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1.
Biol Open ; 13(7)2024 Jul 15.
Article in English | MEDLINE | ID: mdl-39078271

ABSTRACT

Although some budding yeasts have proved tractable and intensely studied models, others are more recalcitrant. Debaryomyces hansenii, an important yeast species in food and biotechnological industries with curious physiological characteristics, has proved difficult to manipulate genetically and remains poorly defined. To remedy this, we have combined live cell fluorescent dyes with high-resolution imaging techniques to define the sub-cellular features of D. hansenii, such as the mitochondria, nuclei, vacuoles and the cell wall. Using these tools, we define biological processes like the cell cycle, organelle inheritance and various membrane trafficking pathways of D. hansenii for the first time. Beyond this, reagents designed to study Saccharomyces cerevisiae proteins were used to access proteomic information about D. hansenii. Finally, we optimised the use of label-free holotomography to image yeast, defining the physical parameters and visualising sub-cellular features like membranes and vacuoles. Not only does this work shed light on D. hansenii but this combinatorial approach serves as a template for how other cell biological systems, which are not amenable to standard genetic procedures, can be studied.


Subject(s)
Debaryomyces , Proteomics/methods , Vacuoles/ultrastructure , Vacuoles/metabolism , Mitochondria/metabolism , Mitochondria/ultrastructure , Saccharomyces cerevisiae/ultrastructure
2.
Nature ; 632(8025): 664-671, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39048819

ABSTRACT

Biological membranes are partitioned into functional zones termed membrane microdomains, which contain specific lipids and proteins1-3. The composition and organization of membrane microdomains remain controversial because few techniques are available that allow the visualization of lipids in situ without disrupting their native behaviour3,4. The yeast eisosome, composed of the BAR-domain proteins Pil1 and Lsp1 (hereafter, Pil1/Lsp1), scaffolds a membrane compartment that senses and responds to mechanical stress by flattening and releasing sequestered factors5-9. Here we isolated near-native eisosomes as helical tubules made up of a lattice of Pil1/Lsp1 bound to plasma membrane lipids, and solved their structures by helical reconstruction. Our structures reveal a striking organization of membrane lipids, and, using in vitro reconstitutions and molecular dynamics simulations, we confirmed the positioning of individual PI(4,5)P2, phosphatidylserine and sterol molecules sequestered beneath the Pil1/Lsp1 coat. Three-dimensional variability analysis of the native-source eisosomes revealed a dynamic stretching of the Pil1/Lsp1 lattice that affects the sequestration of these lipids. Collectively, our results support a mechanism in which stretching of the Pil1/Lsp1 lattice liberates lipids that would otherwise be anchored by the Pil1/Lsp1 coat, and thus provide mechanistic insight into how eisosome BAR-domain proteins create a mechanosensitive membrane microdomain.


Subject(s)
Cryoelectron Microscopy , Membrane Microdomains , Saccharomyces cerevisiae , Membrane Lipids/chemistry , Membrane Lipids/metabolism , Membrane Microdomains/chemistry , Membrane Microdomains/metabolism , Membrane Microdomains/ultrastructure , Models, Molecular , Molecular Dynamics Simulation , Phosphatidylserines/chemistry , Phosphatidylserines/metabolism , Phosphoproteins/chemistry , Phosphoproteins/metabolism , Phosphoproteins/ultrastructure , Protein Domains , Saccharomyces cerevisiae/chemistry , Saccharomyces cerevisiae/cytology , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/ultrastructure , Sterols/chemistry , Sterols/metabolism , Stress, Mechanical
3.
Cell ; 187(13): 3303-3318.e18, 2024 Jun 20.
Article in English | MEDLINE | ID: mdl-38906101

ABSTRACT

Gamete formation and subsequent offspring development often involve extended phases of suspended cellular development or even dormancy. How cells adapt to recover and resume growth remains poorly understood. Here, we visualized budding yeast cells undergoing meiosis by cryo-electron tomography (cryoET) and discovered elaborate filamentous assemblies decorating the nucleus, cytoplasm, and mitochondria. To determine filament composition, we developed a "filament identification" (FilamentID) workflow that combines multiscale cryoET/cryo-electron microscopy (cryoEM) analyses of partially lysed cells or organelles. FilamentID identified the mitochondrial filaments as being composed of the conserved aldehyde dehydrogenase Ald4ALDH2 and the nucleoplasmic/cytoplasmic filaments as consisting of acetyl-coenzyme A (CoA) synthetase Acs1ACSS2. Structural characterization further revealed the mechanism underlying polymerization and enabled us to genetically perturb filament formation. Acs1 polymerization facilitates the recovery of chronologically aged spores and, more generally, the cell cycle re-entry of starved cells. FilamentID is broadly applicable to characterize filaments of unknown identity in diverse cellular contexts.


Subject(s)
Gametogenesis , Mitochondria , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Aldehyde Dehydrogenase/metabolism , Aldehyde Dehydrogenase/chemistry , Cell Nucleus/metabolism , Cell Nucleus/ultrastructure , Coenzyme A Ligases/metabolism , Cryoelectron Microscopy , Cytoplasm/metabolism , Electron Microscope Tomography , Meiosis , Mitochondria/metabolism , Mitochondria/ultrastructure , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Spores, Fungal/metabolism , Models, Molecular , Protein Structure, Quaternary
4.
Autophagy ; 20(9): 2092-2099, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38762750

ABSTRACT

Segmenting autophagic bodies in yeast TEM images is a key technique for measuring changes in autophagosome size and number in order to better understand macroautophagy/autophagy. Manual segmentation of these images can be very time consuming, particularly because hundreds of images are needed for accurate measurements. Here we describe a validated Cellpose 2.0 model that can segment these images with accuracy comparable to that of human experts. This model can be used for fully automated segmentation, eliminating the need for manual body outlining, or for model-assisted segmentation, which allows human oversight but is still five times as fast as the current manual method. The model is specific to segmentation of autophagic bodies in yeast TEM images, but researchers working in other systems can use a similar process to generate their own Cellpose 2.0 models to attempt automated segmentations. Our model and instructions for its use are presented here for the autophagy community.Abbreviations: AB, autophagic body; AvP, average precision; GUI, graphical user interface; IoU, intersection over union; MVB, multivesicular body; ROI, region of interest; TEM, transmission electron microscopy; WT,wild type.


Subject(s)
Autophagy , Image Processing, Computer-Assisted , Saccharomyces cerevisiae , Vacuoles , Autophagy/physiology , Vacuoles/metabolism , Vacuoles/ultrastructure , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/cytology , Image Processing, Computer-Assisted/methods , Autophagosomes/metabolism , Autophagosomes/ultrastructure , Microscopy, Electron, Transmission/methods , Humans , Software , Automation
5.
Nat Struct Mol Biol ; 31(7): 1134-1144, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38609662

ABSTRACT

Microtubule (MT) filaments, composed of α/ß-tubulin dimers, are fundamental to cellular architecture, function and organismal development. They are nucleated from MT organizing centers by the evolutionarily conserved γ-tubulin ring complex (γTuRC). However, the molecular mechanism of nucleation remains elusive. Here we used cryo-electron tomography to determine the structure of the native γTuRC capping the minus end of a MT in the context of enriched budding yeast spindles. In our structure, γTuRC presents a ring of γ-tubulin subunits to seed nucleation of exclusively 13-protofilament MTs, adopting an active closed conformation to function as a perfect geometric template for MT nucleation. Our cryo-electron tomography reconstruction revealed that a coiled-coil protein staples the first row of α/ß-tubulin of the MT to alternating positions along the γ-tubulin ring of γTuRC. This positioning of α/ß-tubulin onto γTuRC suggests a role for the coiled-coil protein in augmenting γTuRC-mediated MT nucleation. Based on our results, we describe a molecular model for budding yeast γTuRC activation and MT nucleation.


Subject(s)
Cryoelectron Microscopy , Microtubules , Models, Molecular , Saccharomyces cerevisiae , Spindle Apparatus , Tubulin , Tubulin/metabolism , Tubulin/chemistry , Tubulin/ultrastructure , Microtubules/metabolism , Microtubules/ultrastructure , Microtubules/chemistry , Spindle Apparatus/metabolism , Spindle Apparatus/ultrastructure , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/ultrastructure , Electron Microscope Tomography , Protein Conformation , Microtubule-Associated Proteins/metabolism , Microtubule-Associated Proteins/chemistry , Microtubule-Associated Proteins/ultrastructure
6.
Nature ; 627(8005): 890-897, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38448592

ABSTRACT

In eukaryotes, DNA compacts into chromatin through nucleosomes1,2. Replication of the eukaryotic genome must be coupled to the transmission of the epigenome encoded in the chromatin3,4. Here we report cryo-electron microscopy structures of yeast (Saccharomyces cerevisiae) replisomes associated with the FACT (facilitates chromatin transactions) complex (comprising Spt16 and Pob3) and an evicted histone hexamer. In these structures, FACT is positioned at the front end of the replisome by engaging with the parental DNA duplex to capture the histones through the middle domain and the acidic carboxyl-terminal domain of Spt16. The H2A-H2B dimer chaperoned by the carboxyl-terminal domain of Spt16 is stably tethered to the H3-H4 tetramer, while the vacant H2A-H2B site is occupied by the histone-binding domain of Mcm2. The Mcm2 histone-binding domain wraps around the DNA-binding surface of one H3-H4 dimer and extends across the tetramerization interface of the H3-H4 tetramer to the binding site of Spt16 middle domain before becoming disordered. This arrangement leaves the remaining DNA-binding surface of the other H3-H4 dimer exposed to additional interactions for further processing. The Mcm2 histone-binding domain and its downstream linker region are nested on top of Tof1, relocating the parental histones to the replisome front for transfer to the newly synthesized lagging-strand DNA. Our findings offer crucial structural insights into the mechanism of replication-coupled histone recycling for maintaining epigenetic inheritance.


Subject(s)
Chromatin , DNA Replication , Epistasis, Genetic , Histones , Saccharomyces cerevisiae , Binding Sites , Chromatin/chemistry , Chromatin/genetics , Chromatin/metabolism , Chromatin/ultrastructure , Cryoelectron Microscopy , DNA Replication/genetics , DNA, Fungal/biosynthesis , DNA, Fungal/chemistry , DNA, Fungal/metabolism , DNA, Fungal/ultrastructure , Epistasis, Genetic/genetics , Histones/chemistry , Histones/metabolism , Histones/ultrastructure , Multienzyme Complexes/chemistry , Multienzyme Complexes/metabolism , Multienzyme Complexes/ultrastructure , Nucleosomes/chemistry , Nucleosomes/metabolism , Nucleosomes/ultrastructure , Protein Binding , Protein Domains , Protein Multimerization , Saccharomyces cerevisiae/cytology , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/ultrastructure
7.
Nature ; 628(8009): 887-893, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38538796

ABSTRACT

Efficient termination is required for robust gene transcription. Eukaryotic organisms use a conserved exoribonuclease-mediated mechanism to terminate the mRNA transcription by RNA polymerase II (Pol II)1-5. Here we report two cryogenic electron microscopy structures of Saccharomyces cerevisiae Pol II pre-termination transcription complexes bound to the 5'-to-3' exoribonuclease Rat1 and its partner Rai1. Our structures show that Rat1 displaces the elongation factor Spt5 to dock at the Pol II stalk domain. Rat1 shields the RNA exit channel of Pol II, guides the nascent RNA towards its active centre and stacks three nucleotides at the 5' terminus of the nascent RNA. The structures further show that Rat1 rotates towards Pol II as it shortens RNA. Our results provide the structural mechanism for the Rat1-mediated termination of mRNA transcription by Pol II in yeast and the exoribonuclease-mediated termination of mRNA transcription in other eukaryotes.


Subject(s)
Cryoelectron Microscopy , Exoribonucleases , RNA Polymerase II , RNA, Messenger , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Transcription Termination, Genetic , Exoribonucleases/chemistry , Exoribonucleases/metabolism , Exoribonucleases/ultrastructure , Models, Molecular , Protein Binding , RNA Polymerase II/chemistry , RNA Polymerase II/metabolism , RNA Polymerase II/ultrastructure , RNA, Messenger/biosynthesis , RNA, Messenger/chemistry , RNA, Messenger/genetics , RNA, Messenger/ultrastructure , RNA-Binding Proteins/chemistry , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/ultrastructure , Saccharomyces cerevisiae/chemistry , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/ultrastructure , Transcriptional Elongation Factors/chemistry , Transcriptional Elongation Factors/metabolism , Transcriptional Elongation Factors/ultrastructure , Chromosomal Proteins, Non-Histone/chemistry , Chromosomal Proteins, Non-Histone/metabolism , Chromosomal Proteins, Non-Histone/ultrastructure , Protein Domains , RNA, Fungal/biosynthesis , RNA, Fungal/chemistry , RNA, Fungal/genetics , RNA, Fungal/ultrastructure
8.
Microsc Res Tech ; 87(8): 1718-1732, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38501891

ABSTRACT

Recent advances in computing power triggered the use of artificial intelligence in image analysis in life sciences. To train these algorithms, a large enough set of certified labeled data is required. The trained neural network is then capable of producing accurate instance segmentation results that will then need to be re-assembled into the original dataset: the entire process requires substantial expertise and time to achieve quantifiable results. To speed-up the process, from cell organelle detection to quantification across electron microscopy modalities, we propose a deep-learning based approach for fast automatic outline segmentation (FAMOUS), that involves organelle detection combined with image morphology, and 3D meshing to automatically segment, visualize and quantify cell organelles within volume electron microscopy datasets. From start to finish, FAMOUS provides full segmentation results within a week on previously unseen datasets. FAMOUS was showcased on a HeLa cell dataset acquired using a focused ion beam scanning electron microscope, and on yeast cells acquired by transmission electron tomography. RESEARCH HIGHLIGHTS: Introducing a rapid, multimodal machine-learning workflow for the automatic segmentation of 3D cell organelles. Successfully applied to a variety of volume electron microscopy datasets and cell lines. Outperforming manual segmentation methods in time and accuracy. Enabling high-throughput quantitative cell biology.


Subject(s)
Deep Learning , Image Processing, Computer-Assisted , Organelles , Organelles/ultrastructure , Humans , Image Processing, Computer-Assisted/methods , HeLa Cells , Microscopy, Electron/methods , Imaging, Three-Dimensional/methods , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae/cytology , Neural Networks, Computer , Algorithms , Volume Electron Microscopy
9.
Science ; 382(6675): 1184-1190, 2023 12 08.
Article in English | MEDLINE | ID: mdl-38060647

ABSTRACT

Kinetochores couple chromosomes to the mitotic spindle to segregate the genome during cell division. An error correction mechanism drives the turnover of kinetochore-microtubule attachments until biorientation is achieved. The structural basis for how kinetochore-mediated chromosome segregation is accomplished and regulated remains an outstanding question. In this work, we describe the cryo-electron microscopy structure of the budding yeast outer kinetochore Ndc80 and Dam1 ring complexes assembled onto microtubules. Complex assembly occurs through multiple interfaces, and a staple within Dam1 aids ring assembly. Perturbation of key interfaces suppresses yeast viability. Force-rupture assays indicated that this is a consequence of impaired kinetochore-microtubule attachment. The presence of error correction phosphorylation sites at Ndc80-Dam1 ring complex interfaces and the Dam1 staple explains how kinetochore-microtubule attachments are destabilized and reset.


Subject(s)
Cell Cycle Proteins , Kinetochores , Microtubule-Associated Proteins , Microtubules , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Cell Cycle Proteins/chemistry , Chromosome Segregation , Cryoelectron Microscopy , Microtubule-Associated Proteins/chemistry , Microtubules/chemistry , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/chemistry , Protein Conformation
10.
Science ; 381(6655): 319-324, 2023 07 21.
Article in English | MEDLINE | ID: mdl-37384669

ABSTRACT

Unlike other chromatin remodelers, INO80 preferentially mobilizes hexasomes, which can form during transcription. Why INO80 prefers hexasomes over nucleosomes remains unclear. Here, we report structures of Saccharomyces cerevisiae INO80 bound to a hexasome or a nucleosome. INO80 binds the two substrates in substantially different orientations. On a hexasome, INO80 places its ATPase subunit, Ino80, at superhelical location -2 (SHL -2), in contrast to SHL -6 and SHL -7, as previously seen on nucleosomes. Our results suggest that INO80 action on hexasomes resembles action by other remodelers on nucleosomes such that Ino80 is maximally active near SHL -2. The SHL -2 position also plays a critical role for nucleosome remodeling by INO80. Overall, the mechanistic adaptations used by INO80 for preferential hexasome sliding imply that subnucleosomal particles play considerable regulatory roles.


Subject(s)
Chromatin Assembly and Disassembly , Nucleosomes , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Chromatin/metabolism , Histones/metabolism , Nucleosomes/chemistry , Saccharomyces cerevisiae/chemistry , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/chemistry
11.
Nature ; 621(7979): 620-626, 2023 Sep.
Article in English | MEDLINE | ID: mdl-37344598

ABSTRACT

Mitochondria import nearly all of their approximately 1,000-2,000 constituent proteins from the cytosol across their double-membrane envelope1-5. Genetic and biochemical studies have shown that the conserved protein translocase, termed the TIM23 complex, mediates import of presequence-containing proteins (preproteins) into the mitochondrial matrix and inner membrane. Among about ten different subunits of the TIM23 complex, the essential multipass membrane protein Tim23, together with the evolutionarily related protein Tim17, has long been postulated to form a protein-conducting channel6-11. However, the mechanism by which these subunits form a translocation path in the membrane and enable the import process remains unclear due to a lack of structural information. Here we determined the cryo-electron microscopy structure of the core TIM23 complex (heterotrimeric Tim17-Tim23-Tim44) from Saccharomyces cerevisiae. Contrary to the prevailing model, Tim23 and Tim17 themselves do not form a water-filled channel, but instead have separate, lipid-exposed concave cavities that face in opposite directions. Our structural and biochemical analyses show that the cavity of Tim17, but not Tim23, forms the protein translocation path, whereas Tim23 probably has a structural role. The results further suggest that, during translocation of substrate polypeptides, the nonessential subunit Mgr2 seals the lateral opening of the Tim17 cavity to facilitate the translocation process. We propose a new model for the TIM23-mediated protein import and sorting mechanism, a central pathway in mitochondrial biogenesis.


Subject(s)
Mitochondria , Mitochondrial Precursor Protein Import Complex Proteins , Saccharomyces cerevisiae Proteins , Saccharomyces cerevisiae , Cryoelectron Microscopy , Mitochondrial Precursor Protein Import Complex Proteins/chemistry , Mitochondrial Precursor Protein Import Complex Proteins/metabolism , Mitochondrial Precursor Protein Import Complex Proteins/ultrastructure , Protein Transport , Saccharomyces cerevisiae/chemistry , Saccharomyces cerevisiae/cytology , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/ultrastructure , Mitochondria/chemistry , Mitochondria/metabolism , Mitochondria/ultrastructure
12.
Nature ; 618(7964): 411-418, 2023 Jun.
Article in English | MEDLINE | ID: mdl-37258668

ABSTRACT

The nuclear pore complex (NPC) is the bidirectional gate that mediates the exchange of macromolecules or their assemblies between nucleus and cytoplasm1-3. The assembly intermediates of the ribosomal subunits, pre-60S and pre-40S particles, are among the largest cargoes of the NPC and the export of these gigantic ribonucleoproteins requires numerous export factors4,5. Here we report the cryo-electron microscopy structure of native pre-60S particles trapped in the channel of yeast NPCs. In addition to known assembly factors, multiple factors with export functions are also included in the structure. These factors in general bind to either the flexible regions or subunit interface of the pre-60S particle, and virtually form many anchor sites for NPC binding. Through interactions with phenylalanine-glycine (FG) repeats from various nucleoporins of NPC, these factors collectively facilitate the passage of the pre-60S particle through the central FG repeat network of the NPC. Moreover, in silico analysis of the axial and radial distribution of pre-60S particles within the NPC shows that a single NPC can take up to four pre-60S particles simultaneously, and pre-60S particles are enriched in the inner ring regions close to the wall of the NPC with the solvent-exposed surface facing the centre of the nuclear pore. Our data suggest a translocation model for the export of pre-60S particles through the NPC.


Subject(s)
Active Transport, Cell Nucleus , Nuclear Pore , Saccharomyces cerevisiae , Cryoelectron Microscopy , Nuclear Pore/chemistry , Nuclear Pore/metabolism , Nuclear Pore/ultrastructure , Nuclear Pore Complex Proteins/chemistry , Nuclear Pore Complex Proteins/metabolism , Nuclear Pore Complex Proteins/ultrastructure , Saccharomyces cerevisiae/cytology , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae Proteins/ultrastructure , Protein Subunits/chemistry , Protein Subunits/metabolism , Phenylalanine , Glycine , Computer Simulation , Solvents
13.
Methods Mol Biol ; 2643: 321-331, 2023.
Article in English | MEDLINE | ID: mdl-36952195

ABSTRACT

Subcellular fractionation approaches have allowed for the identification of various functionally distinct organelles including peroxisomes. The methods enable enrichment of organelles and combined with downstream assays allow for the identification of biochemical functions, composition, and structural characteristics of these compartments. In this chapter, we describe the methods for differential centrifugation and Nycodenz gradients in the yeast Saccharomyces cerevisiae and describe assays for fatty acid ß-oxidation in intact cells and in peroxisomal fractions.


Subject(s)
Peroxisomes , Saccharomyces cerevisiae Proteins , Peroxisomes/metabolism , Saccharomyces cerevisiae/ultrastructure , Cell Fractionation/methods , Centrifugation , Saccharomyces cerevisiae Proteins/metabolism , Subcellular Fractions , Oxidation-Reduction
14.
Mol Cell ; 82(3): 660-676.e9, 2022 02 03.
Article in English | MEDLINE | ID: mdl-35051353

ABSTRACT

Previous structural studies of the initiation-elongation transition of RNA polymerase II (pol II) transcription have relied on the use of synthetic oligonucleotides, often artificially discontinuous to capture pol II in the initiating state. Here, we report multiple structures of initiation complexes converted de novo from a 33-subunit yeast pre-initiation complex (PIC) through catalytic activities and subsequently stalled at different template positions. We determine that PICs in the initially transcribing complex (ITC) can synthesize a transcript of ∼26 nucleotides before transitioning to an elongation complex (EC) as determined by the loss of general transcription factors (GTFs). Unexpectedly, transition to an EC was greatly accelerated when an ITC encountered a downstream EC stalled at promoter proximal regions and resulted in a collided head-to-end dimeric EC complex. Our structural analysis reveals a dynamic state of TFIIH, the largest of GTFs, in PIC/ITC with distinct functional consequences at multiple steps on the pathway to elongation.


Subject(s)
RNA Polymerase II/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/enzymology , Transcription Initiation, Genetic , Cryoelectron Microscopy , Gene Expression Regulation, Fungal , Models, Molecular , Promoter Regions, Genetic , Protein Conformation , RNA Polymerase II/genetics , RNA Polymerase II/ultrastructure , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/ultrastructure , Structure-Activity Relationship , Time Factors , Transcription Elongation, Genetic , Transcription Factors, TFII/genetics , Transcription Factors, TFII/metabolism
15.
STAR Protoc ; 2(4): 100990, 2021 12 17.
Article in English | MEDLINE | ID: mdl-34934959

ABSTRACT

Phosphatidylcholine (PtdCho) is a major membrane phospholipid synthesized in the endoplasmic reticulum. Here, we provide a protocol using electron microscopy to localize PtdCho that is newly synthesized by the Kennedy pathway in yeast cells. The protocol consists of the administration of a clickable alkyne-containing choline analog to cells, quick-freezing, freeze-fracture replica preparation, conjugation of biotin-azide by click chemical reaction, and immunogold labeling. This protocol can be used to determine quantitatively to which membrane leaflets newly synthesized PtdCho is incorporated. For complete details on the use and execution of this protocol, please refer to Orii et al. (2021).


Subject(s)
Freeze Fracturing/methods , Microscopy, Electron/methods , Phosphatidylcholines , Saccharomyces cerevisiae/ultrastructure , Alkynes/chemistry , Alkynes/metabolism , Choline/analogs & derivatives , Choline/chemistry , Choline/metabolism , Phosphatidylcholines/analysis , Phosphatidylcholines/chemistry , Phosphatidylcholines/metabolism , Saccharomyces cerevisiae/chemistry , Saccharomyces cerevisiae/cytology , Saccharomyces cerevisiae/metabolism
16.
J Cell Biol ; 220(12)2021 12 06.
Article in English | MEDLINE | ID: mdl-34714326

ABSTRACT

Mechanisms that turn over components of the nucleus and inner nuclear membrane (INM) remain to be fully defined. We explore how components of the INM are selected by a cytosolic autophagy apparatus through a transmembrane nuclear envelope-localized cargo adaptor, Atg39. A split-GFP reporter showed that Atg39 localizes to the outer nuclear membrane (ONM) and thus targets the INM across the nuclear envelope lumen. Consistent with this, sequence elements that confer both nuclear envelope localization and a membrane remodeling activity are mapped to the Atg39 lumenal domain; these lumenal motifs are required for the autophagy-mediated degradation of integral INM proteins. Interestingly, correlative light and electron microscopy shows that the overexpression of Atg39 leads to the expansion of the ONM and the enclosure of a network of INM-derived vesicles in the nuclear envelope lumen. Thus, we propose an outside-in model of nucleophagy where INM is delivered into vesicles in the nuclear envelope lumen, which can be targeted by the autophagosome.


Subject(s)
Autophagosomes/metabolism , Autophagy-Related Proteins/metabolism , Cytoplasmic Vesicles/metabolism , Nuclear Envelope/metabolism , Receptors, Cytoplasmic and Nuclear/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Autophagosomes/ultrastructure , Autophagy , Autophagy-Related Proteins/chemistry , Cytoplasmic Vesicles/ultrastructure , Green Fluorescent Proteins/metabolism , Nuclear Envelope/ultrastructure , Protein Domains , Receptors, Cytoplasmic and Nuclear/chemistry , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/chemistry , Structure-Activity Relationship , Time Factors , Vacuoles/metabolism , Vacuoles/ultrastructure , Vesicular Transport Proteins/metabolism
17.
Commun Biol ; 4(1): 1009, 2021 08 25.
Article in English | MEDLINE | ID: mdl-34433891

ABSTRACT

Actin polymerises to form filaments/cables for motility, transport, and the structural framework in a cell. Recent studies show that actin polymers are present not only in the cytoplasm but also in the nuclei of vertebrate cells. Here, we show, by electron microscopic observation with rapid freezing and high-pressure freezing, a unique bundled structure containing actin in the nuclei of budding yeast cells undergoing meiosis. The nuclear bundle during meiosis consists of multiple filaments with a rectangular lattice arrangement, often showing a feather-like appearance. The bundle was immunolabelled with an anti-actin antibody and was sensitive to an actin-depolymerising drug. Similar to cytoplasmic bundles, nuclear bundles are rarely seen in premeiotic cells and spores and are induced during meiotic prophase-I. The formation of the nuclear bundle is independent of DNA double-stranded breaks. We speculate that nuclear bundles containing actin play a role in nuclear events during meiotic prophase I.


Subject(s)
Actins/ultrastructure , Cell Nucleus/ultrastructure , Meiosis , Saccharomyces cerevisiae/ultrastructure , Microscopy, Electron, Transmission
18.
Nature ; 596(7871): 296-300, 2021 08.
Article in English | MEDLINE | ID: mdl-34349264

ABSTRACT

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


Subject(s)
DEAD-box RNA Helicases/chemistry , DEAD-box RNA Helicases/metabolism , RNA Precursors/chemistry , RNA Precursors/genetics , RNA Splicing , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae , Spliceosomes/enzymology , Actins/genetics , Adenosine/metabolism , Binding Sites , Cryoelectron Microscopy , DEAD-box RNA Helicases/ultrastructure , Models, Molecular , Mutation , Protein Domains , RNA Precursors/metabolism , RNA Precursors/ultrastructure , RNA Splicing/genetics , Ribonucleoprotein, U1 Small Nuclear/metabolism , Ribonucleoprotein, U2 Small Nuclear/chemistry , Ribonucleoprotein, U2 Small Nuclear/metabolism , Saccharomyces cerevisiae/enzymology , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/ultrastructure , Spliceosomes/chemistry , Spliceosomes/metabolism
19.
J Mol Biol ; 433(21): 167219, 2021 10 15.
Article in English | MEDLINE | ID: mdl-34464654

ABSTRACT

Protein modification by ubiquitin or SUMO can alter the function, stability or activity of target proteins. Previous studies have identified thousands of substrates that were modified by ubiquitin or SUMO on the same lysine residue. However, it remains unclear whether such overlap could result from a mere higher solvent accessibility, whether proteins containing those sites are associated with specific functional traits, and whether selectively perturbing their modification by ubiquitin or SUMO could result in different phenotypic outcomes. Here, we mapped reported lysine modification sites across the human proteome and found an enrichment of sites reported to be modified by both ubiquitin and SUMO. Our analysis uncovered thousands of proteins containing such sites, which we term Sites of Alternative Modification (SAMs). Among more than 36,000 sites reported to be modified by SUMO, 51.8% have also been reported to be modified by ubiquitin. SAM-containing proteins are associated with diverse biological functions including cell cycle, DNA damage, and transcriptional regulation. As such, our analysis highlights numerous proteins and pathways as putative targets for further elucidating the crosstalk between ubiquitin and SUMO. Comparing the biological and biochemical properties of SAMs versus other non-overlapping modification sites revealed that these sites were associated with altered cellular localization or abundance of their host proteins. Lastly, using S. cerevisiae as model, we show that mutating the SAM motif in a protein can influence its ubiquitination as well as its localization and abundance.


Subject(s)
Cell Cycle/genetics , Protein Processing, Post-Translational , Saccharomyces cerevisiae/metabolism , Small Ubiquitin-Related Modifier Proteins/metabolism , Ubiquitin/metabolism , Amino Acid Motifs , Computational Biology/methods , DNA Damage , Humans , Lysine/metabolism , Mutagenesis, Site-Directed , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/ultrastructure , Small Ubiquitin-Related Modifier Proteins/genetics , Sumoylation , Transcription, Genetic , Ubiquitin/genetics
20.
Cell Rep ; 36(1): 109317, 2021 07 06.
Article in English | MEDLINE | ID: mdl-34233195

ABSTRACT

The R2TP (RUVBL1-RUVBL2-RPAP3-PIH1D1) complex, in collaboration with heat shock protein 90 (HSP90), functions as a chaperone for the assembly and stability of protein complexes, including RNA polymerases, small nuclear ribonucleoprotein particles (snRNPs), and phosphatidylinositol 3-kinase (PI3K)-like kinases (PIKKs) such as TOR and SMG1. PIKK stabilization depends on an additional complex of TELO2, TTI1, and TTI2 (TTT), whose structure and function are poorly understood. The cryoelectron microscopy (cryo-EM) structure of the human R2TP-TTT complex, together with biochemical experiments, reveals the mechanism of TOR recruitment to the R2TP-TTT chaperone. The HEAT-repeat TTT complex binds the kinase domain of TOR, without blocking its activity, and delivers TOR to the R2TP chaperone. In addition, TTT regulates the R2TP chaperone by inhibiting RUVBL1-RUVBL2 ATPase activity and by modulating the conformation and interactions of the PIH1D1 and RPAP3 components of R2TP. Taken together, our results show how TTT couples the recruitment of TOR to R2TP with the regulation of this chaperone system.


Subject(s)
Molecular Chaperones/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Adenosine Triphosphatases/metabolism , Cryoelectron Microscopy , Humans , Models, Molecular , Multiprotein Complexes/chemistry , Multiprotein Complexes/metabolism , Protein Binding , Protein Domains , Protein Interaction Mapping , Saccharomyces cerevisiae/ultrastructure , Saccharomyces cerevisiae Proteins/ultrastructure , Structure-Activity Relationship
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