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1.
Int J Mol Sci ; 25(10)2024 May 09.
Article En | MEDLINE | ID: mdl-38791189

The membrane Fo factor of ATP synthase is highly sensitive to mutations in the proton half-channel leading to the functional blocking of the entire protein. To identify functionally important amino acids for the proton transport, we performed molecular dynamic simulations on the selected mutants of the membrane part of the bacterial FoF1-ATP synthase embedded in a native lipid bilayer: there were nine different mutations of a-subunit residues (aE219, aH245, aN214, aQ252) in the inlet half-channel. The structure proved to be stable to these mutations, although some of them (aH245Y and aQ252L) resulted in minor conformational changes. aH245 and aN214 were crucial for proton transport as they directly facilitated H+ transfer. The substitutions with nonpolar amino acids disrupted the transfer chain and water molecules or neighboring polar side chains could not replace them effectively. aE219 and aQ252 appeared not to be determinative for proton translocation, since an alternative pathway involving a chain of water molecules could compensate the ability of H+ transmembrane movement when they were substituted. Thus, mutations of conserved polar residues significantly affected hydration levels, leading to drastic changes in the occupancy and capacity of the structural water molecule clusters (W1-W3), up to their complete disappearance and consequently to the proton transfer chain disruption.


Escherichia coli , Molecular Dynamics Simulation , Mutation , Proton-Translocating ATPases , Protons , Escherichia coli/genetics , Proton-Translocating ATPases/chemistry , Proton-Translocating ATPases/genetics , Proton-Translocating ATPases/metabolism , Protein Subunits/chemistry , Protein Subunits/genetics , Protein Subunits/metabolism , Escherichia coli Proteins/chemistry , Escherichia coli Proteins/genetics , Escherichia coli Proteins/metabolism , Lipid Bilayers/chemistry , Lipid Bilayers/metabolism , Protein Conformation
2.
Int J Mol Sci ; 25(9)2024 Apr 28.
Article En | MEDLINE | ID: mdl-38732022

The molecular weight (MW) of an enzyme is a critical parameter in enzyme-constrained models (ecModels). It is determined by two factors: the presence of subunits and the abundance of each subunit. Although the number of subunits (NS) can potentially be obtained from UniProt, this information is not readily available for most proteins. In this study, we addressed this gap by extracting and curating subunit information from the UniProt database to establish a robust benchmark dataset. Subsequently, we propose a novel model named DeepSub, which leverages the protein language model and Bi-directional Gated Recurrent Unit (GRU), to predict NS in homo-oligomers solely based on protein sequences. DeepSub demonstrates remarkable accuracy, achieving an accuracy rate as high as 0.967, surpassing the performance of QUEEN. To validate the effectiveness of DeepSub, we performed predictions for protein homo-oligomers that have been reported in the literature but are not documented in the UniProt database. Examples include homoserine dehydrogenase from Corynebacterium glutamicum, Matrilin-4 from Mus musculus and Homo sapiens, and the Multimerins protein family from M. musculus and H. sapiens. The predicted results align closely with the reported findings in the literature, underscoring the reliability and utility of DeepSub.


Databases, Protein , Deep Learning , Protein Subunits , Protein Subunits/chemistry , Protein Subunits/metabolism , Animals , Humans , Protein Multimerization , Mice , Computational Biology/methods
3.
Bioorg Med Chem ; 106: 117733, 2024 May 15.
Article En | MEDLINE | ID: mdl-38704960

Development of selective or dual proteasome subunit inhibitors based on syringolin B as a scaffold is described. We focused our efforts on a structure-activity relationship study of inhibitors with various substituents at the 3-position of the macrolactam moiety of syringolin B analogue to evaluate whether this would be sufficient to confer subunit selectivity by using sets of analogues with hydrophobic, basic and acidic substituents, which were designed to target Met45, Glu53 and Arg45 embedded in the S1 subsite, respectively. The structure-activity relationship study using systematic analogues provided insight into the origin of the subunit-selective inhibitory activity. This strategy would be sufficient to confer subunit selectivity regarding ß5 and ß2 subunits.


Proteasome Endopeptidase Complex , Proteasome Inhibitors , Structure-Activity Relationship , Proteasome Endopeptidase Complex/metabolism , Proteasome Endopeptidase Complex/chemistry , Proteasome Inhibitors/pharmacology , Proteasome Inhibitors/chemistry , Proteasome Inhibitors/chemical synthesis , Humans , Peptides, Cyclic/chemistry , Peptides, Cyclic/pharmacology , Protein Subunits/antagonists & inhibitors , Protein Subunits/metabolism , Protein Subunits/chemistry , Molecular Structure
4.
Anal Chem ; 96(21): 8243-8248, 2024 May 28.
Article En | MEDLINE | ID: mdl-38733603

Native mass spectrometry (MS) continues to enjoy growing popularity as a means of providing a wealth of information on noncovalent biopolymer assemblies ranging from composition and binding stoichiometry to characterization of the topology of these assemblies. The latter frequently relies on supplementing MS measurements with limited fragmentation of the noncovalent complexes in the gas phase to identify the pairs of neighboring subunits. While this approach has met with much success in the past two decades, its implementation remains difficult (and the success record relatively modest) within one class of noncovalent assemblies: protein complexes in which at least one binding partner has multiple subunits cross-linked by disulfide bonds. We approach this problem by inducing chemical reduction of disulfide bonds under nondenaturing conditions in solution followed by native MS analysis with online buffer exchange to remove unconsumed reagents that are incompatible with the electrospray ionization process. While this approach works well with systems comprised of thiol-linked subunits that remain stable upon reduction of the disulfide bridges (such as immunoglobulins), chemical reduction frequently gives rise to species that are unstable (prone to aggregation). This problem is circumvented by taking advantage of the recently introduced cross-path reactive chromatography platform (XPRC), which allows the disulfide reduction to be carried out in-line, thereby minimizing the loss of metastable protein subunits and their noncovalent complexes with the binding partners prior to MS analysis. The feasibility of this approach is demonstrated using hemoglobin complexes with haptoglobin 1-1, a glycoprotein consisting of four polypeptide chains cross-linked by disulfide bonds.


Disulfides , Oxidation-Reduction , Disulfides/chemistry , Mass Spectrometry , Protein Subunits/chemistry , Multiprotein Complexes/chemistry , Multiprotein Complexes/metabolism
5.
Cell Rep ; 43(4): 114011, 2024 Apr 23.
Article En | MEDLINE | ID: mdl-38573854

Fatalska et al.1 use an interdisciplinary strategy to elucidate how an intrinsically disordered regulatory subunit of protein phosphatase 1 binds trimeric eIF2 and positions the phosphatase-substrate complex for dephosphorylation. As validation, they show that a disease mutation abolishes the interaction.


Eukaryotic Initiation Factor-2 , Protein Phosphatase 1 , Protein Phosphatase 1/metabolism , Humans , Eukaryotic Initiation Factor-2/metabolism , Intrinsically Disordered Proteins/metabolism , Intrinsically Disordered Proteins/chemistry , Protein Binding , Phosphorylation , Protein Subunits/metabolism , Protein Subunits/chemistry , Mutation
6.
Nature ; 629(8010): 219-227, 2024 May.
Article En | MEDLINE | ID: mdl-38570683

The Integrator complex can terminate RNA polymerase II (Pol II) in the promoter-proximal region of genes. Previous work has shed light on how Integrator binds to the paused elongation complex consisting of Pol II, the DRB sensitivity-inducing factor (DSIF) and the negative elongation factor (NELF) and how it cleaves the nascent RNA transcript1, but has not explained how Integrator removes Pol II from the DNA template. Here we present three cryo-electron microscopy structures of the complete Integrator-PP2A complex in different functional states. The structure of the pre-termination complex reveals a previously unresolved, scorpion-tail-shaped INTS10-INTS13-INTS14-INTS15 module that may use its 'sting' to open the DSIF DNA clamp and facilitate termination. The structure of the post-termination complex shows that the previously unresolved subunit INTS3 and associated sensor of single-stranded DNA complex (SOSS) factors prevent Pol II rebinding to Integrator after termination. The structure of the free Integrator-PP2A complex in an inactive closed conformation2 reveals that INTS6 blocks the PP2A phosphatase active site. These results lead to a model for how Integrator terminates Pol II transcription in three steps that involve major rearrangements.


Cryoelectron Microscopy , Models, Molecular , Protein Phosphatase 2 , RNA Polymerase II , RNA Polymerase II/metabolism , RNA Polymerase II/chemistry , RNA Polymerase II/ultrastructure , Protein Phosphatase 2/metabolism , Protein Phosphatase 2/chemistry , Protein Phosphatase 2/ultrastructure , Transcription Termination, Genetic , Humans , Transcription Factors/metabolism , Transcription Factors/chemistry , Protein Binding , Transcriptional Elongation Factors/metabolism , Transcriptional Elongation Factors/chemistry , Nuclear Proteins/metabolism , Nuclear Proteins/chemistry , Nuclear Proteins/ultrastructure , Protein Subunits/metabolism , Protein Subunits/chemistry
7.
Photosynth Res ; 160(2-3): 87-96, 2024 Jun.
Article En | MEDLINE | ID: mdl-38625595

The primary photochemical reaction of photosynthesis in green sulfur bacteria occurs in the homodimer PscA core proteins by a special chlorophyll pair. The light induced excited state of the special pair producing P840+ is rapidly reduced by electron transfer from one of the two PscC subunits. Molecular dynamics (MD) simulations are combined with bioinformatic tools herein to provide structural and dynamic insight into the complex between the two PscA core proteins and the two PscC subunits. The microscopic dynamic model involves extensive sampling at atomic resolution and at a cumulative time-scale of 22µs and reveals well defined protein-protein interactions. The membrane complex is composed of the two PscA and the two PscC subunits and macroscopic connections are revealed within a putative electron transfer pathway from the PscC subunit to the special pair P840 located within the PscA subunits. Our results provide a structural basis for understanding the electron transport to the homodimer RC of the green sulfur bacteria. The MD based approach can provide the basis to further probe the PscA-PscC complex dynamics and observe electron transfer therein at the quantum level. Furthermore, the transmembrane helices of the different PscC subunits exert distinct dynamics in the complex.


Bacterial Proteins , Chlorobi , Molecular Dynamics Simulation , Electron Transport , Chlorobi/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Protein Subunits/metabolism , Protein Subunits/chemistry , Photosynthesis , Chlorophyll/metabolism , Light-Harvesting Protein Complexes/metabolism , Light-Harvesting Protein Complexes/chemistry
8.
Biomol NMR Assign ; 18(1): 85-91, 2024 Jun.
Article En | MEDLINE | ID: mdl-38642265

Ricin is a potent plant toxin that targets the eukaryotic ribosome by depurinating an adenine from the sarcin-ricin loop (SRL), a highly conserved stem-loop of the rRNA. As a category-B agent for bioterrorism it is a prime target for therapeutic intervention with antibodies and enzyme blocking inhibitors since no effective therapy exists for ricin. Ricin toxin A subunit (RTA) depurinates the SRL by binding to the P-stalk proteins at a remote site. Stimulation of the N-glycosidase activity of RTA by the P-stalk proteins has been studied extensively by biochemical methods and by X-ray crystallography. The current understanding of RTA's depurination mechanism relies exclusively on X-ray structures of the enzyme in the free state and complexed with transition state analogues. To date we have sparse evidence of conformational dynamics and allosteric regulation of RTA activity that can be exploited in the rational design of inhibitors. Thus, our primary goal here is to apply solution NMR techniques to probe the residue specific structural and dynamic coupling active in RTA as a prerequisite to understand the functional implications of an allosteric network. In this report we present de novo sequence specific amide and sidechain methyl chemical shift assignments of the 267 residue RTA in the free state and in complex with an 11-residue peptide (P11) representing the identical C-terminal sequence of the ribosomal P-stalk proteins. These assignments will facilitate future studies detailing the propagation of binding induced conformational changes in RTA complexed with inhibitors, antibodies, and biologically relevant targets.


Nitrogen Isotopes , Nuclear Magnetic Resonance, Biomolecular , Ricin , Ricin/chemistry , Protein Subunits/chemistry , Amino Acid Sequence
9.
Biophys J ; 123(10): 1274-1288, 2024 May 21.
Article En | MEDLINE | ID: mdl-38627970

The inositol 1,4,5-triphosphate receptor (IP3R) mediates Ca release in many cell types and is pivotal to a wide range of cellular processes. High-resolution cryoelectron microscopy studies have provided new structural details of IP3R type 1 (IP3R1), showing that channel function is determined by the movement of various domains within and between each of its four subunits. Channel properties are regulated by ligands, such as Ca and IP3, which bind at specific sites and control the interactions between these domains. However, it is not known how the various ligand-binding sites on IP3R1 interact to control the opening of the channel. In this study, we present a coarse-grained model of IP3R1 that accounts for the channel architecture and the location of specific Ca- and IP3-binding sites. This computational model accounts for the domain-domain interactions within and between the four subunits that form IP3R1, and it also describes how ligand binding regulates these interactions. Using a kinetic model, we explore how two Ca-binding sites on the cytosolic side of the channel interact with the IP3-binding site to regulate the channel open probability. Our primary finding is that the bell-shaped open probability of IP3R1 provides constraints on the relative strength of these regulatory binding sites. In particular, we argue that a specific Ca-binding site, whose function has not yet been established, is very likely a channel antagonist. Additionally, we apply our model to show that domain-domain interactions between neighboring subunits exert control over channel cooperativity and dictate the nonlinear response of the channel to Ca concentration. This suggests that specific domain-domain interactions play a pivotal role in maintaining the channel's stability, and a disruption of these interactions may underlie disease states associated with Ca dysregulation.


Calcium , Inositol 1,4,5-Trisphosphate Receptors , Inositol 1,4,5-Trisphosphate , Models, Molecular , Inositol 1,4,5-Trisphosphate Receptors/metabolism , Inositol 1,4,5-Trisphosphate Receptors/chemistry , Calcium/metabolism , Inositol 1,4,5-Trisphosphate/metabolism , Inositol 1,4,5-Trisphosphate/chemistry , Binding Sites , Protein Domains , Kinetics , Protein Binding , Computer Simulation , Protein Subunits/metabolism , Protein Subunits/chemistry
10.
J Mol Biol ; 436(10): 168568, 2024 May 15.
Article En | MEDLINE | ID: mdl-38583515

Porphyromonas gingivalis, an anaerobic CFB (Cytophaga, Fusobacterium, and Bacteroides) group bacterium, is the keystone pathogen of periodontitis and has been implicated in various systemic diseases. Increased antibiotic resistance and lack of effective antibiotics necessitate a search for new intervention strategies. Here we report a 3.5 Å resolution cryo-EM structure of P. gingivalis RNA polymerase (RNAP). The structure displays new structural features in its ω subunit and multiple domains in ß and ß' subunits, which differ from their counterparts in other bacterial RNAPs. Superimpositions with E. coli RNAP holoenzyme and initiation complex further suggest that its ω subunit may contact the σ4 domain, thereby possibly contributing to the assembly and stabilization of initiation complexes. In addition to revealing the unique features of P. gingivalis RNAP, our work offers a framework for future studies of transcription regulation in this important pathogen, as well as for structure-based drug development.


Bacterial Proteins , DNA-Directed RNA Polymerases , Porphyromonas gingivalis , Bacterial Proteins/chemistry , Cryoelectron Microscopy , DNA-Directed RNA Polymerases/chemistry , Escherichia coli , Models, Molecular , Porphyromonas gingivalis/enzymology , Protein Conformation , Protein Subunits/chemistry
11.
Nature ; 628(8008): 657-663, 2024 Apr.
Article En | MEDLINE | ID: mdl-38509367

In response to pathogen infection, gasdermin (GSDM) proteins form membrane pores that induce a host cell death process called pyroptosis1-3. Studies of human and mouse GSDM pores have revealed the functions and architectures of assemblies comprising 24 to 33 protomers4-9, but the mechanism and evolutionary origin of membrane targeting and GSDM pore formation remain unknown. Here we determine a structure of a bacterial GSDM (bGSDM) pore and define a conserved mechanism of pore assembly. Engineering a panel of bGSDMs for site-specific proteolytic activation, we demonstrate that diverse bGSDMs form distinct pore sizes that range from smaller mammalian-like assemblies to exceptionally large pores containing more than 50 protomers. We determine a cryo-electron microscopy structure of a Vitiosangium bGSDM in an active 'slinky'-like oligomeric conformation and analyse bGSDM pores in a native lipid environment to create an atomic-level model of a full 52-mer bGSDM pore. Combining our structural analysis with molecular dynamics simulations and cellular assays, our results support a stepwise model of GSDM pore assembly and suggest that a covalently bound palmitoyl can leave a hydrophobic sheath and insert into the membrane before formation of the membrane-spanning ß-strand regions. These results reveal the diversity of GSDM pores found in nature and explain the function of an ancient post-translational modification in enabling programmed host cell death.


Gasdermins , Myxococcales , Cryoelectron Microscopy , Gasdermins/chemistry , Gasdermins/metabolism , Gasdermins/ultrastructure , Hydrophobic and Hydrophilic Interactions , Membrane Lipids/chemistry , Membrane Lipids/metabolism , Molecular Dynamics Simulation , Myxococcales/chemistry , Myxococcales/cytology , Myxococcales/ultrastructure , Protein Structure, Quaternary , Protein Subunits/chemistry , Protein Subunits/metabolism , Proteolysis , Pyroptosis
12.
Nature ; 628(8006): 212-220, 2024 Apr.
Article En | MEDLINE | ID: mdl-38509361

RAD51 is the central eukaryotic recombinase required for meiotic recombination and mitotic repair of double-strand DNA breaks (DSBs)1,2. However, the mechanism by which RAD51 functions at DSB sites in chromatin has remained elusive. Here we report the cryo-electron microscopy structures of human RAD51-nucleosome complexes, in which RAD51 forms ring and filament conformations. In the ring forms, the N-terminal lobe domains (NLDs) of RAD51 protomers are aligned on the outside of the RAD51 ring, and directly bind to the nucleosomal DNA. The nucleosomal linker DNA that contains the DSB site is recognized by the L1 and L2 loops-active centres that face the central hole of the RAD51 ring. In the filament form, the nucleosomal DNA is peeled by the RAD51 filament extension, and the NLDs of RAD51 protomers proximal to the nucleosome bind to the remaining nucleosomal DNA and histones. Mutations that affect nucleosome-binding residues of the RAD51 NLD decrease nucleosome binding, but barely affect DNA binding in vitro. Consistently, yeast Rad51 mutants with the corresponding mutations are substantially defective in DNA repair in vivo. These results reveal an unexpected function of the RAD51 NLD, and explain the mechanism by which RAD51 associates with nucleosomes, recognizes DSBs and forms the active filament in chromatin.


Cryoelectron Microscopy , DNA Breaks, Double-Stranded , Nucleosomes , Rad51 Recombinase , Saccharomyces cerevisiae Proteins , Humans , DNA/chemistry , DNA/metabolism , DNA/ultrastructure , DNA Repair/genetics , Nucleosomes/chemistry , Nucleosomes/metabolism , Nucleosomes/ultrastructure , Protein Subunits/chemistry , Protein Subunits/metabolism , Rad51 Recombinase/chemistry , Rad51 Recombinase/metabolism , Rad51 Recombinase/ultrastructure , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Mutation , Protein Domains , Histones/chemistry , Histones/metabolism , Histones/ultrastructure , Protein Binding
13.
FEBS Lett ; 598(8): 875-888, 2024 Apr.
Article En | MEDLINE | ID: mdl-38553946

Mammalian Ca2+-dependent Slo K+ channels can stably associate with auxiliary γ subunits which fundamentally alter their behavior. By a so far unknown mechanism, the four γ subunits reduce the need for voltage-dependent activation and, thereby, allow Slo to open independently of an action potential. Here, using cryo-EM, we reveal how the transmembrane helix of γ1/LRRC26 binds and presumably stabilizes the activated voltage-sensor domain of Slo1. The activation is further enhanced by an intracellular polybasic stretch which locally changes the charge gradient across the membrane. Our data provide a possible explanation for Slo1 regulation by the four γ subunits and also their different activation efficiencies. This suggests a novel activation mechanism of voltage-gated ion channels by auxiliary subunits.


Cryoelectron Microscopy , Large-Conductance Calcium-Activated Potassium Channel alpha Subunits , Protein Subunits , Humans , Large-Conductance Calcium-Activated Potassium Channel alpha Subunits/metabolism , Large-Conductance Calcium-Activated Potassium Channel alpha Subunits/chemistry , Large-Conductance Calcium-Activated Potassium Channel alpha Subunits/genetics , Protein Subunits/metabolism , Protein Subunits/chemistry , Animals , Ion Channel Gating , Models, Molecular , HEK293 Cells , Protein Binding , Protein Domains
14.
J Biol Chem ; 300(3): 105751, 2024 Mar.
Article En | MEDLINE | ID: mdl-38354779

Eukaryotic DNA clamp is a trimeric protein featuring a toroidal ring structure that binds DNA on the inside of the ring and multiple proteins involved in DNA transactions on the outside. Eukaryotes have two types of DNA clamps: the replication clamp PCNA and the checkpoint clamp RAD9-RAD1-HUS1 (9-1-1). 9-1-1 activates the ATR-CHK1 pathway in DNA damage checkpoint, regulating cell cycle progression. Structure of 9-1-1 consists of two moieties: a hetero-trimeric ring formed by PCNA-like domains of three subunits and an intrinsically disordered C-terminal region of the RAD9 subunit, called RAD9 C-tail. The RAD9 C-tail interacts with the 9-1-1 ring and disrupts the interaction between 9-1-1 and DNA, suggesting a negative regulatory role for this intramolecular interaction. In contrast, RHINO, a 9-1-1 binding protein, interacts with both RAD1 and RAD9 subunits, positively regulating checkpoint activation by 9-1-1. This study presents a biochemical and structural analysis of intra- and inter-molecular interactions on the 9-1-1 ring. Biochemical analysis indicates that RAD9 C-tail binds to the hydrophobic pocket on the PCNA-like domain of RAD9, implying that the pocket is involved in multiple protein-protein interactions. The crystal structure of the 9-1-1 ring in complex with a RHINO peptide reveals that RHINO binds to the hydrophobic pocket of RAD9, shedding light on the RAD9-binding motif. Additionally, the study proposes a structural model of the 9-1-1-RHINO quaternary complex. Together, these findings provide functional insights into the intra- and inter-molecular interactions on the front side of RAD9, elucidating the roles of RAD9 C-tail and RHINO in checkpoint activation.


Carrier Proteins , Cell Cycle Proteins , Multiprotein Complexes , Protein Subunits , Humans , Carrier Proteins/metabolism , Cell Cycle Proteins/chemistry , Cell Cycle Proteins/metabolism , Checkpoint Kinase 1 , DNA/metabolism , DNA Damage , DNA Repair , Hydrophobic and Hydrophilic Interactions , Multiprotein Complexes/chemistry , Multiprotein Complexes/metabolism , Proliferating Cell Nuclear Antigen/metabolism , Protein Subunits/chemistry , Protein Subunits/metabolism , Protein Domains
15.
Biomol NMR Assign ; 18(1): 27-31, 2024 Jun.
Article En | MEDLINE | ID: mdl-38334938

Mediator complex is a key component that bridges various transcription activators and RNA polymerase during eukaryotic transcription initiation. The Arabidopsis thaliana Med25 (aMed25), a subunit of the Mediator complex, plays important roles in regulating hormone signaling, biotic and abiotic stress responses and plant development by interacting with a variety of transcription factors through its activator-interacting domain (ACID). However, the recognition mechanism of aMed25-ACID for various transcription factors remains unknown. Here, we report the nearly complete 1H, 13C, and 15N backbone and side chain resonance assignments of aMED25-ACID (residues 551-681). TALOS-N analysis revealed that aMED25-ACID structure is comprised of three α-helices and seven ß-strands, which lacks the C-terminal α-helix existing in the human MED25-ACID. This study lays a foundation for further research on the structure-function relationship of aMED25-ACID.


Arabidopsis Proteins , Arabidopsis , Mediator Complex , Nuclear Magnetic Resonance, Biomolecular , Protein Domains , Arabidopsis Proteins/chemistry , Arabidopsis Proteins/metabolism , Arabidopsis/chemistry , Arabidopsis/metabolism , Mediator Complex/chemistry , Mediator Complex/metabolism , Protein Subunits/chemistry , Protein Subunits/metabolism , Trans-Activators
16.
J Biol Chem ; 300(3): 105729, 2024 Mar.
Article En | MEDLINE | ID: mdl-38336296

RNase P and RNase mitochondrial RNA processing (MRP) are ribonucleoproteins (RNPs) that consist of a catalytic RNA and a varying number of protein cofactors. RNase P is responsible for precursor tRNA maturation in all three domains of life, while RNase MRP, exclusive to eukaryotes, primarily functions in rRNA biogenesis. While eukaryotic RNase P is associated with more protein cofactors and has an RNA subunit with fewer auxiliary structural elements compared to its bacterial cousin, the double-anchor precursor tRNA recognition mechanism has remarkably been preserved during evolution. RNase MRP shares evolutionary and structural similarities with RNase P, preserving the catalytic core within the RNA moiety inherited from their common ancestor. By incorporating new protein cofactors and RNA elements, RNase MRP has established itself as a distinct RNP capable of processing ssRNA substrates. The structural information on RNase P and MRP helps build an evolutionary trajectory, depicting how emerging protein cofactors harmonize with the evolution of RNA to shape different functions for RNase P and MRP. Here, we outline the structural and functional relationship between RNase P and MRP to illustrate the coevolution of RNA and protein cofactors, a key driver for the extant, diverse RNP world.


Endoribonucleases , Evolution, Molecular , Protein Subunits , RNA, Catalytic , Ribonuclease P , Coenzymes , Endoribonucleases/chemistry , Endoribonucleases/metabolism , Protein Subunits/chemistry , Protein Subunits/metabolism , Ribonuclease P/chemistry , Ribonuclease P/metabolism , RNA Processing, Post-Transcriptional , RNA, Catalytic/genetics , RNA, Catalytic/metabolism , RNA, Transfer/genetics , RNA, Transfer/metabolism , Substrate Specificity , Eukaryota/enzymology
17.
Nature ; 627(8002): 189-195, 2024 Mar.
Article En | MEDLINE | ID: mdl-38355798

Phagocyte NADPH oxidase, a protein complex with a core made up of NOX2 and p22 subunits, is responsible for transferring electrons from intracellular NADPH to extracellular oxygen1. This process generates superoxide anions that are vital for killing pathogens1. The activation of phagocyte NADPH oxidase requires membrane translocation and the binding of several cytosolic factors2. However, the exact mechanism by which cytosolic factors bind to and activate NOX2 is not well understood. Here we present the structure of the human NOX2-p22 complex activated by fragments of three cytosolic factors: p47, p67 and Rac1. The structure reveals that the p67-Rac1 complex clamps onto the dehydrogenase domain of NOX2 and induces its contraction, which stabilizes the binding of NADPH and results in a reduction of the distance between the NADPH-binding domain and the flavin adenine dinucleotide (FAD)-binding domain. Furthermore, the dehydrogenase domain docks onto the bottom of the transmembrane domain of NOX2, which reduces the distance between FAD and the inner haem. These structural rearrangements might facilitate the efficient transfer of electrons between the redox centres in NOX2 and lead to the activation of phagocyte NADPH oxidase.


NADPH Oxidase 2 , Phagocytes , Humans , Electrons , Enzyme Activation , Flavin-Adenine Dinucleotide/metabolism , Heme/chemistry , Heme/metabolism , NADP/metabolism , NADPH Oxidase 2/chemistry , NADPH Oxidase 2/metabolism , Phagocytes/enzymology , Protein Domains , Protein Subunits/chemistry , Protein Subunits/metabolism , Superoxides/metabolism , Protein Binding
18.
Structure ; 32(4): 393-399.e3, 2024 Apr 04.
Article En | MEDLINE | ID: mdl-38237595

F1Fo ATP synthase interchanges phosphate transfer energy and proton motive force via a rotary catalytic mechanism and isolated F1-ATPase subcomplexes can also hydrolyze ATP to generate rotation of their central γ rotor subunit. As ATP is hydrolyzed, the F1-ATPase cycles through a series of conformational states that mediates unidirectional rotation of the rotor. However, even in the absence of a rotor, the α and ß subunits are still able to pass through a series of conformations, akin to those that generate rotation. Here, we use cryoelectron microscopy to establish the structures of these rotorless states. These structures indicate that cooperativity in this system is likely mediated by contacts between the ß subunit lever domains, irrespective of the presence of the γ rotor subunit. These findings provide insight into how long-range information may be transferred in large biological systems.


Adenosine Triphosphatases , Adenosine Triphosphate , Hydrolysis , Cryoelectron Microscopy , Protein Subunits/chemistry , Protein Conformation , Rotation
19.
Food Chem ; 441: 138371, 2024 May 30.
Article En | MEDLINE | ID: mdl-38218148

The qualities of wheat dough are influenced by the high-molecular-weight glutenin subunits (HMW-GS), a critical component of wheat gluten protein. However, it is still unknown how HMW-GS silencing affects the aggregation characteristics of dough. Two groups of near-isogenic wheat were used to study the effects of HMW-GS silencing on dough aggregation characteristics, dough texture characteristics, and dough microstructure. It was observed that the content of gliadin in LH-11 strain significantly increased compared to the wild-type (WT). Additionally, the amount of glutenin macropolymer and the glutenin/gliadin both decreased. The aggregation characteristics and rheological characteristics of the dough in LH-11 strain were significantly reduced, and the content of ß-sheet in the dough was significantly reduced. The HMW-GS silencing resulted in a reduction in the aggregation of the gluten network in the dough, which related to the alteration of the secondary and microstructure of the gluten.


Gliadin , Glutens , Gliadin/metabolism , Molecular Weight , Glutens/chemistry , Triticum/chemistry , Flour , Protein Subunits/chemistry
20.
J Biol Chem ; 300(1): 105576, 2024 Jan.
Article En | MEDLINE | ID: mdl-38110033

The sixth family phosphodiesterases (PDE6) are principal effector enzymes of the phototransduction cascade in rods and cones. Maturation of nascent PDE6 protein into a functional enzyme relies on a coordinated action of ubiquitous chaperone HSP90, its specialized cochaperone aryl hydrocarbon receptor-interacting protein-like 1 (AIPL1), and the regulatory Pγ-subunit of PDE6. Deficits in PDE6 maturation and function underlie severe visual disorders and blindness. Here, to elucidate the roles of HSP90, AIPL1, and Pγ in the maturation process, we developed the heterologous expression system of human cone PDE6C in insect cells allowing characterization of the purified enzyme. We demonstrate that in the absence of Pγ, HSP90, and AIPL1 convert the inactive and aggregating PDE6C species into dimeric PDE6C that is predominantly misassembled. Nonetheless, a small fraction of PDE6C is properly assembled and fully functional. From the analysis of mutant mice that lack both rod Pγ and PDE6C, we conclude that, in contrast to the cone enzyme, no maturation of rod PDE6AB occurs in the absence of Pγ. Co-expression of PDE6C with AIPL1 and Pγ in insect cells leads to a fully mature enzyme that is equivalent to retinal PDE6. Lastly, using immature PDE6C and purified chaperone components, we reconstituted the process of the client maturation in vitro. Based on this analysis we propose a scheme for the PDE6 maturation process.


Cyclic Nucleotide Phosphodiesterases, Type 6 , Retinal Cone Photoreceptor Cells , Animals , Humans , Mice , Adaptor Proteins, Signal Transducing/metabolism , Blindness/genetics , Cell Line , Cyclic Nucleotide Phosphodiesterases, Type 6/chemistry , Cyclic Nucleotide Phosphodiesterases, Type 6/deficiency , Cyclic Nucleotide Phosphodiesterases, Type 6/genetics , Cyclic Nucleotide Phosphodiesterases, Type 6/metabolism , HSP90 Heat-Shock Proteins/metabolism , Mutation , Protein Multimerization , Protein Subunits/chemistry , Protein Subunits/deficiency , Protein Subunits/genetics , Protein Subunits/metabolism , Retinal Cone Photoreceptor Cells/chemistry , Retinal Cone Photoreceptor Cells/metabolism
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