribosomal/metabolism , RNA, Small Nucleolar/genetics , Ribosome Subunits, Large, Eukaryotic/chemistry , Saccharomyces cerevisiae , Saccharomyces cerevisiae Proteins/genetics
8.
Nat Commun ; 12(1): 6152, 2021 10 22.
Article in English | MEDLINE | ID: mdl-34686661

ABSTRACT

Early pre-60S ribosomal particles are poorly characterized, highly dynamic complexes that undergo extensive rRNA folding and compaction concomitant with assembly of ribosomal proteins and exchange of assembly factors. Pre-60S particles contain numerous RNA helicases, which are likely regulators of accurate and efficient formation of appropriate rRNA structures. Here we reveal binding of the RNA helicase Dbp7 to domain V/VI of early pre-60S particles in yeast and show that in the absence of this protein, dissociation of the Npa1 scaffolding complex, release of the snR190 folding chaperone, recruitment of the A3 cluster factors and binding of the ribosomal protein uL3 are impaired. uL3 is critical for formation of the peptidyltransferase center (PTC) and is responsible for stabilizing interactions between the 5' and 3' ends of the 25S, an essential pre-requisite for subsequent pre-60S maturation events. Highlighting the importance of pre-ribosome remodeling by Dbp7, our data suggest that in the absence of Dbp7 or its catalytic activity, early pre-ribosomal particles are targeted for degradation.


Subject(s)
DEAD-box RNA Helicases/metabolism , RNA, Ribosomal/chemistry , Ribosome Subunits, Large, Eukaryotic/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Adenosine Triphosphatases/genetics , Adenosine Triphosphatases/metabolism , DEAD-box RNA Helicases/genetics , Molecular Chaperones/metabolism , Nuclear Proteins/metabolism , RNA Folding , RNA Precursors/chemistry , RNA Precursors/metabolism , RNA Processing, Post-Transcriptional , RNA, Ribosomal/metabolism , RNA, Small Nucleolar/metabolism , Ribosomal Protein L3/metabolism , Ribosome Subunits, Large, Eukaryotic/chemistry , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/genetics
9.
Nat Commun ; 12(1): 4696, 2021 08 04.
Article in English | MEDLINE | ID: mdl-34349113

ABSTRACT

Productive ribosomal RNA (rRNA) compaction during ribosome assembly necessitates establishing correct tertiary contacts between distant secondary structure elements. Here, we quantify the response of the yeast proteome to low temperature (LT), a condition where aberrant mis-paired RNA folding intermediates accumulate. We show that, at LT, yeast cells globally boost production of their ribosome assembly machinery. We find that the LT-induced assembly factor, Puf6, binds to the nascent catalytic RNA-rich subunit interface within the 60S pre-ribosome, at a site that eventually loads the nuclear export apparatus. Ensemble Förster resonance energy transfer studies show that Puf6 mimics the role of Mg2+ to usher a unique long-range tertiary contact to compact rRNA. At LT, puf6 mutants accumulate 60S pre-ribosomes in the nucleus, thus unveiling Puf6-mediated rRNA compaction as a critical temperature-regulated rescue mechanism that counters rRNA misfolding to prime export competence.


Subject(s)
Cell Nucleus/metabolism , RNA-Binding Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Active Transport, Cell Nucleus , Cold Temperature , GTP Phosphohydrolases/metabolism , Mutation , Protein Binding , Protein Interaction Domains and Motifs , Proteome/metabolism , RNA Folding , RNA Precursors/chemistry , RNA Precursors/metabolism , RNA, Ribosomal/chemistry , RNA, Ribosomal/metabolism , RNA-Binding Proteins/chemistry , RNA-Binding Proteins/genetics , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosomes/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/physiology , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/genetics
10.
Nucleic Acids Res ; 49(13): 7665-7679, 2021 07 21.
Article in English | MEDLINE | ID: mdl-34157102

ABSTRACT

Deciphering translation is of paramount importance for the understanding of many diseases, and antibiotics played a pivotal role in this endeavour. Blasticidin S (BlaS) targets translation by binding to the peptidyl transferase center of the large ribosomal subunit. Using biochemical, structural and cellular approaches, we show here that BlaS inhibits both translation elongation and termination in Mammalia. Bound to mammalian terminating ribosomes, BlaS distorts the 3'CCA tail of the P-site tRNA to a larger extent than previously reported for bacterial ribosomes, thus delaying both, peptide bond formation and peptidyl-tRNA hydrolysis. While BlaS does not inhibit stop codon recognition by the eukaryotic release factor 1 (eRF1), it interferes with eRF1's accommodation into the peptidyl transferase center and subsequent peptide release. In human cells, BlaS inhibits nonsense-mediated mRNA decay and, at subinhibitory concentrations, modulates translation dynamics at premature termination codons leading to enhanced protein production.


Subject(s)
Peptide Chain Elongation, Translational/drug effects , Peptide Chain Termination, Translational/drug effects , Protein Synthesis Inhibitors/pharmacology , Cryoelectron Microscopy , HeLa Cells , Humans , Nonsense Mediated mRNA Decay/drug effects , Nucleosides/chemistry , Nucleosides/pharmacology , Peptide Termination Factors/metabolism , Peptides/metabolism , Protein Synthesis Inhibitors/chemistry , RNA, Messenger/metabolism , RNA, Transfer/chemistry , RNA, Transfer/metabolism , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Large, Eukaryotic/drug effects , Ribosome Subunits, Large, Eukaryotic/metabolism , Ribosomes/metabolism
11.
Nucleic Acids Res ; 49(12): 7053-7074, 2021 07 09.
Article in English | MEDLINE | ID: mdl-34125911

ABSTRACT

Eukaryotic ribosome biogenesis is an elaborate process during which ribosomal proteins assemble with the pre-rRNA while it is being processed and folded. Hundreds of assembly factors (AF) are required and transiently recruited to assist the sequential remodeling events. One of the most intricate ones is the stepwise removal of the internal transcribed spacer 2 (ITS2), between the 5.8S and 25S rRNAs, that constitutes together with five AFs the pre-60S 'foot'. In the transition from nucleolus to nucleoplasm, Nop53 replaces Erb1 at the basis of the foot and recruits the RNA exosome for the ITS2 cleavage and foot disassembly. Here we comprehensively analyze the impact of Nop53 recruitment on the pre-60S compositional changes. We show that depletion of Nop53, different from nop53 mutants lacking the exosome-interacting motif, not only causes retention of the unprocessed foot in late pre-60S intermediates but also affects the transition from nucleolar state E particle to subsequent nuclear stages. Additionally, we reveal that Nop53 depletion causes the impairment of late maturation events such as Yvh1 recruitment. In light of recently described pre-60S cryo-EM structures, our results provide biochemical evidence for the structural role of Nop53 rearranging and stabilizing the foot interface to assist the Nog2 particle formation.


Subject(s)
Nuclear Proteins/physiology , Ribosome Subunits, Large, Eukaryotic/metabolism , Saccharomyces cerevisiae Proteins/physiology , Cell Nucleolus/metabolism , Cell Nucleus/metabolism , Dual-Specificity Phosphatases/metabolism , GTP Phosphohydrolases/metabolism , Mutation , Nuclear Proteins/chemistry , Nuclear Proteins/genetics , Organelle Biogenesis , RNA Processing, Post-Transcriptional , RNA, Ribosomal/metabolism , Ribosomal Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/chemistry , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/growth & development , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism
12.
Methods Mol Biol ; 2263: 341-350, 2021.
Article in English | MEDLINE | ID: mdl-33877606

ABSTRACT

Translation initiation, in both eukaryotes and bacteria, requires essential elements such as mRNA, ribosome , initiator tRNA, and a set of initiation factors. For each domain of life, canonical mechanisms and signals are observed to initiate protein synthesis. However, other initiation mechanism can be used, especially in viral mRNAs. Some viruses hijack cellular machinery to translate some of their mRNAs through a noncanonical initiation pathway using internal ribosome entry site (IRES), a highly structured RNAs which can directly recruit the ribosome with a restricted set of initiation factors, and in some cases even without cap and initiator tRNA. In this chapter, we describe the use of biosensors relying on electro-switchable nanolevers using the switchSENSE® technology, to investigate kinetics of the intergenic (IGR) IRES of the cricket paralysis virus (CrPV) binding to 80S yeast ribosome . This study provides a proof of concept for the application of this method on large complexes.


Subject(s)
Biosensing Techniques/methods , RNA, Viral/metabolism , Ribosome Subunits, Large, Eukaryotic/metabolism , Ribosome Subunits, Small, Eukaryotic/metabolism , Saccharomyces cerevisiae/metabolism , Biophysical Phenomena , Dicistroviridae/physiology , Internal Ribosome Entry Sites , Kinetics , Models, Molecular , Proof of Concept Study , Protein Biosynthesis , RNA, Viral/chemistry , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Small, Eukaryotic/chemistry , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism
13.
Nat Commun ; 11(1): 5111, 2020 10 09.
Article in English | MEDLINE | ID: mdl-33037216

ABSTRACT

The nascent polypeptide exit tunnel (NPET) is a major functional center of 60S ribosomal subunits. However, little is known about how the NPET is constructed during ribosome assembly. We utilized molecular genetics, biochemistry, and cryo-electron microscopy (cryo-EM) to investigate the functions of two NPET-associated proteins, ribosomal protein uL4 and assembly factor Nog1, in NPET assembly. Structures of mutant pre-ribosomes lacking the tunnel domain of uL4 reveal a misassembled NPET, including an aberrantly flexible ribosomal RNA helix 74, resulting in at least three different blocks in 60S assembly. Structures of pre-ribosomes lacking the C-terminal extension of Nog1 demonstrate that this extension scaffolds the tunnel domain of uL4 in the NPET to help maintain stability in the core of pre-60S subunits. Our data reveal that uL4 and Nog1 work together in the maturation of ribosomal RNA helix 74, which is required to ensure proper construction of the NPET and 60S ribosomal subunits.


Subject(s)
GTP-Binding Proteins/metabolism , Nuclear Proteins/metabolism , Ribosomal Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Cell Cycle Proteins/metabolism , Cryoelectron Microscopy , GTP-Binding Proteins/chemistry , GTP-Binding Proteins/genetics , Models, Molecular , Mutation , Nuclear Proteins/chemistry , Nuclear Proteins/genetics , Protein Domains , RNA Stability , RNA, Ribosomal/chemistry , RNA, Ribosomal/metabolism , Ribosomal Proteins/chemistry , Ribosomal Proteins/genetics , Ribosome Subunits, Large, Eukaryotic/chemistry , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/genetics
14.
Science ; 369(6510): 1470-1476, 2020 09 18.
Article in English | MEDLINE | ID: mdl-32943521

ABSTRACT

Production of small ribosomal subunits initially requires the formation of a 90S precursor followed by an enigmatic process of restructuring into the primordial pre-40S subunit. We elucidate this process by biochemical and cryo-electron microscopy analysis of intermediates along this pathway in yeast. First, the remodeling RNA helicase Dhr1 engages the 90S pre-ribosome, followed by Utp24 endonuclease-driven RNA cleavage at site A1, thereby separating the 5'-external transcribed spacer (ETS) from 18S ribosomal RNA. Next, the 5'-ETS and 90S assembly factors become dislodged, but this occurs sequentially, not en bloc. Eventually, the primordial pre-40S emerges, still retaining some 90S factors including Dhr1, now ready to unwind the final small nucleolar U3-18S RNA hybrid. Our data shed light on the elusive 90S to pre-40S transition and clarify the principles of assembly and remodeling of large ribonucleoproteins.


Subject(s)
DEAD-box RNA Helicases/metabolism , Nuclear Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/metabolism , Ribosome Subunits, Small, Eukaryotic/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Cryoelectron Microscopy , DEAD-box RNA Helicases/chemistry , Nuclear Proteins/chemistry , Protein Conformation , RNA Cleavage , RNA, Ribosomal, 18S/chemistry , RNA, Ribosomal, 18S/metabolism , Ribosomal Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Small, Eukaryotic/chemistry , Saccharomyces cerevisiae Proteins/chemistry
15.
Science ; 369(6510): 1477-1481, 2020 09 18.
Article in English | MEDLINE | ID: mdl-32943522

ABSTRACT

The 90S preribosome is a large, early assembly intermediate of small ribosomal subunits that undergoes structural changes to give a pre-40S ribosome. Here, we gained insight into this transition by determining cryo-electron microscopy structures of Saccharomyces cerevisiae intermediates in the path from the 90S to the pre-40S The full transition is blocked by deletion of RNA helicase Dhr1. A series of structural snapshots revealed that the excised 5' external transcribed spacer (5' ETS) is degraded within 90S, driving stepwise disassembly of assembly factors and ribosome maturation. The nuclear exosome, an RNA degradation machine, docks on the 90S through helicase Mtr4 and is primed to digest the 3' end of the 5' ETS. The structures resolved between 3.2- and 8.6-angstrom resolution reveal key intermediates and the critical role of 5' ETS degradation in 90S progression.


Subject(s)
DEAD-box RNA Helicases/chemistry , RNA Stability , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Small, Eukaryotic/chemistry , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae/metabolism , Cryoelectron Microscopy , DEAD-box RNA Helicases/genetics , DEAD-box RNA Helicases/metabolism , Exosomes/metabolism , Gene Deletion , Protein Domains , RNA, Ribosomal, 18S/chemistry , RNA, Ribosomal, 18S/metabolism , Ribosome Subunits, Large, Eukaryotic/metabolism , Ribosome Subunits, Small, Eukaryotic/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism
16.
Mol Cell ; 79(4): 615-628.e5, 2020 08 20.
Article in English | MEDLINE | ID: mdl-32668200

ABSTRACT

Ribosome assembly is driven by numerous assembly factors, including the Rix1 complex and the AAA ATPase Rea1. These two assembly factors catalyze 60S maturation at two distinct states, triggering poorly understood large-scale structural transitions that we analyzed by cryo-electron microscopy. Two nuclear pre-60S intermediates were discovered that represent previously unknown states after Rea1-mediated removal of the Ytm1-Erb1 complex and reveal how the L1 stalk develops from a pre-mature nucleolar to a mature-like nucleoplasmic state. A later pre-60S intermediate shows how the central protuberance arises, assisted by the nearby Rix1-Rea1 machinery, which was solved in its pre-ribosomal context to molecular resolution. This revealed a Rix12-Ipi32 tetramer anchored to the pre-60S via Ipi1, strategically positioned to monitor this decisive remodeling. These results are consistent with a general underlying principle that temporarily stabilized immature RNA domains are successively remodeled by assembly factors, thereby ensuring failsafe assembly progression.


Subject(s)
Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Large, Eukaryotic/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , ATPases Associated with Diverse Cellular Activities/genetics , ATPases Associated with Diverse Cellular Activities/metabolism , Cell Nucleolus/genetics , Cell Nucleolus/metabolism , Cryoelectron Microscopy , Escherichia coli/genetics , Models, Molecular , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/genetics , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/genetics
17.
Nucleic Acids Res ; 48(14): 7924-7943, 2020 08 20.
Article in English | MEDLINE | ID: mdl-32652011

ABSTRACT

Biogenesis of mammalian mitochondrial ribosomes (mitoribosomes) involves several conserved small GTPases. Here, we report that the Obg family protein GTPBP5 or MTG2 is a mitochondrial protein whose absence in a TALEN-induced HEK293T knockout (KO) cell line leads to severely decreased levels of the 55S monosome and attenuated mitochondrial protein synthesis. We show that a fraction of GTPBP5 co-sediments with the large mitoribosome subunit (mtLSU), and crosslinks specifically with the 16S rRNA, and several mtLSU proteins and assembly factors. Notably, the latter group includes MTERF4, involved in monosome assembly, and MRM2, the methyltransferase that catalyzes the modification of the 16S mt-rRNA A-loop U1369 residue. The GTPBP5 interaction with MRM2 was also detected using the proximity-dependent biotinylation (BioID) assay. In GTPBP5-KO mitochondria, the mtLSU lacks bL36m, accumulates an excess of the assembly factors MTG1, GTPBP10, MALSU1 and MTERF4, and contains hypomethylated 16S rRNA. We propose that GTPBP5 primarily fuels proper mtLSU maturation by securing efficient methylation of two 16S rRNA residues, and ultimately serves to coordinate subunit joining through the release of late-stage mtLSU assembly factors. In this way, GTPBP5 provides an ultimate quality control checkpoint function during mtLSU assembly that minimizes premature subunit joining to ensure the assembly of the mature 55S monosome.


Subject(s)
Mitochondrial Proteins/metabolism , Mitochondrial Ribosomes/enzymology , Monomeric GTP-Binding Proteins/metabolism , RNA, Ribosomal, 16S/metabolism , Ribosome Subunits, Large, Eukaryotic/enzymology , Cell Line , GTP Phosphohydrolases/metabolism , HEK293 Cells , Humans , Methylation , Methyltransferases/metabolism , Mitochondria/genetics , Mitochondria/metabolism , Mitochondrial Proteins/physiology , Mitochondrial Ribosomes/metabolism , Monomeric GTP-Binding Proteins/physiology , Oxidative Phosphorylation , Protein Biosynthesis , RNA, Ribosomal, 16S/chemistry , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Large, Eukaryotic/metabolism , Transcription Factors/metabolism
18.
Nucleic Acids Res ; 48(11): 6210-6222, 2020 06 19.
Article in English | MEDLINE | ID: mdl-32365182

ABSTRACT

The ribotoxin α-sarcin belongs to a family of ribonucleases that cleave the sarcin/ricin loop (SRL), a critical functional rRNA element within the large ribosomal subunit (60S), thereby abolishing translation. Whether α-sarcin targets the SRL only in mature 60S subunits remains unresolved. Here, we show that, in yeast, α-sarcin can cleave SRLs within late 60S pre-ribosomes containing mature 25S rRNA but not nucleolar/nuclear 60S pre-ribosomes containing 27S pre-rRNA in vivo. Conditional expression of α-sarcin is lethal, but does not impede early pre-rRNA processing, nuclear export and the cytoplasmic maturation of 60S pre-ribosomes. Thus, SRL-cleaved containing late 60S pre-ribosomes seem to escape cytoplasmic proofreading steps. Polysome analyses revealed that SRL-cleaved 60S ribosomal subunits form 80S initiation complexes, but fail to progress to the step of translation elongation. We suggest that the functional integrity of a α-sarcin cleaved SRL might be assessed only during translation.


Subject(s)
Endoribonucleases/metabolism , Fungal Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Large, Eukaryotic/metabolism , Ricin/metabolism , Saccharomyces cerevisiae/metabolism , Active Transport, Cell Nucleus , Cell Nucleolus/drug effects , Cell Nucleolus/metabolism , Cell Nucleus/drug effects , Cell Nucleus/metabolism , Endoribonucleases/pharmacology , Fungal Proteins/pharmacology , Protein Biosynthesis , RNA, Ribosomal/metabolism , Ricin/chemistry , Saccharomyces cerevisiae/cytology , Saccharomyces cerevisiae/drug effects , Saccharomyces cerevisiae/growth & development
19.
FEBS J ; 287(2): 345-360, 2020 01.
Article in English | MEDLINE | ID: mdl-31306551

ABSTRACT

Ubiquitin is generated by proteolytic cleavage of precursor proteins in which it is fused either to itself, constituting a linear polyubiquitin protein of head-to-tail monomers, or as a single N-terminal moiety to one of two ribosomal proteins, eL40 (Ubi1/2 precursors) and eS31 (Ubi3 precursor). It has been proposed that the ubiquitin moiety fused to these ribosomal proteins could act as a chaperone by facilitating their efficient production, folding and ribosome assembly in Saccharomyces cerevisiae. We have previously shown that ubiquitin release from eS31 is required for yeast viability and that noncleaved Ubi3 can get incorporated into translation-competent 40S subunits. In this study, we have analysed the effects of mutations that partially or totally impair cleavage of the ubiquitin-eL40A fusion protein. While noncleaved Ubi1 is not able to support growth when it is the sole cellular source of eL40, it can assemble into nascent pre-60S particles. However, Ubi1-containing 60S ribosomal subunits are not competent for translation. This is likely due to a steric interference of the unprocessed ubiquitin with the binding and function of factors that interact with the ribosome's GTPase-associated centre. In agreement with this suggestion, Ubi1-containing ribosomes affect the efficient recycling of the anti-association factor Tif6 and have a reduced presence of translation elongation factors. We conclude that the removal of the ubiquitin moiety from ribosomal protein eL40 is an essential prerequisite for both the cytoplasmic maturation and the functionality of 60S ribosomal subunits.


Subject(s)
Protein Precursors/metabolism , Protein Processing, Post-Translational , Ribosomal Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/metabolism , Ubiquitins/metabolism , Protein Domains , Protein Folding , Protein Multimerization , Protein Precursors/chemistry , Ribosomal Proteins/chemistry , Ribosomal Proteins/genetics , Ribosome Subunits, Large, Eukaryotic/chemistry , Saccharomyces cerevisiae , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Ubiquitins/chemistry
20.
Nature ; 570(7762): 538-542, 2019 06.
Article in English | MEDLINE | ID: mdl-31189955

ABSTRACT

Ribosome-associated quality control (RQC) provides a rescue pathway for eukaryotic cells to process faulty proteins after translational stalling of cytoplasmic ribosomes1-6. After dissociation of ribosomes, the stalled tRNA-bound peptide remains associated with the 60S subunit and extended by Rqc2 by addition of C-terminal alanyl and threonyl residues (CAT tails)7-9, whereas Vms1 catalyses cleavage and release of the peptidyl-tRNA before or after addition of CAT tails10-12. In doing so, Vms1 counteracts CAT-tailing of nuclear-encoded mitochondrial proteins that otherwise drive aggregation and compromise mitochondrial and cellular homeostasis13. Here we present structural and functional insights into the interaction of Saccharomyces cerevisiae Vms1 with 60S subunits in pre- and post-peptidyl-tRNA cleavage states. Vms1 binds to 60S subunits with its Vms1-like release factor 1 (VLRF1), zinc finger and ankyrin domains. VLRF1 overlaps with the Rqc2 A-tRNA position and interacts with the ribosomal A-site, projecting its catalytic GSQ motif towards the CCA end of the tRNA, its Y285 residue dislodging the tRNA A73 for nucleolytic cleavage. Moreover, in the pre-state, we found the ABCF-type ATPase Arb1 in the ribosomal E-site, which stabilizes the delocalized A73 of the peptidyl-tRNA and stimulates Vms1-dependent tRNA cleavage. Our structural analysis provides mechanistic insights into the interplay of the RQC factors Vms1, Rqc2 and Arb1 and their role in the protection of mitochondria from the aggregation of toxic proteins.


Subject(s)
ATP-Binding Cassette Transporters/chemistry , ATP-Binding Cassette Transporters/metabolism , Adenosine Triphosphatases/chemistry , Adenosine Triphosphatases/metabolism , Carrier Proteins/chemistry , Carrier Proteins/metabolism , Homeostasis , Mitochondrial Proteins/metabolism , Ribosomes/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , ATP-Binding Cassette Transporters/genetics , ATP-Binding Cassette Transporters/ultrastructure , Adenosine Triphosphatases/genetics , Adenosine Triphosphatases/ultrastructure , Amino Acid Sequence , Carrier Proteins/ultrastructure , Cryoelectron Microscopy , Models, Molecular , Proteome/metabolism , RNA-Binding Proteins/antagonists & inhibitors , RNA-Binding Proteins/metabolism , Ribosome Subunits, Large, Eukaryotic/chemistry , Ribosome Subunits, Large, Eukaryotic/genetics , Ribosome Subunits, Large, Eukaryotic/metabolism , Ribosomes/chemistry , Ribosomes/genetics , Saccharomyces cerevisiae Proteins/antagonists & inhibitors , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/ultrastructure
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