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1.
Mol Cell ; 84(13): 2472-2489.e8, 2024 Jul 11.
Article in English | MEDLINE | ID: mdl-38996458

ABSTRACT

Pseudouridine (Ψ), the isomer of uridine, is ubiquitously found in RNA, including tRNA, rRNA, and mRNA. Human pseudouridine synthase 3 (PUS3) catalyzes pseudouridylation of position 38/39 in tRNAs. However, the molecular mechanisms by which it recognizes its RNA targets and achieves site specificity remain elusive. Here, we determine single-particle cryo-EM structures of PUS3 in its apo form and bound to three tRNAs, showing how the symmetric PUS3 homodimer recognizes tRNAs and positions the target uridine next to its active site. Structure-guided and patient-derived mutations validate our structural findings in complementary biochemical assays. Furthermore, we deleted PUS1 and PUS3 in HEK293 cells and mapped transcriptome-wide Ψ sites by Pseudo-seq. Although PUS1-dependent sites were detectable in tRNA and mRNA, we found no evidence that human PUS3 modifies mRNAs. Our work provides the molecular basis for PUS3-mediated tRNA modification in humans and explains how its tRNA modification activity is linked to intellectual disabilities.


Subject(s)
Cryoelectron Microscopy , Hydro-Lyases , Pseudouridine , RNA, Transfer , Humans , RNA, Transfer/metabolism , RNA, Transfer/genetics , HEK293 Cells , Hydro-Lyases/metabolism , Hydro-Lyases/genetics , Hydro-Lyases/chemistry , Pseudouridine/metabolism , Pseudouridine/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , Catalytic Domain , Protein Binding , Mutation , Models, Molecular , Substrate Specificity , Intellectual Disability/genetics , Intellectual Disability/metabolism , Intellectual Disability/enzymology , Intramolecular Transferases
2.
Nat Commun ; 15(1): 4094, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38750017

ABSTRACT

tRNA modifications affect ribosomal elongation speed and co-translational folding dynamics. The Elongator complex is responsible for introducing 5-carboxymethyl at wobble uridine bases (cm5U34) in eukaryotic tRNAs. However, the structure and function of human Elongator remain poorly understood. In this study, we present a series of cryo-EM structures of human ELP123 in complex with tRNA and cofactors at four different stages of the reaction. The structures at resolutions of up to 2.9 Å together with complementary functional analyses reveal the molecular mechanism of the modification reaction. Our results show that tRNA binding exposes a universally conserved uridine at position 33 (U33), which triggers acetyl-CoA hydrolysis. We identify a series of conserved residues that are crucial for the radical-based acetylation of U34 and profile the molecular effects of patient-derived mutations. Together, we provide the high-resolution view of human Elongator and reveal its detailed mechanism of action.


Subject(s)
Cryoelectron Microscopy , RNA, Transfer , Humans , RNA, Transfer/metabolism , RNA, Transfer/chemistry , RNA, Transfer/genetics , Uridine/chemistry , Uridine/metabolism , Mutation , Acetyl Coenzyme A/metabolism , Acetyl Coenzyme A/chemistry , Models, Molecular , Acetylation , Histone Acetyltransferases/metabolism , Histone Acetyltransferases/chemistry , Histone Acetyltransferases/genetics , Protein Binding
3.
Methods Mol Biol ; 2666: 29-53, 2023.
Article in English | MEDLINE | ID: mdl-37166655

ABSTRACT

The Elongator complex is a unique tRNA acetyltransferase; it was initially annotated as a protein acetyltransferase, but in-depth biochemical analyses revealed its genuine function as a tRNA modifier. The substrate recognition and binding of the Elongator is mainly mediated by its catalytic Elp3 subunit. In this chapter, we describe protocols to generate fluorescently labeled RNAs and outline the principles underlying electrophoretic mobility shift assays (EMSA) and microscale thermophoresis (MST). These two methods allow qualitative and quantitative examinations of the binding affinity of various tRNAs toward the homologs of Elp3 from various organisms. The rather qualitative results from EMSA analyses can be nicely complemented by MST measurements allowing precise determination of the dissociation constant (KD). We also provide detailed notes for users to mitigate potential ambiguities and technical pitfalls during the procedures.


Subject(s)
RNA, Transfer , RNA , Electrophoretic Mobility Shift Assay , Protein Binding , RNA/metabolism , RNA, Transfer/metabolism , Acetyltransferases/metabolism
4.
Nucleic Acids Res ; 51(5): 2011-2032, 2023 03 21.
Article in English | MEDLINE | ID: mdl-36617428

ABSTRACT

Transfer RNA (tRNA) molecules are essential to decode messenger RNA codons during protein synthesis. All known tRNAs are heavily modified at multiple positions through post-transcriptional addition of chemical groups. Modifications in the tRNA anticodons are directly influencing ribosome decoding and dynamics during translation elongation and are crucial for maintaining proteome integrity. In eukaryotes, wobble uridines are modified by Elongator, a large and highly conserved macromolecular complex. Elongator consists of two subcomplexes, namely Elp123 containing the enzymatically active Elp3 subunit and the associated Elp456 hetero-hexamer. The structure of the fully assembled complex and the function of the Elp456 subcomplex have remained elusive. Here, we show the cryo-electron microscopy structure of yeast Elongator at an overall resolution of 4.3 Å. We validate the obtained structure by complementary mutational analyses in vitro and in vivo. In addition, we determined various structures of the murine Elongator complex, including the fully assembled mouse Elongator complex at 5.9 Å resolution. Our results confirm the structural conservation of Elongator and its intermediates among eukaryotes. Furthermore, we complement our analyses with the biochemical characterization of the assembled human Elongator. Our results provide the molecular basis for the assembly of Elongator and its tRNA modification activity in eukaryotes.


The multi-subunit Elongator complex mediates the addition of a carboxymethyl group to wobble uridines in eukaryotic tRNAs. This tRNA modification is crucial to preserve the integrity of cellular proteomes and to protects us against severe neurodegenerative diseases. Elongator is organized in two distinct modules (i) the larger Elp123 subcomplex that binds and modifies the suitable tRNA substrate and (ii) the smaller Elp456 subcomplex that assists the release of the modified tRNA. The presented cryo-EM structures of Elongator show that the assemblies are very dynamic and undergo conformational rearrangements at consecutive steps of the process. Last but not least, the study provides a detailed reaction scheme and shows that the architecture of Elongator is highly conserved from yeast to mammals.


Subject(s)
Multiprotein Complexes , Peptide Chain Elongation, Translational , RNA-Binding Proteins , Saccharomyces cerevisiae , Animals , Humans , Mice , Cryoelectron Microscopy , Histone Acetyltransferases/metabolism , Protein Binding , RNA, Transfer/metabolism , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Multiprotein Complexes/chemistry , Multiprotein Complexes/ultrastructure
5.
Hum Mutat ; 43(12): 2063-2078, 2022 12.
Article in English | MEDLINE | ID: mdl-36125428

ABSTRACT

Pseudouridine (Ψ) is an RNA base modification ubiquitously found in many types of RNAs. In humans, the isomerization of uridine is catalyzed by different stand-alone pseudouridine synthases (PUS). Genomic mutations in the human pseudouridine synthase 3 gene (PUS3) have been identified in patients with neurodevelopmental disorders. However, the underlying molecular mechanisms that cause the disease phenotypes remain elusive. Here, we utilize exome sequencing to identify genomic variants that lead to a homozygous amino acid substitution (p.[(Tyr71Cys)];[(Tyr71Cys)]) in human PUS3 of two affected individuals and a compound heterozygous substitution (p.[(Tyr71Cys)];[(Ile299Thr)]) in a third patient. We obtain wild-type and mutated full-length human recombinant PUS3 proteins and characterize the enzymatic activity in vitro. Unexpectedly, we find that the p.Tyr71Cys substitution neither affect tRNA binding nor pseudouridylation activity in vitro, but strongly impair the thermostability profile of PUS3, while the p.Ile299Thr mutation causes protein aggregation. Concomitantly, we observe that the PUS3 protein levels as well as the level of PUS3-dependent Ψ levels are strongly reduced in fibroblasts derived from all three patients. In summary, our results directly illustrate the link between the identified PUS3 variants and reduced Ψ levels in the patient cells, providing a molecular explanation for the observed clinical phenotypes.


Subject(s)
Hydro-Lyases , Intellectual Disability , Pseudouridine , Humans , Hydro-Lyases/genetics , Hydro-Lyases/metabolism , Intellectual Disability/genetics , Pseudouridine/genetics , Pseudouridine/metabolism , RNA Processing, Post-Transcriptional
6.
EMBO Mol Med ; 14(7): e15608, 2022 07 07.
Article in English | MEDLINE | ID: mdl-35698786

ABSTRACT

The highly conserved Elongator complex is a translational regulator that plays a critical role in neurodevelopment, neurological diseases, and brain tumors. Numerous clinically relevant variants have been reported in the catalytic Elp123 subcomplex, while no missense mutations in the accessory subcomplex Elp456 have been described. Here, we identify ELP4 and ELP6 variants in patients with developmental delay, epilepsy, intellectual disability, and motor dysfunction. We determine the structures of human and murine Elp456 subcomplexes and locate the mutated residues. We show that patient-derived mutations in Elp456 affect the tRNA modification activity of Elongator in vitro as well as in human and murine cells. Modeling the pathogenic variants in mice recapitulates the clinical features of the patients and reveals neuropathology that differs from the one caused by previously characterized Elp123 mutations. Our study demonstrates a direct correlation between Elp4 and Elp6 mutations, reduced Elongator activity, and neurological defects. Foremost, our data indicate previously unrecognized differences of the Elp123 and Elp456 subcomplexes for individual tRNA species, in different cell types and in different key steps during the neurodevelopment of higher organisms.


Subject(s)
RNA, Transfer , Saccharomyces cerevisiae Proteins , Animals , Mice , Protein Subunits/chemistry , Protein Subunits/genetics , Protein Subunits/metabolism , RNA, Transfer/chemistry , RNA, Transfer/genetics , RNA, Transfer/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism
7.
Nat Commun ; 12(1): 2678, 2021 05 11.
Article in English | MEDLINE | ID: mdl-33976153

ABSTRACT

Intellectual disability (ID) and autism spectrum disorder (ASD) are the most common neurodevelopmental disorders and are characterized by substantial impairment in intellectual and adaptive functioning, with their genetic and molecular basis remaining largely unknown. Here, we identify biallelic variants in the gene encoding one of the Elongator complex subunits, ELP2, in patients with ID and ASD. Modelling the variants in mice recapitulates the patient features, with brain imaging and tractography analysis revealing microcephaly, loss of white matter tract integrity and an aberrant functional connectome. We show that the Elp2 mutations negatively impact the activity of the complex and its function in translation via tRNA modification. Further, we elucidate that the mutations perturb protein homeostasis leading to impaired neurogenesis, myelin loss and neurodegeneration. Collectively, our data demonstrate an unexpected role for tRNA modification in the pathogenesis of monogenic ID and ASD and define Elp2 as a key regulator of brain development.


Subject(s)
Autism Spectrum Disorder/genetics , Intellectual Disability/genetics , Intracellular Signaling Peptides and Proteins/genetics , Mutation , Neurodevelopmental Disorders/genetics , Transcriptome/genetics , Animals , Autism Spectrum Disorder/metabolism , Autism Spectrum Disorder/physiopathology , Disease Models, Animal , Epigenesis, Genetic , Grooming/physiology , Humans , Intellectual Disability/metabolism , Intellectual Disability/physiopathology , Intracellular Signaling Peptides and Proteins/metabolism , Mice, Inbred C57BL , Mice, Inbred DBA , Mice, Knockout , Neurodevelopmental Disorders/metabolism , Neurodevelopmental Disorders/physiopathology , Phenotype , Sf9 Cells , Spodoptera
8.
Biochim Biophys Acta Mol Cell Res ; 1868(4): 118945, 2021 04.
Article in English | MEDLINE | ID: mdl-33417976

ABSTRACT

Kti12 and PSTK are closely related and highly similar proteins implicated in different aspects of tRNA metabolism. Kti12 has been identified as an essential regulatory factor of the Elongator complex, involved in the modification of uridine bases in eukaryotic tRNAs. PSTK phosphorylates the tRNASec-bound amino acid serine, which is required to synthesize selenocysteine. Kti12 and PSTK have previously been studied independently in various organisms, but only appear simultaneously in some animalia, including humans. As Kti12- and PSTK-related pathways are clinically relevant, it is of prime importance to understand their biological functions and mutual relationship in humans. Here, we use different tRNA substrates to directly compare the enzymatic activities of purified human KTI12 and human PSTK proteins. Our complementary Co-IP and BioID2 approaches in human cells confirm that Elongator is the main interaction partner of KTI12 but additionally indicate potential links to proteins involved in vesicular transport, RNA metabolism and deubiquitination. Moreover, we identify and validate a yet uncharacterized interaction between PSTK and γ-taxilin. Foremost, we demonstrate that human KTI12 and PSTK do not share interactors or influence their respective biological functions. Our data provide a comprehensive analysis of the regulatory networks controlling the activity of the human Elongator complex and selenocysteine biosynthesis.


Subject(s)
Adaptor Proteins, Signal Transducing/chemistry , Adaptor Proteins, Signal Transducing/metabolism , Phosphotransferases (Alcohol Group Acceptor)/chemistry , Phosphotransferases (Alcohol Group Acceptor)/metabolism , HEK293 Cells , Histone Acetyltransferases/metabolism , Humans , Immunoprecipitation , Models, Molecular , Protein Conformation , RNA, Transfer/metabolism , Selenocysteine/biosynthesis , Substrate Specificity , Ubiquitination
9.
Curr Genet ; 66(4): 823-833, 2020 Aug.
Article in English | MEDLINE | ID: mdl-32236652

ABSTRACT

Kti12 (Kluyveromyces lactis toxin insensitive 12) is an evolutionary highly conserved ATPase, crucial for the tRNA-modification activity of the eukaryotic Elongator complex. The protein consists of an N-terminal ATPase and a C-terminal tRNA-binding domain, which are connected by a flexible linker. The precise role of the linker region and its involvement in the communication between the two domains and their activities remain elusive. Here, we analyzed all available Kti12 protein sequences and report the discovery of a subset of Kti12 proteins with abnormally long linker regions. These Kti12 proteins are characterized by a co-occurring lysine to leucine substitution in their Walker A motif, previously thought to be invariable. We show that the K14L substitution lowers the affinity to ATP, but does not affect the catalytic activity of Kti12 at high ATP concentrations. We compare the activity of mutated variants of Kti12 in vitro with complementation assays in vivo in yeast. Ultimately, we compared Kti12 to other known p-loop ATPase family members known to carry a similar deviant Walker A motif. Our data establish Kti12 of Eurotiomycetes as an example of eukaryotic ATPase harboring a significantly deviating but still functional Walker A motif.


Subject(s)
Fungal Proteins/chemistry , Fungal Proteins/metabolism , Saccharomyces cerevisiae/metabolism , AAA Domain , Adaptor Proteins, Signal Transducing/chemistry , Adaptor Proteins, Signal Transducing/genetics , Adaptor Proteins, Signal Transducing/metabolism , Amino Acid Substitution , Animals , Catalytic Domain , Evolution, Molecular , Fungal Proteins/genetics , Killer Factors, Yeast/pharmacology , Kluyveromyces/metabolism , Lysine/chemistry , Machine Learning , Models, Molecular , Mutation , Protein Conformation , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism
10.
Nat Commun ; 10(1): 625, 2019 02 07.
Article in English | MEDLINE | ID: mdl-30733442

ABSTRACT

The Elongator complex catalyzes posttranscriptional tRNA modifications by attaching carboxy-methyl (cm5) moieties to uridine bases located in the wobble position. The catalytic subunit Elp3 is highly conserved and harbors two individual subdomains, a radical S-adenosyl methionine (rSAM) and a lysine acetyltransferase (KAT) domain. The details of its modification reaction cycle and particularly the substrate specificity of its KAT domain remain elusive. Here, we present the co-crystal structure of bacterial Elp3 (DmcElp3) bound to an acetyl-CoA analog and compare it to the structure of a monomeric archaeal Elp3 from Methanocaldococcus infernus (MinElp3). Furthermore, we identify crucial active site residues, confirm the importance of the extended N-terminus for substrate recognition and uncover the specific induction of acetyl-CoA hydrolysis by different tRNA species. In summary, our results establish the clinically relevant Elongator subunit as a non-canonical acetyltransferase and genuine tRNA modification enzyme.


Subject(s)
Histone Acetyltransferases/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Catalytic Domain , Histone Acetyltransferases/chemistry , Methanocaldococcus/metabolism , RNA, Transfer/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Substrate Specificity
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