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1.
Nature ; 628(8009): 894-900, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38600380

RESUMO

Fractals are patterns that are self-similar across multiple length-scales1. Macroscopic fractals are common in nature2-4; however, so far, molecular assembly into fractals is restricted to synthetic systems5-12. Here we report the discovery of a natural protein, citrate synthase from the cyanobacterium Synechococcus elongatus, which self-assembles into Sierpinski triangles. Using cryo-electron microscopy, we reveal how the fractal assembles from a hexameric building block. Although different stimuli modulate the formation of fractal complexes and these complexes can regulate the enzymatic activity of citrate synthase in vitro, the fractal may not serve a physiological function in vivo. We use ancestral sequence reconstruction to retrace how the citrate synthase fractal evolved from non-fractal precursors, and the results suggest it may have emerged as a harmless evolutionary accident. Our findings expand the space of possible protein complexes and demonstrate that intricate and regulatable assemblies can evolve in a single substitution.


Assuntos
Citrato (si)-Sintase , Evolução Molecular , Fractais , Multimerização Proteica , Synechococcus , Microscopia Crioeletrônica , Modelos Moleculares , Synechococcus/enzimologia , Citrato (si)-Sintase/química , Citrato (si)-Sintase/metabolismo , Citrato (si)-Sintase/ultraestrutura
2.
Nat Commun ; 14(1): 5484, 2023 09 07.
Artigo em Inglês | MEDLINE | ID: mdl-37673911

RESUMO

The challenge of endergonic reduction of NADP+ using NADH is overcome by ferredoxin-dependent transhydrogenases that employ electron bifurcation for electron carrier adjustments in the ancient Wood-Ljungdahl pathway. Recently, an electron-bifurcating transhydrogenase with subunit compositions distinct from the well-characterized Nfn-type transhydrogenase was described: the Stn complex. Here, we present the single-particle cryo-EM structure of the Stn family transhydrogenase from the acetogenic bacterium Sporomusa ovata and functionally dissect its electron transfer pathway. Stn forms a tetramer consisting of functional heterotrimeric StnABC complexes. Our findings demonstrate that the StnAB subunits assume the structural and functional role of a bifurcating module, homologous to the HydBC core of the electron-bifurcating HydABC complex. Moreover, StnC contains a NuoG-like domain and a GltD-like NADPH binding domain that resembles the NfnB subunit of the NfnAB complex. However, in contrast to NfnB, StnC lost the ability to bifurcate electrons. Structural comparison allows us to describe how the same fold on one hand evolved bifurcation activity on its own while on the other hand combined with an associated bifurcating module, exemplifying modular evolution in anaerobic metabolism to produce activities critical for survival at the thermodynamic limit of life.


Assuntos
Elétrons , Ferredoxinas , Anaerobiose , Termodinâmica , Extremidade Superior
3.
J Am Chem Soc ; 145(10): 5696-5709, 2023 03 15.
Artigo em Inglês | MEDLINE | ID: mdl-36811855

RESUMO

Electron bifurcation is a fundamental energy coupling mechanism widespread in microorganisms that thrive under anoxic conditions. These organisms employ hydrogen to reduce CO2, but the molecular mechanisms have remained enigmatic. The key enzyme responsible for powering these thermodynamically challenging reactions is the electron-bifurcating [FeFe]-hydrogenase HydABC that reduces low-potential ferredoxins (Fd) by oxidizing hydrogen gas (H2). By combining single-particle cryo-electron microscopy (cryoEM) under catalytic turnover conditions with site-directed mutagenesis experiments, functional studies, infrared spectroscopy, and molecular simulations, we show that HydABC from the acetogenic bacteria Acetobacterium woodii and Thermoanaerobacter kivui employ a single flavin mononucleotide (FMN) cofactor to establish electron transfer pathways to the NAD(P)+ and Fd reduction sites by a mechanism that is fundamentally different from classical flavin-based electron bifurcation enzymes. By modulation of the NAD(P)+ binding affinity via reduction of a nearby iron-sulfur cluster, HydABC switches between the exergonic NAD(P)+ reduction and endergonic Fd reduction modes. Our combined findings suggest that the conformational dynamics establish a redox-driven kinetic gate that prevents the backflow of the electrons from the Fd reduction branch toward the FMN site, providing a basis for understanding general mechanistic principles of electron-bifurcating hydrogenases.


Assuntos
Elétrons , Hidrogenase , Hidrogenase/química , NAD/metabolismo , Microscopia Crioeletrônica , Ferredoxinas/química , Oxirredução , Hidrogênio/química , Transporte de Elétrons
4.
Science ; 378(6616): 155-160, 2022 10 14.
Artigo em Inglês | MEDLINE | ID: mdl-36227987

RESUMO

The evolution of ribulose-1,5-bisphosphate carboxylase/oxygenases (Rubiscos) that discriminate strongly between their substrate carbon dioxide and the undesired side substrate dioxygen was an important event for photosynthetic organisms adapting to an oxygenated environment. We use ancestral sequence reconstruction to recapitulate this event. We show that Rubisco increased its specificity and carboxylation efficiency through the gain of an accessory subunit before atmospheric oxygen was present. Using structural and biochemical approaches, we retrace how this subunit was gained and became essential. Our work illuminates the emergence of an adaptation to rising ambient oxygen levels, provides a template for investigating the function of interactions that have remained elusive because of their essentiality, and sheds light on the determinants of specificity in Rubisco.


Assuntos
Dióxido de Carbono , Domínio Catalítico , Evolução Molecular , Ribulose-Bifosfato Carboxilase , Dióxido de Carbono/química , Oxigênio/química , Fotossíntese , Ribulose-Bifosfato Carboxilase/química , Ribulose-Bifosfato Carboxilase/genética , Especificidade por Substrato , Domínio Catalítico/genética , Metagenoma , Firmicutes/enzimologia
5.
Nature ; 607(7920): 823-830, 2022 07.
Artigo em Inglês | MEDLINE | ID: mdl-35859174

RESUMO

Filamentous enzymes have been found in all domains of life, but the advantage of filamentation is often elusive1. Some anaerobic, autotrophic bacteria have an unusual filamentous enzyme for CO2 fixation-hydrogen-dependent CO2 reductase (HDCR)2,3-which directly converts H2 and CO2 into formic acid. HDCR reduces CO2 with a higher activity than any other known biological or chemical catalyst4,5, and it has therefore gained considerable interest in two areas of global relevance: hydrogen storage and combating climate change by capturing atmospheric CO2. However, the mechanistic basis of the high catalytic turnover rate of HDCR has remained unknown. Here we use cryo-electron microscopy to reveal the structure of a short HDCR filament from the acetogenic bacterium Thermoanaerobacter kivui. The minimum repeating unit is a hexamer that consists of a formate dehydrogenase (FdhF) and two hydrogenases (HydA2) bound around a central core of hydrogenase Fe-S subunits, one HycB3 and two HycB4. These small bacterial polyferredoxin-like proteins oligomerize through their C-terminal helices to form the backbone of the filament. By combining structure-directed mutagenesis with enzymatic analysis, we show that filamentation and rapid electron transfer through the filament enhance the activity of HDCR. To investigate the structure of HDCR in situ, we imaged T. kivui cells with cryo-electron tomography and found that HDCR filaments bundle into large ring-shaped superstructures attached to the plasma membrane. This supramolecular organization may further enhance the stability and connectivity of HDCR to form a specialized metabolic subcompartment within the cell.


Assuntos
Dióxido de Carbono , Membrana Celular , Hidrogênio , Hidrogenase , Nanofios , Dióxido de Carbono/metabolismo , Membrana Celular/enzimologia , Microscopia Crioeletrônica , Estabilidade Enzimática , Hidrogênio/metabolismo , Hidrogenase/química , Hidrogenase/genética , Hidrogenase/metabolismo , Hidrogenase/ultraestrutura , Mutação , Multimerização Proteica , Subunidades Proteicas/química , Subunidades Proteicas/metabolismo , Thermoanaerobacter/citologia , Thermoanaerobacter/enzimologia
6.
Elife ; 112022 06 24.
Artigo em Inglês | MEDLINE | ID: mdl-35748623

RESUMO

Lactate oxidation with NAD+ as electron acceptor is a highly endergonic reaction. Some anaerobic bacteria overcome the energetic hurdle by flavin-based electron bifurcation/confurcation (FBEB/FBEC) using a lactate dehydrogenase (Ldh) in concert with the electron-transferring proteins EtfA and EtfB. The electron cryo-microscopically characterized (Ldh-EtfAB)2 complex of Acetobacterium woodii at 2.43 Å resolution consists of a mobile EtfAB shuttle domain located between the rigid central Ldh and the peripheral EtfAB base units. The FADs of Ldh and the EtfAB shuttle domain contact each other thereby forming the D (dehydrogenation-connected) state. The intermediary Glu37 and Glu139 may harmonize the redox potentials between the FADs and the pyruvate/lactate pair crucial for FBEC. By integrating Alphafold2 calculations a plausible novel B (bifurcation-connected) state was obtained allowing electron transfer between the EtfAB base and shuttle FADs. Kinetic analysis of enzyme variants suggests a correlation between NAD+ binding site and D-to-B-state transition implicating a 75° rotation of the EtfAB shuttle domain. The FBEC inactivity when truncating the ferredoxin domain of EtfA substantiates its role as redox relay. Lactate oxidation in Ldh is assisted by the catalytic base His423 and a metal center. On this basis, a comprehensive catalytic mechanism of the FBEC process was proposed.


Assuntos
Elétrons , L-Lactato Desidrogenase , Transporte de Elétrons , Cinética , L-Lactato Desidrogenase/metabolismo , Lactatos , NAD/metabolismo , Oxirredução
7.
Cell ; 184(14): 3643-3659.e23, 2021 07 08.
Artigo em Inglês | MEDLINE | ID: mdl-34166613

RESUMO

Vesicle-inducing protein in plastids 1 (VIPP1) is essential for the biogenesis and maintenance of thylakoid membranes, which transform light into life. However, it is unknown how VIPP1 performs its vital membrane-remodeling functions. Here, we use cryo-electron microscopy to determine structures of cyanobacterial VIPP1 rings, revealing how VIPP1 monomers flex and interweave to form basket-like assemblies of different symmetries. Three VIPP1 monomers together coordinate a non-canonical nucleotide binding pocket on one end of the ring. Inside the ring's lumen, amphipathic helices from each monomer align to form large hydrophobic columns, enabling VIPP1 to bind and curve membranes. In vivo mutations in these hydrophobic surfaces cause extreme thylakoid swelling under high light, indicating an essential role of VIPP1 lipid binding in resisting stress-induced damage. Using cryo-correlative light and electron microscopy (cryo-CLEM), we observe oligomeric VIPP1 coats encapsulating membrane tubules within the Chlamydomonas chloroplast. Our work provides a structural foundation for understanding how VIPP1 directs thylakoid biogenesis and maintenance.


Assuntos
Proteínas de Bactérias/química , Proteínas de Bactérias/metabolismo , Chlamydomonas/metabolismo , Multimerização Proteica , Synechocystis/metabolismo , Tilacoides/metabolismo , Sequência de Aminoácidos , Proteínas de Bactérias/ultraestrutura , Sítios de Ligação , Membrana Celular/metabolismo , Chlamydomonas/ultraestrutura , Microscopia Crioeletrônica , Proteínas de Fluorescência Verde/metabolismo , Interações Hidrofóbicas e Hidrofílicas , Luz , Lipídeos/química , Modelos Moleculares , Nucleotídeos/metabolismo , Ligação Proteica , Estrutura Secundária de Proteína , Estresse Fisiológico/efeitos da radiação , Synechocystis/ultraestrutura , Tilacoides/ultraestrutura
8.
Nat Plants ; 7(4): 524-538, 2021 04.
Artigo em Inglês | MEDLINE | ID: mdl-33846594

RESUMO

Biogenesis of photosystem II (PSII), nature's water-splitting catalyst, is assisted by auxiliary proteins that form transient complexes with PSII components to facilitate stepwise assembly events. Using cryo-electron microscopy, we solved the structure of such a PSII assembly intermediate from Thermosynechococcus elongatus at 2.94 Å resolution. It contains three assembly factors (Psb27, Psb28 and Psb34) and provides detailed insights into their molecular function. Binding of Psb28 induces large conformational changes at the PSII acceptor side, which distort the binding pocket of the mobile quinone (QB) and replace the bicarbonate ligand of non-haem iron with glutamate, a structural motif found in reaction centres of non-oxygenic photosynthetic bacteria. These results reveal mechanisms that protect PSII from damage during biogenesis until water splitting is activated. Our structure further demonstrates how the PSII active site is prepared for the incorporation of the Mn4CaO5 cluster, which performs the unique water-splitting reaction.


Assuntos
Proteínas de Bactérias/genética , Complexo de Proteína do Fotossistema II/genética , Proteínas de Bactérias/ultraestrutura , Fotossíntese , Complexo de Proteína do Fotossistema II/ultraestrutura , Thermosynechococcus/genética , Thermosynechococcus/ultraestrutura
9.
Elife ; 92020 11 16.
Artigo em Inglês | MEDLINE | ID: mdl-33191913

RESUMO

The yeast THO complex is recruited to active genes and interacts with the RNA-dependent ATPase Sub2 to facilitate the formation of mature export-competent messenger ribonucleoprotein particles and to prevent the co-transcriptional formation of RNA:DNA-hybrid-containing structures. How THO-containing complexes function at the mechanistic level is unclear. Here, we elucidated a 3.4 Å resolution structure of Saccharomyces cerevisiae THO-Sub2 by cryo-electron microscopy. THO subunits Tho2 and Hpr1 intertwine to form a platform that is bound by Mft1, Thp2, and Tex1. The resulting complex homodimerizes in an asymmetric fashion, with a Sub2 molecule attached to each protomer. The homodimerization interfaces serve as a fulcrum for a seesaw-like movement concomitant with conformational changes of the Sub2 ATPase. The overall structural architecture and topology suggest the molecular mechanisms of nucleic acid remodeling during mRNA biogenesis.


Assuntos
Adenosina Trifosfatases/química , Proteínas de Saccharomyces cerevisiae/química , Fatores de Transcrição/química , Adenosina Trifosfatases/metabolismo , Microscopia Crioeletrônica , Ácidos Nucleicos/química , Ácidos Nucleicos/metabolismo , Conformação Proteica , Ribonucleoproteínas/química , Ribonucleoproteínas/metabolismo , Saccharomyces cerevisiae , Proteínas de Saccharomyces cerevisiae/metabolismo , Fatores de Transcrição/metabolismo
10.
Nat Commun ; 11(1): 494, 2020 01 24.
Artigo em Inglês | MEDLINE | ID: mdl-31980611

RESUMO

Photosynthetic organisms capture light energy to drive their energy metabolism, and employ the chemical reducing power to convert carbon dioxide (CO2) into organic molecules. Photorespiration, however, significantly reduces the photosynthetic yields. To survive under low CO2 concentrations, cyanobacteria evolved unique carbon-concentration mechanisms that enhance the efficiency of photosynthetic CO2 fixation, for which the molecular principles have remained unknown. We show here how modular adaptations enabled the cyanobacterial photosynthetic complex I to concentrate CO2 using a redox-driven proton-pumping machinery. Our cryo-electron microscopy structure at 3.2 Å resolution shows a catalytic carbonic anhydrase module that harbours a Zn2+ active site, with connectivity to proton-pumping subunits that are activated by electron transfer from photosystem I. Our findings illustrate molecular principles in the photosynthetic complex I machinery that enabled cyanobacteria to survive in drastically changing CO2 conditions.


Assuntos
Carbono/metabolismo , Complexo I de Transporte de Elétrons/metabolismo , Fotossíntese , Bombas de Próton/metabolismo , Dióxido de Carbono/metabolismo , Domínio Catalítico , Complexo I de Transporte de Elétrons/química , Oxirredução , Eletricidade Estática , Thermus/metabolismo , Água/metabolismo
11.
Proc Natl Acad Sci U S A ; 117(2): 1069-1080, 2020 01 14.
Artigo em Inglês | MEDLINE | ID: mdl-31882451

RESUMO

To promote the biochemical reactions of life, cells can compartmentalize molecular interaction partners together within separated non-membrane-bound regions. It is unknown whether this strategy is used to facilitate protein degradation at specific locations within the cell. Leveraging in situ cryo-electron tomography to image the native molecular landscape of the unicellular alga Chlamydomonas reinhardtii, we discovered that the cytosolic protein degradation machinery is concentrated within ∼200-nm foci that contact specialized patches of endoplasmic reticulum (ER) membrane away from the ER-Golgi interface. These non-membrane-bound microcompartments exclude ribosomes and consist of a core of densely clustered 26S proteasomes surrounded by a loose cloud of Cdc48. Active proteasomes in the microcompartments directly engage with putative substrate at the ER membrane, a function canonically assigned to Cdc48. Live-cell fluorescence microscopy revealed that the proteasome clusters are dynamic, with frequent assembly and fusion events. We propose that the microcompartments perform ER-associated degradation, colocalizing the degradation machinery at specific ER hot spots to enable efficient protein quality control.


Assuntos
Degradação Associada com o Retículo Endoplasmático/fisiologia , Retículo Endoplasmático/metabolismo , Retículo Endoplasmático/ultraestrutura , Proteólise , Chlamydomonas reinhardtii/metabolismo , Chlamydomonas reinhardtii/ultraestrutura , Microscopia Crioeletrônica , Citosol/metabolismo , Endopeptidases , Imagem Óptica , Complexo de Endopeptidases do Proteassoma/metabolismo , Ribossomos/metabolismo , Ribossomos/ultraestrutura , Proteína com Valosina/metabolismo
12.
Science ; 363(6424): 257-260, 2019 01 18.
Artigo em Inglês | MEDLINE | ID: mdl-30573545

RESUMO

Photosynthetic complex I enables cyclic electron flow around photosystem I, a regulatory mechanism for photosynthetic energy conversion. We report a 3.3-angstrom-resolution cryo-electron microscopy structure of photosynthetic complex I from the cyanobacterium Thermosynechococcus elongatus. The model reveals structural adaptations that facilitate binding and electron transfer from the photosynthetic electron carrier ferredoxin. By mimicking cyclic electron flow with isolated components in vitro, we demonstrate that ferredoxin directly mediates electron transfer between photosystem I and complex I, instead of using intermediates such as NADPH (the reduced form of nicotinamide adenine dinucleotide phosphate). A large rate constant for association of ferredoxin to complex I indicates efficient recognition, with the protein subunit NdhS being the key component in this process.


Assuntos
Cianobactérias/fisiologia , Complexo I de Transporte de Elétrons/fisiologia , Ferredoxinas/fisiologia , Fotossíntese , Complexo de Proteína do Fotossistema I/fisiologia , Microscopia Crioeletrônica , Transporte de Elétrons , Modelos Moleculares , Estrutura Quaternária de Proteína
13.
Artigo em Inglês | MEDLINE | ID: mdl-32493762

RESUMO

The RNA exosome was originally discovered in yeast as an RNA-processing complex required for the maturation of 5.8S ribosomal RNA (rRNA), one of the constituents of the large ribosomal subunit. The exosome is now known in eukaryotes as the major 3'-5' RNA degradation machine involved in numerous processing, turnover, and surveillance pathways, both in the nucleus and the cytoplasm. Yet its role in maturing the 5.8S rRNA in the pre-60S ribosomal particle remains probably the most intricate and emblematic among its functions, as it involves all the RNA unwinding, degradation, and trimming activities embedded in this macromolecular complex. Here, we propose a comprehensive mechanistic model, based on current biochemical and structural data, explaining the dual functions of the nuclear exosome-the constructive versus the destructive mode.

14.
Elife ; 72018 07 26.
Artigo em Inglês | MEDLINE | ID: mdl-30047866

RESUMO

The nuclear RNA exosome complex mediates the processing of structured RNAs and the decay of aberrant non-coding RNAs, an important function particularly in human cells. Most mechanistic studies to date have focused on the yeast system. Here, we reconstituted and studied the properties of a recombinant 14-subunit human nuclear exosome complex. In biochemical assays, the human exosome embeds a longer RNA channel than its yeast counterpart. The 3.8 Å resolution cryo-EM structure of the core complex bound to a single-stranded RNA reveals that the RNA channel path is formed by two distinct features of the hDIS3 exoribonuclease: an open conformation and a domain organization more similar to bacterial RNase II than to yeast Rrp44. The cryo-EM structure of the holo-complex shows how obligate nuclear cofactors position the hMTR4 helicase at the entrance of the core complex, suggesting a striking structural conservation from lower to higher eukaryotes.


Assuntos
Complexo Multienzimático de Ribonucleases do Exossomo/química , Exossomos/química , RNA Helicases/química , Homologia Estrutural de Proteína , Núcleo Celular/química , Cristalografia por Raios X , Complexo Multienzimático de Ribonucleases do Exossomo/genética , Exossomos/genética , Humanos , Ligação Proteica , Conformação Proteica , Subunidades Proteicas/química , Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/química
15.
Science ; 355(6330): 1181-1184, 2017 03 17.
Artigo em Inglês | MEDLINE | ID: mdl-28302852

RESUMO

Cyanobacteria have a robust circadian oscillator, known as the Kai system. Reconstituted from the purified protein components KaiC, KaiB, and KaiA, it can tick autonomously in the presence of adenosine 5'-triphosphate (ATP). The KaiC hexamers enter a natural 24-hour reaction cycle of autophosphorylation and assembly with KaiB and KaiA in numerous diverse forms. We describe the preparation of stoichiometrically well-defined assemblies of KaiCB and KaiCBA, as monitored by native mass spectrometry, allowing for a structural characterization by single-particle cryo-electron microscopy and mass spectrometry. Our data reveal details of the interactions between the Kai proteins and provide a structural basis to understand periodic assembly of the protein oscillator.


Assuntos
Proteínas de Bactérias/química , Relógios Circadianos , Peptídeos e Proteínas de Sinalização do Ritmo Circadiano/química , Ritmo Circadiano , Cianobactérias/fisiologia , Trifosfato de Adenosina/química , Proteínas de Bactérias/ultraestrutura , Peptídeos e Proteínas de Sinalização do Ritmo Circadiano/ultraestrutura , Microscopia Crioeletrônica , Espectrometria de Massas , Modelos Moleculares , Multimerização Proteica
16.
FEBS Lett ; 590(5): 595-604, 2016 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-26849035

RESUMO

The ubiquitous AAA-ATPase p97 segregates ubiquitylated proteins from their molecular environment. Previous studies of the nucleotide-dependent conformational changes of p97 were inconclusive. Here, we determined its structure in the presence of ADP, AMP-PNP, or ATP-γS at 6.1-7.4 Šresolution using single particle cryo-electron microscopy. Both AAA domains, D1 and D2, assemble into essentially six-fold symmetrical rings. The pore of the D1-ring remains essentially closed under all nucleotide conditions, whereas the D2-ring shows an iris-like opening for ADP. The largest conformational changes of p97 are 'swinging motions' of the N-terminal domains, which may enable segregation of ubiquitylated substrates from their environment.


Assuntos
Adenosina Trifosfatases/química , Proteínas Nucleares/química , Nucleotídeos/farmacologia , Adenosina Trifosfatases/metabolismo , Hidrólise , Modelos Moleculares , Proteínas Nucleares/metabolismo , Estrutura Terciária de Proteína/efeitos dos fármacos
17.
Elife ; 42015 Aug 10.
Artigo em Inglês | MEDLINE | ID: mdl-26258880

RESUMO

Swi2/Snf2 ATPases remodel substrates such as nucleosomes and transcription complexes to control a wide range of DNA-associated processes, but detailed structural information on the ATP-dependent remodeling reactions is largely absent. The single subunit remodeler Mot1 (modifier of transcription 1) dissociates TATA box-binding protein (TBP):DNA complexes, offering a useful system to address the structural mechanisms of Swi2/Snf2 ATPases. Here, we report the crystal structure of the N-terminal domain of Mot1 in complex with TBP, DNA, and the transcription regulator negative cofactor 2 (NC2). Our data show that Mot1 reduces DNA:NC2 interactions and unbends DNA as compared to the TBP:DNA:NC2 state, suggesting that Mot1 primes TBP:NC2 displacement in an ATP-independent manner. Electron microscopy and cross-linking data suggest that the Swi2/Snf2 domain of Mot1 associates with the upstream DNA and the histone fold of NC2, thereby revealing parallels to some nucleosome remodelers. This study provides a structural framework for how a Swi2/Snf2 ATPase interacts with its substrate DNA:protein complex.


Assuntos
DNA Fúngico/metabolismo , Encephalitozoon cuniculi/fisiologia , Fosfoproteínas/metabolismo , Fatores Associados à Proteína de Ligação a TATA/metabolismo , Proteína de Ligação a TATA-Box/metabolismo , Fatores de Transcrição/metabolismo , Cristalografia por Raios X , DNA Fúngico/química , Microscopia Eletrônica , Modelos Moleculares , Fosfoproteínas/química , Conformação Proteica , Fatores Associados à Proteína de Ligação a TATA/química , Proteína de Ligação a TATA-Box/química , Fatores de Transcrição/química
18.
Biomolecules ; 4(3): 774-94, 2014 Aug 06.
Artigo em Inglês | MEDLINE | ID: mdl-25102382

RESUMO

The 26S proteasome is an integral element of the ubiquitin-proteasome system(UPS) and, as such, responsible for regulated degradation of proteins in eukaryotic cells.It consists of the core particle, which catalyzes the proteolysis of substrates into small peptides, and the regulatory particle, which ensures specificity for a broad range of substrates.The heart of the regulatory particle is an AAA-ATPase unfoldase, which is surrounded by non-ATPase subunits enabling substrate recognition and processing. Cryo-EM-based studies revealed the molecular architecture of the 26S proteasome and its conformational rearrangements, providing insights into substrate recognition, commitment, deubiquitylation and unfolding. The cytosol proteasomal degradation of polyubiquitylated substrates is tuned by various associating cofactors, including deubiquitylating enzymes, ubiquitin ligases,shuttling ubiquitin receptors and the AAA-ATPase Cdc48/p97. Cdc48/p97 and its cofactors function upstream of the 26S proteasome, and their modular organization exhibits some striking analogies to the regulatory particle. In archaea PAN, the closest regulatory particle homolog and Cdc48 even have overlapping functions, underscoring their intricate relationship.Here, we review recent insights into the structure and dynamics of the 26S proteasome and its associated machinery, as well as our current structural knowledge on the Cdc48/p97 and its cofactors that function in the ubiquitin-proteasome system (UPS).


Assuntos
Adenosina Trifosfatases/metabolismo , Complexo de Endopeptidases do Proteassoma/metabolismo , Proteólise , Trifosfato de Adenosina/metabolismo , Animais , Complexo de Endopeptidases do Proteassoma/química , Conformação Proteica
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