Catalogue Search | MBRL
Search Results Heading
Explore the vast range of titles available.
MBRLSearchResults
-
DisciplineDiscipline
-
Is Peer ReviewedIs Peer Reviewed
-
Item TypeItem Type
-
SubjectSubject
-
YearFrom:-To:
-
More FiltersMore FiltersSourceLanguage
Done
Filters
Reset
5,913
result(s) for
"Ribosomes - chemistry"
Sort by:
How to build a ribosome from RNA fragments in Chlamydomonas mitochondria
2021
Mitochondria are the powerhouse of eukaryotic cells. They possess their own gene expression machineries where highly divergent and specialized ribosomes, named hereafter mitoribosomes, translate the few essential messenger RNAs still encoded by mitochondrial genomes. Here, we present a biochemical and structural characterization of the mitoribosome in the model green alga
Chlamydomonas reinhardtii
, as well as a functional study of some of its specific components. Single particle cryo-electron microscopy resolves how the
Chlamydomonas
mitoribosome is assembled from 13 rRNA fragments encoded by separate non-contiguous gene pieces. Additional proteins, mainly OPR, PPR and mTERF helical repeat proteins, are found in
Chlamydomonas
mitoribosome, revealing the structure of an OPR protein in complex with its RNA binding partner. Targeted amiRNA silencing indicates that these ribosomal proteins are required for mitoribosome integrity. Finally, we use cryo-electron tomography to show that
Chlamydomonas
mitoribosomes are attached to the inner mitochondrial membrane via two contact points mediated by
Chlamydomonas
-specific proteins. Our study expands our understanding of mitoribosome diversity and the various strategies these specialized molecular machines adopt for membrane tethering.
Mitoribosomes are remarkably diverse in their structures and compositions. Here the authors combine biochemistry, genetics, single particle cryo-electron microscopy and in situ cryo-electron tomography to reveal the mitochondrial ribosome of
Chlamydomonas reinhardtii
as an extreme example of evolution and species-specific adaptation.
Journal Article
The pathway to GTPase activation of elongation factor SelB on the ribosome
2016
In all domains of life, selenocysteine (Sec) is delivered to the ribosome by selenocysteine-specific tRNA (tRNA
Sec
) with the help of a specialized translation factor, SelB in bacteria. Sec-tRNA
Sec
recodes a UGA stop codon next to a downstream mRNA stem–loop. Here we present the structures of six intermediates on the pathway of UGA recoding in
Escherichia coli
by single-particle cryo-electron microscopy. The structures explain the specificity of Sec-tRNA
Sec
binding by SelB and show large-scale rearrangements of Sec-tRNA
Sec
. Upon initial binding of SelB–Sec-tRNA
Sec
to the ribosome and codon reading, the 30S subunit adopts an open conformation with Sec-tRNA
Sec
covering the sarcin–ricin loop (SRL) on the 50S subunit. Subsequent codon recognition results in a local closure of the decoding site, which moves Sec-tRNA
Sec
away from the SRL and triggers a global closure of the 30S subunit shoulder domain. As a consequence, SelB docks on the SRL, activating the GTPase of SelB. These results reveal how codon recognition triggers GTPase activation in translational GTPases.
The structures of several states on the pathway of SelB-mediated delivery of selenocysteine-specific tRNA to the ribosome in
Escherichia coli
reveal the mechanism of UGA stop codon recoding to selenocysteine and show how codon recognition triggers activation of translational GTPases.
GTPase activation of elongation factor SelB
In some messenger RNAs, the UGA stop codon is recoded using the specialized amino acid selenocysteine (Sec), bound to Sec-specific tRNA (tRNA
Sec
). The recoding process also requires the SelB GTPase. Holger Stark and colleagues have solved multiple structures of the
Escherichia coli
ribosome bound to Sec-tRNA
Sec
and SelB to understand how SelB interacts with the tRNA, and how this complex reorders both the small and large subunits of the ribosome upon binding. The way in which these events at the codon activate the GTPase is revealed.
Journal Article
Structure of the human 80S ribosome
by
Khatter, Heena
,
Klaholz, Bruno P.
,
Natchiar, S. Kundhavai
in
631/337/574/1789
,
631/45/500
,
631/45/612/1249
2015
Ribosomes are translational machineries that catalyse protein synthesis. Ribosome structures from various species are known at the atomic level, but obtaining the structure of the human ribosome has remained a challenge; efforts to address this would be highly relevant with regard to human diseases. Here we report the near-atomic structure of the human ribosome derived from high-resolution single-particle cryo-electron microscopy and atomic model building. The structure has an average resolution of 3.6 Å, reaching 2.9 Å resolution in the most stable regions. It provides unprecedented insights into ribosomal RNA entities and amino acid side chains, notably of the transfer RNA binding sites and specific molecular interactions with the exit site tRNA. It reveals atomic details of the subunit interface, which is seen to remodel strongly upon rotational movements of the ribosomal subunits. Furthermore, the structure paves the way for analysing antibiotic side effects and diseases associated with deregulated protein synthesis.
The structure of the human ribosome at high resolution has been solved; by combining single-particle cryo-EM and atomic model building, local resolution of 2.9 Å was achieved within the most stable areas of the structure.
The human ribosome in detail
This paper presents the near-atomic structure of the human ribosome determined using single-particle cryo-electron microscopy and atomic model building. The structure reaches the high resolution of 2.9 Å in the most stable regions of the complex, allowing the visualization of previously inaccessible elements, such as regions of the ribosomal RNA scaffolding and amino acid side chains. In addition, the significant remodelling of the interface between the large and small subunits is clarified.
Journal Article
Ribosome dynamics and tRNA movement by time-resolved electron cryomicroscopy
by
Rodnina, Marina V.
,
Stark, Holger
,
Fischer, Niels
in
631/337/574/1789
,
631/45/535/1258/1259
,
631/57/2272/2273
2010
The translocation step of protein synthesis entails large-scale rearrangements of the ribosome–transfer RNA (tRNA) complex. Here we have followed tRNA movement through the ribosome during translocation by time-resolved single-particle electron cryomicroscopy (cryo-EM). Unbiased computational sorting of cryo-EM images yielded 50 distinct three-dimensional reconstructions, showing the tRNAs in classical, hybrid and various novel intermediate states that provide trajectories and kinetic information about tRNA movement through the ribosome. The structures indicate how tRNA movement is coupled with global and local conformational changes of the ribosome, in particular of the head and body of the small ribosomal subunit, and show that dynamic interactions between tRNAs and ribosomal residues confine the path of the tRNAs through the ribosome. The temperature dependence of ribosome dynamics reveals a surprisingly flat energy landscape of conformational variations at physiological temperature. The ribosome functions as a Brownian machine that couples spontaneous conformational changes driven by thermal energy to directed movement.
The ribosome in motion
During protein synthesis, transfer RNAs move sequentially through the A, P and E sites of the ribosome as their attached amino acids are transferred to the growing peptide chain. Large conformational movements accompany their translocation. Holger Stark and colleagues have processed a staggering 1.9 million single-particle electron cryomicroscopy images of the ribosome to visualize these dynamic changes. They conclude that the conformational changes are thermally driven (or 'Brownian') and that they cause directed movement of transfer RNAs on a narrow path through the ribosome.
During protein synthesis within the ribosome, transfer RNAs (tRNAs) move sequentially through different sites as their attached amino acids are transferred onto the growing protein chain. Large conformational movements accompany this process. Here, a staggering 1.9 million electron cryomicroscopy images of the ribosome have been processed to visualize these changes. The results reveal that the ribosome functions as a Brownian machine that couples spontaneous changes driven by thermal energy to directed movement.
Journal Article
Crystal Structure of the Eukaryotic Ribosome
by
Yusupova, Gulnara
,
Ben-Shem, Adam
,
Yusupov, Marat
in
Bacteria
,
Biological and medical sciences
,
Crystal structure
2010
Crystal structures of prokaryotic ribosomes have described in detail the universally conserved core of the translation mechanism. However, many facets of the translation process in eukaryotes are not shared with prokaryotes. The crystal structure of the yeast 80S ribosome determined at 4.15 angstrom resolution reveals the higher complexity of eukaryotic ribosomes, which are 40% larger than their bacterial counterparts. Our model shows how eukaryote-specific elements considerably expand the network of interactions within the ribosome and provides insights into eukaryote-specific features of protein synthesis. Our crystals capture the ribosome in the ratcheted state, which is essential for translocation of mRNA and transfer RNA (tRNA), and in which the small ribosomal subunit has rotated with respect to the large subunit. We describe the conformational changes in both ribosomal subunits that are involved in ratcheting and their implications in coordination between the two associated subunits and in mRNA and tRNA translocation.
Journal Article
Structures of the human and Drosophila 80S ribosome
by
Berninghausen, Otto
,
Habeck, Michael
,
Beckmann, Roland
in
631/337/574/1789
,
631/535/1258/1259
,
Animals
2013
Protein synthesis in all cells is carried out by macromolecular machines called ribosomes. Although the structures of prokaryotic, yeast and protist ribosomes have been determined, the more complex molecular architecture of metazoan 80S ribosomes has so far remained elusive. Here we present structures of
Drosophila melanogaster
and
Homo sapiens
80S ribosomes in complex with the translation factor eEF2, E-site transfer RNA and Stm1-like proteins, based on high-resolution cryo-electron-microscopy density maps. These structures not only illustrate the co-evolution of metazoan-specific ribosomal RNA with ribosomal proteins but also reveal the presence of two additional structural layers in metazoan ribosomes, a well-ordered inner layer covered by a flexible RNA outer layer. The human and
Drosophila
ribosome structures will provide the basis for more detailed structural, biochemical and genetic experiments.
High-resolution cryo-EM density maps are used to present the structures of
Drosophila
and human 80S ribosomes in complex with eEF2, E-site transfer RNA and Stm1-like proteins, and reveal the presence of two additional structural layers in the ribosomes of metazoan eukaryotes.
Human and
Drosophila
80S ribosome structures
The structures of several bacterial and yeast ribosomes have been published in the past decade, but we have had to wait for those of the much larger and more complicated metazoan ribosomes. Now Roland Beckmann and colleagues present the cryo-electron-microscopy structures of both
Drosophila
and human 80S ribosomes. The increased complexity appears to result in additional layers of structure. These structures will drive experiments to understand the functional and evolutionary importance of these additions.
Journal Article
Mechanism of mitoribosomal small subunit biogenesis and preinitiation
by
Itoh, Yuzuru
,
Laptev, Ivan
,
Sergiev, Petr
in
14/28
,
631/1647/2258/1258/1259
,
631/337/574/1789
2022
Mitoribosomes are essential for the synthesis and maintenance of bioenergetic proteins. Here we use cryo-electron microscopy to determine a series of the small mitoribosomal subunit (SSU) intermediates in complex with auxiliary factors, revealing a sequential assembly mechanism. The methyltransferase TFB1M binds to partially unfolded rRNA h45 that is promoted by RBFA, while the mRNA channel is blocked. This enables binding of METTL15 that promotes further rRNA maturation and a large conformational change of RBFA. The new conformation allows initiation factor mtIF3 to already occupy the subunit interface during the assembly. Finally, the mitochondria-specific ribosomal protein mS37 (ref.
1
) outcompetes RBFA to complete the assembly with the SSU–mS37–mtIF3 complex
2
that proceeds towards mtIF2 binding and translation initiation. Our results explain how the action of step-specific factors modulate the dynamic assembly of the SSU, and adaptation of a unique protein, mS37, links the assembly to initiation to establish the catalytic human mitoribosome.
Structural analysis of several small mitoribosomal subunit intermediates reveals a sequential mechanism of biogenesis, and how assembly links to initiation to form active mitoribosomes.
Journal Article
Principles of mitoribosomal small subunit assembly in eukaryotes
2023
Mitochondrial ribosomes (mitoribosomes) synthesize proteins encoded within the mitochondrial genome that are assembled into oxidative phosphorylation complexes. Thus, mitoribosome biogenesis is essential for ATP production and cellular metabolism
1
. Here we used cryo-electron microscopy to determine nine structures of native yeast and human mitoribosomal small subunit assembly intermediates, illuminating the mechanistic basis for how GTPases are used to control early steps of decoding centre formation, how initial rRNA folding and processing events are mediated, and how mitoribosomal proteins have active roles during assembly. Furthermore, this series of intermediates from two species with divergent mitoribosomal architecture uncovers both conserved principles and species-specific adaptations that govern the maturation of mitoribosomal small subunits in eukaryotes. By revealing the dynamic interplay between assembly factors, mitoribosomal proteins and rRNA that are required to generate functional subunits, our structural analysis provides a vignette for how molecular complexity and diversity can evolve in large ribonucleoprotein assemblies.
The structures of both human and yeast mitochondrial ribosomal small subunits undergoing assembly are uncovered.
Journal Article
Aminoglycoside interactions and impacts on the eukaryotic ribosome
by
Blanchard, Scott C.
,
Djumagulov, Muminjon
,
Chang, Cheng-Wei Tom
in
Aminoglycoside antibiotics
,
Aminoglycosides
,
Aminoglycosides - chemistry
2017
Aminoglycosides are chemically diverse, broad-spectrum antibiotics that target functional centers within the bacterial ribosome to impact all four principle stages (initiation, elongation, termination, and recycling) of the translation mechanism. The propensity of aminoglycosides to induce miscoding errors that suppress the termination of protein synthesis supports their potential as therapeutic interventions in human diseases associated with premature termination codons (PTCs). However, the sites of interaction of aminoglycosides with the eukaryotic ribosome and their modes of action in eukaryotic translation remain largely unexplored. Here, we use the combination of X-ray crystallography and single-molecule FRET analysis to reveal the interactions of distinct classes of aminoglycosides with the 80S eukaryotic ribosome. Crystal structures of the 80S ribosome in complex with paromomycin, geneticin (G418), gentamicin, and TC007, solved at 3.3- to 3.7-Å resolution, reveal multiple aminoglycoside-binding sites within the large and small subunits, wherein the 6′-hydroxyl substituent in ring I serves as a key determinant of binding to the canonical eukaryotic ribosomal decoding center. Multivalent binding interactions with the human ribosome are also evidenced through their capacity to affect large-scale conformational dynamics within the pretranslocation complex that contribute to multiple aspects of the translation mechanism. The distinct impacts of the aminoglycosides examined suggest that their chemical composition and distinct modes of interaction with the ribosome influence PTC read-through efficiency. These findings provide structural and functional insights into aminoglycoside-induced impacts on the eukaryotic ribosome and implicate pleiotropic mechanisms of action beyond decoding.
Journal Article
Ensemble cryo-EM elucidates the mechanism of translation fidelity
by
Demo, Gabriel
,
Loveland, Anna B.
,
Korostelev, Andrei A.
in
101/28
,
631/337/1645
,
631/337/574/1789
2017
Gene translation depends on accurate decoding of mRNA, the structural mechanism of which remains poorly understood. Ribosomes decode mRNA codons by selecting cognate aminoacyl-tRNAs delivered by elongation factor Tu (EF-Tu). Here we present high-resolution structural ensembles of ribosomes with cognate or near-cognate aminoacyl-tRNAs delivered by EF-Tu. Both cognate and near-cognate tRNA anticodons explore the aminoacyl-tRNA-binding site (A site) of an open 30S subunit, while inactive EF-Tu is separated from the 50S subunit. A transient conformation of decoding-centre nucleotide G530 stabilizes the cognate codon–anticodon helix, initiating step-wise ‘latching’ of the decoding centre. The resulting closure of the 30S subunit docks EF-Tu at the sarcin–ricin loop of the 50S subunit, activating EF-Tu for GTP hydrolysis and enabling accommodation of the aminoacyl-tRNA. By contrast, near-cognate complexes fail to induce the G530 latch, thus favouring open 30S pre-accommodation intermediates with inactive EF-Tu. This work reveals long-sought structural differences between the pre-accommodation of cognate and near-cognate tRNAs that elucidate the mechanism of accurate decoding.
Structural ensembles of the 70S ribosome bound to cognate or near-cognate charged tRNAs in complex with EF-Tu illustrate the crucial role of the nucleotide G530 in decoding of mRNA, and demonstrate that translational fidelity results from direct control of GTPase by the decoding centre.
Decoding faithful gene translation
The issue of fidelity in translating a DNA sequence into protein is central to the functioning of the ribosome. The insertion of even a single incorrect amino acid can potentially alter protein function. However, the structural understanding of translation fidelity remains unclear. Andrei Korostelev and colleagues have determined a series of structures of the 70S ribosome bound to cognate or near-cognate charged tRNAs. These structures illustrate the critical role of two nucleotides in the 16S rRNA, G530 and A1492, in forming a latch. The interaction of these nucleotides locks down the cognate tRNA by shifting the 30S domain and positioning the GTPase, elongation factor Tu, in an active conformation for hydrolysis.
Journal Article