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Nucleotide-Driven Triple-State Remodeling Of The AAA-ATPase Channel In The Activated Human 26S Proteasome

The proteasome is a sophisticated ATP-dependent molecular machine responsible for protein degradation in all eukaryotic cells. It remains elusive how conformational changes of the AAA-ATPase unfoldase in the regulatory particle (RP) control the gating of substrate-translocation channel to the proteolytic chamber of the core particle (CP). Here we report three alternative states of the ATP-{gamma}S-bound human proteasome, in which the CP gate is asymmetrically open, visualized by cryo-EM at near-atomic resolutions. Only four nucleotides are stably bound to the AAA-ATPase ring in the open-gate states. Concerted nucleotide exchange gives rise to a back-and-forth wobbling motion of the AAA-ATPase channel, coincident with remarkable transitions of their pore loops between the spiral staircase and saddle-shaped circle topologies. Gate opening in the CP is thus controlled with nucleotide-driven remodeling of the AAA-ATPase unfoldase. These findings demonstrate an elegant mechanism of allosteric coordination among sub-machines within the holoenzyme that is crucial for substrate translocation.

biochemistry

Stable Membrane Topologies Of Small Dual-Topology Membrane Proteins

The topologies of -helical membrane proteins are generally thought to be determined during their cotranslational insertion into the membrane. It is typically assumed that membrane topologies remain static after this process has ended. Recent findings, however, question this static view by suggesting that some parts of, or even the whole protein, can reorient in the membrane on a biologically relevant time scale. Here, we focus on anti-parallel homo-or hetero-dimeric Small Multidrug Resistance proteins, and examine whether the individual monomers can undergo reversible topological inversion (flip-flop) in the membrane until they are trapped in a fixed orientation by dimerization. By perturbing dimerization using various means, we show that the membrane topology of a monomer is unaffected by the presence or absence of its dimerization partner. Thus, membrane-inserted monomers attain their final topologies independently of dimerization, suggesting that wholesale topological inversion is an unlikely event in vivo.

biochemistry

Regulation Of Iron Homeostasis By SPAK-Dependent Modulation Of FBXL5 Stability

Intracellular iron homeostasis is regulated by a proteolytic switch whereby the E3 ubiquitin ligase FBXL5 targets iron regulatory proteins (IRPs) for ubiquitin-dependent degradation in iron-replete conditions while it is itself degraded during iron deficiency allowing IRPs to accumulate and regulate their downstream RNA targets. The cellular pathways that control FBXL5 degradation in low iron conditions are not well understood. Here, we report the identification of the STE20/SPS1-related proline-alanine-rich protein kinase (SPAK) as a novel regulator of FBXL5 stability. We find that SPAK, a kinase previously implicated in osmotic stress regulation, regulates intracellular iron homeostasis through its physical association with FBXL5. This role is dependent on its kinase activity as overexpression of constitutively active SPAK increases FBXL5 poly-ubiquitination and degradation. Through this work, we have discovered a novel role for SPAK that extends beyond its well-established function in salt homeostasis and raises the possibility for signaling crosstalk between iron homeostatic and osmotic regulatory pathways.

biochemistry

Characterization Of Copper Complex Nanoparticles Synthesized By Plant Polyphenols

In this paper a kind of copper oxide material of copper-polyphenols complex nanoparticles (Cu-P NPs) were synthesized by Cinnamomum pedunculatum leaves extract, which have different morphology and appearance compared with usual copper oxides Cu2O and CuO. For better understanding about this material, the Cu-P NPs were characterized using scanning electron microscopy (SEM), X-ray absorption spectroscopy (XAS), X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), and thermogravimetric analysis (TGA). It was found that synthesized Cu-P NPs were amorphous with spherical particles ranged from 80 to 500 nm. XAS data analysis indicated that the synthesized Cu-P NPs has different molecular structure with Cu2O and CuO. It is assumed that the copper ions chelated with polyphenol molecule. The nanoparticles showed a clear anti Escherichia coli activity in this study, and may also be used in fields of semiconductor, ceramic, catalyst, and sensor. This synthesis approach provided a novel route to manufacture copper oxide nanomaterial.

biochemistry

Quantitative Protein Topography Measurements By High Resolution Hydroxyl Radical Protein Footprinting Enable Accurate Molecular Model Selection

We report an integrated workflow that allows mass spectrometry-based high-resolution hydroxyl radical protein footprinting (HR-HRPF) measurements to accurately measure the absolute average solvent accessible surface area ( ) of amino acid side chains. This approach is based on application of multi-point HR-HRPF, electron-transfer dissociation (ETD) tandem MS (MS/MS) acquisition, measurement of effective radical doses by radical dosimetry, and proper normalization of the inherent reactivity of the amino acids. The accuracy of the resulting measurements was tested by using well-characterized protein models. Moreover, we demonstrated the ability to use measurements from HR-HRPF to differentiate molecular models of high accuracy (< 3[A] backbone RMSD) from models of lower accuracy (> 4[A] backbone RMSD). The ability of data from HR-HRPF to differentiate molecular model quality was found to be comparable to that of data obtained from X-ray crystal structures, indicating the accuracy and utility of HR-HRPF for evaluating the accuracy of computational models.

biochemistry

Physiological Assembly Of Functionally Active 30S Ribosomal Subunits From In Vitro Synthesized Parts

Synthetic ribosomes in vitro can facilitate engineering translation of novel polymers, identifying ribosome biogenesis central components, and paving the road to constructing replicating systems from defined biochemical components. Here, we report functional synthetic Escherichia coli 30S ribosomal subunits constructed using a defined, purified cell free system under physiological conditions. We test hypotheses about key components of natural ribosome biogenesis pathway as required for efficient function - including integration of 16S rRNA modification, cofactors facilitated ribosome assembly and protein synthesis in the same compartment in vitro. We observe ~17% efficiency for fully synthetic 30S and ~70% efficiency from in vitro transcribed 16S rRNA assembled with natural proteins. We observe up to 5 fold improvement over previous crude extracts. We suggest extending the minimal list of components required for central-dogma replication from the 151 gene products previously reported to at least 180 to allow the speed and accuracy of macromolecular synthesis to approach native E. coli values.

biochemistry

A thermostable Cas9 with increased lifetime in human plasma

CRISPR-Cas9 is a powerful technology that has enabled genome editing in a wide range of species. However, the currently developed Cas9 homologs all originate from mesophilic bacteria, making them susceptible to proteolytic degradation and unsuitable for applications requiring function at elevated temperatures. Here, we show that the Cas9 protein from the thermophilic bacterium Geobacillus stearothermophilus (GeoCas9) catalyzes RNA-guided DNA cleavage over a wide temperature range and has an enhanced protein lifetime in human plasma. GeoCas9 is active at temperatures up to 70{degrees}C, compared to 45{degrees}C for Streptococcus pyogenes Cas9 (SpyCas9), which greatly expands the temperature range for CRISPR-Cas9 applications. By comparing features of two closely related Geobacillus homologs, we created a variant of GeoCas9 that doubles the DNA target sequences that can be recognized by this system. We also found that GeoCas9 is an effective tool for editing mammalian genomes when delivered as a ribonucleoprotein (RNP) complex. Together with an increased lifetime in human plasma, the thermostable GeoCas9 provides the foundation for improved RNP delivery in vivo and expands the temperature range of CRISPR-Cas9.

biochemistry

Mechanistic Insights Into The Active Site And Allosteric Communication Pathways In Human Nonmuscle Myosin-2C

The cyclical interaction of myosin with F-actin and nucleotides is the basis for contractility of the actin cytoskeleton. Despite a generic, highly conserved motor domain, ATP turnover kinetics and their activation by F-actin vary greatly between myosins-2 isoforms. Here, we present a 2.25 [A] crystal structure of the human nonmuscle myosin-2C motor domain, one of the slowest myosins characterized. In combination with integrated mutagenesis, ensemble-solution kinetics, and molecular dynamics simulations approaches, this study reveals an allosteric communication pathway that connects the distal end of the motor domain with the active site. Genetic disruption of this pathways reduces nucleotide binding and release kinetics up to 85-fold and abolishes nonmuscle myosin-2 specific kinetic signatures. These results provide insights into structural changes in the myosin motor domain that are triggered upon F-actin binding and contribute critically to the mechanochemical behavior of stress fibers, actin arcs, and cortical actin-based structures.

biochemistry

Purification Of The Mammalian NgBR/hCIT cis-Prenyltransferase Complex: IdentificationOf A Conserved Carboxyterminal RxG Motif Crucial For Enzymatic Activity

Cis-Prenyltransferases (cisPTs) constitute a large family of enzymes conserved during evolution and present in all domains of life. In eukaryotes and archaea, cisPT is the first enzyme committed to the synthesis of dolichyl-phosphate (DolP). DolP is obligate lipid carrier in protein glycosylation reactions in mammals. The homodimeric bacterial enzyme, undecaprenyl diphosphate synthase (UPPS) generates 11 isoprene units and has been structurally and mechanistically characterized in great detail. Recently our group discovered that unlike UPPS, mammalian cisPT is a heteromer consisting of NgBR (NUS1) and hCIT (DHDDS) subunits and this composition has been confirmed in plants and fungal cisPTs. Here, we establish the first purification system for heteromeric cisPT and show that both NgBR and hCIT subunits function in catalysis and substrate binding. Finally, we identified a critical RxG sequence in the C-terminal tail of NgBR that is conserved and essential for enzyme activity across phyla.

biochemistry

Synthesis Of Extracellular Stable Gold Nanoparticles By Cupriavidus metallidurans CH34 Cells

The biogenic synthesis of metallic nanoparticles is of increasing interest. In this report, synthesis of gold nanoparticles by the model heavy metal-resistant strain Cupriavidus metallidurans CH34 and Escherichia coli strain MG1655 was studied. For the synthesis of AuNPs, bacterial cells and secretomes were incubated with Au(III) ions, revealing that only CH34 cells can produce dispersions of AuNPs. Comparative bioinformatic analysis of proteomes from both strains showed potential CH34 proteins that may be electron donors during reduction of extracellular Au(III) ions and for the biosynthesis of gold nuggets in nature. Powder X-ray diffraction demonstrated that biogenic AuNPs are composed of face-centered cubic gold with a crystallinity biased towards {111} planes. Transmission electron microscopy images showed that AuNPs morphology was dominated by triangular and decahedral nanostructures. EDX and FT-IR spectra showed the presence of sulfur and vibrations associated to the biogenic AuNPs. Based on these results, and analyses of previous genomic and proteomic data, a mechanism for extracellular gold reduction and synthesis of AuNPs by strain CH34 is proposed. Average AuNPs diameter was obtained by nanoparticle tracking analysis, dynamic light scattering and analysis of electron microscopy images. DLS studies showed that biogenic AuNPs colloids are stable after exposure to ultrasound, high ionic strength and extreme pH conditions, and revealed the presence of basic groups associated to the AuNPs surface. Electrophoretic and dynamic light scattering indicated that biogenic dispersions of AuNPs are stabilized by a steric mechanism. The AuNPs produced by C. metallidurans CH34 are not cytotoxic towards bacterial cells, in contrast to biogenic AgNPs. These stable non-toxic biogenic AuNPs have potential clinical applications including development of topic delivery formulations and optical biosensors.

biochemistry

Oligomeric States In Sodium Ion-Dependent Regulation Of Cyanobacterial Histidine Kinase-2

Two-component signal transduction systems (TCSs) consist of sensor histidine kinases and response regulators. TCSs mediate adaptation to environmental changes in bacteria, plants, fungi, and protists. Histidine kinase 2 (Hik2) is a sensor histidine kinase found in all known cyanobacteria and as chloroplast sensor kinase in eukaryotic algae and plants. Sodium ions have been shown to inhibit the autophosphorylation activity of Hik2 that precedes phosphoryl transfer to response regulators, but the mechanism of inhibition has not been determined. We report on the mechanism of Hik2 activation and inactivation probed by chemical crosslinking and size exclusion chromatography together with direct visualisation of the kinase using negative-stain transmission electron microscopy of single particles. We show that the functional form of Hik2 is a higher order oligomer such as a hexamer or octamer. Increased NaCl concentration converts the active hexamer into an inactive tetramer. Furthermore, the action of NaCl appears to be confined to the Hik2 kinase domain.\n\nIMPORTANCEBacteria sense change and respond to it by means of two-component regulatory systems. The sensor component is a protein that becomes covalently modified by a phosphate group on a histidine side chain. The response regulator accepts the phosphate group onto an aspartate, with structural and functional consequences, often for gene transcription. Histidine kinase 2 is a sensor of sodium ion concentration and redox potential, regulating transcription of genes for light-harvesting and reaction center proteins of photosynthesis in cyanobacteria and chloroplasts of algae and plants. Using radiolabeling, chemical crosslinking, chromatography and electron microscopy, we find that sodium ion concentration governs the oligomeric state of Histidine Kinase 2 and its phosphorylation by ATP.

biochemistry

Potential Mechanisms Linking SIRT Activity And Hypoxic 2-Hydroxyglutarate Generation: No Role For Direct Enzyme (De)acetylation

2-hydroxyglutarate (2-HG) is a hypoxic metabolite with potentially important epigenetic signaling roles. The mechanisms underlying 2-HG generation are poorly understood, but evidence suggests a potential regulatory role for the sirtuin family of lysine deacetylases. Thus, we hypothesized that the acetylation status of the major 2-HG-generating enzymes (isocitrate dehydrogenase (IDH), malate dehydrogenase (MDH) and lactate dehydrogenase (LDH)) may govern their 2-HG generating activity. In-vitro acetylation of these enzymes, with confirmation by western blotting, mass spectrometry, and reversibility by incubation with recombinant sirtuins, yielded no effect on 2-HG generating activity. In addition, while elevated 2-HG in hypoxia is associated with the activation of lysine deacetylases, we found that mice lacking mitochondrial SIRT3 exhibited hyperacetylation and elevated 2-HG. These data suggest there is no direct link between enzyme acetylation and 2-HG production. Furthermore, our observed effects of in-vitro acetylation on the canonical activities of IDH, MDH and LDH appeared to contrast sharply with previous findings wherein acetyl-mimetic lysine mutations resulted in inhibition of these enzymes. Overall these data suggest that a causal relationship should not be assumed, between acetylation of metabolic enzymes and their activities, canonical or otherwise.

biochemistry

Swapping Of Transmembrane Domains In The Epithelial Calcium Channel TRPV6

Tetrameric ion channels have either swapped or non-swapped arrangements of the S1-S4 and pore domains. Here we show that mutations in the transmembrane domain of TRPV6 can result in conversion from a domain-swapped to non-swapped fold. These results reveal structural determinants of domain swapping and raise the possibility that a single ion channel subtype can fold into either arrangement in vivo, affecting its function in normal or disease states.

biochemistry

Mutations In Disordered Regions Cause Disease By Creating Endocytosis Motifs

Mutations in intrinsically disordered regions (IDRs) of proteins can cause a wide spectrum of diseases. Since IDRs lack a fixed three-dimensional structure, the mechanism by which such mutations cause disease is often unknown. Here, we employ a proteomic screen to investigate the impact of mutations in IDRs on protein-protein interactions. We find that mutations in disordered cytosolic regions of three transmembrane proteins (GLUT1, ITPR1 and CACNA1H) lead to an increased binding of clathrins. In all three cases, the mutation creates a dileucine motif known to mediate clathrin-dependent trafficking. Follow-up experiments on GLUT1 (SLC2A1), a glucose transporter involved in GLUT1 deficiency syndrome, revealed that the mutated protein mislocalizes to intracellular compartments. A systematic analysis of other known disease-causing variants revealed a significant and specific overrepresentation of gained dileucine motifs in cytosolic tails of transmembrane proteins. Dileucine motif gains thus appear to be a recurrent cause of disease.

biochemistry

Translational Repression Of The Drosophila nanos mRNA Involves The RNA Helicase Belle And RNA Coating By Me31B And Trailer hitch

Translational repression of maternal mRNAs is an essential regulatory mechanism during early embryonic development. Repression of the Drosophila nanos mRNA, required for the formation of the anterior-posterior body axis, depends on the protein Smaug binding to two Smaug recognition elements (SREs) in the nanos 3 UTR. In a comprehensive mass-spectrometric analysis of the SRE-dependent repressor complex, we identified Smaug, Cup, Me31B, Trailer hitch, eIF4E and PABPC, in agreement with earlier data. As a novel component, the RNA-dependent ATPase Belle (DDX3) was found, and its involvement in deadenylation and repression of nanos was confirmed in vivo. Smaug, Cup and Belle bound stoichiometrically to the SREs, independently of RNA length. Binding of Me31B and Tral was also SRE-dependent, but their amounts were proportional to the length of the RNA and equimolar to each other. We suggest that coating of the RNA by a Me31B*Tral complex may be at the core of repression.

biochemistry

Characterizing The Structure-Function Relationship Of A Naturally-Occurring RNA Thermometer

A wide number of bacteria have been found to govern virulence and heat shock responses using temperature-sensing RNAs known as RNA thermometers. A prime example is the agsA thermometer known to regulate the production of the AgsA heat shock protein in Salmonella enterica using a \"fourU\" structural motif. Using the SHAPE-Seq RNA structure-probing method in vivo and in vitro, we found that the regulator functions by a subtle shift in equilibrium RNA structure populations that lead to a partial melting of the helix containing the ribosome binding site. We also demonstrate that ribosome binding to the agsA mRNA causes changes to the thermometer structure that appear to facilitate thermometer helix unwinding. These results demonstrate how subtle RNA structural changes can govern gene expression and illuminate the function of an important bacterial regulatory motif.

biochemistry

Structure Of Allium Lachrymatory Factor Synthase Elucidates Catalysis On Sulfenic Acid Substrate

Natural lachrymatory effects are invoked by small volatile S-oxide compounds. They are produced through alkene sulfenic acids by the action of lachrymatory factor synthase (LFS). Here we present the crystal structures of onion LFS (AcLFS) revealed in solute-free and two solute-stabilized forms. Each structure adopts a single seven-stranded helix-grip fold possessing an internal pocket. Mutagenesis analysis localized the active site to a layer near the bottom of the pocket, which is adjacent to the deduced key residues Arg71, Glu88, and Tyr114. Solute molecules visible on the active site have suggested that AcLFS accepts various small alcohol compounds as well as its natural substrate, and they inhibit this substrate according to their chemistry. Structural homologs have been found in the SRPBCC superfamily, and comparison of the active sites has demonstrated that the electrostatic potential unique to AcLFS could work in capturing the substrate in its specific state. Finally, we propose a rational catalytic mechanism based on intramolecular proton shuttling in which the microenvironment of AcLFS can bypass the canonical [1,4]-sigmatropic rearrangement principle established by microwave studies. Beyond revealing how AcLFS generates the lachrymatory compound, this study provides insights into the molecular machinery dealing with highly labile organosulfur species.\n\nSignificance statementCrushing of onion liberates a volatile compound, syn-propanethial S-oxide (PTSO), which causes lachrymatory effect on humans. We present the crystal structures of onion LFS (AcLFS), the enzyme responsible for natural production of PTSO. AcLFS features a barrel-like fold, and mutagenic and inhibitory analyses revealed that the key residues are present in the central pocket, harboring highly concentrated aromatic residues plus a dyad motif. The architecture of AcLFS is widespread among proteins with various biological functions, such as abscisic acid receptors and polyketide cyclases, and comparisons with these homologs indicate that unique steric and electronic properties maintain the pocket as a reaction compartment. We propose the molecular mechanism behind PTSO generation and shed light on biological decomposition of short-lived sulfur species.

biochemistry

A Reagentless Biosensor For mRNA: A New Tool To Study Transcription

Gene expression, catalysed by RNA polymerases, is one of the most fundamental processes in living cells. Yet, the means to study their activity are currently limited. The majority of methods to quantify mRNA are based upon initial purification of the nucleic acid. This leads to experimental inaccuracies and loss of product. Here, we describe the use of a reagentless mRNA fluorescent biosensor based upon the single stranded binding (SSB) protein. In this study, SSB showed similar binding properties to mRNA, to that of its native substrate, ssDNA. Furthermore, fluorescently labelled MDCC-SSB gave the same fluorescence response with both ssDNA and ssRNA, in a concentration dependent manner. When directly compared to RT-qPCR, we found the biosensor to be more reproducible with no product lost through purification. Therefore, the MDCC-SSB is a novel tool for comparative measurement of mRNA yield following in vitro transcription.

biochemistry