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A Primase-Induced Conformational Switch Controls the Stability of the Bacterial Replisome

Recent studies of bacterial DNA replication have led to a picture of the replisome as an entity that freely exchanges DNA polymerases and displays intermittent coupling between the helicase and polymerase(s). Challenging the textbook model of the polymerase holoenzyme acting as a stable complex coordinating the replisome, these observations suggest a role of the helicase as the central organizing hub. We show here that the molecular origin of this newly-found plasticity lies in the >400-fold increase in strength of the interaction between the polymerase holoenzyme and the replicative helicase upon association of the primase with the replisome. By combining in vitro ensemble-averaged and single-molecule assays, we demonstrate that this conformational switch operates during replication and promotes recruitment of multiple holoenzymes at the fork. Our observations provide a molecular mechanism for polymerase exchange and offer a revised model for the replication reaction that emphasizes its stochasticity.

biochemistry

Covalent Aurora A regulation by the metabolic integrator coenzyme A

Aurora A is a cell cycle protein kinase implicated in multiple human cancers, and several Aurora A-specific kinase inhibitors have progressed into clinical trials. In this study, we report structural and cellular analysis of a novel biochemical mode of Aurora A inhibition, which occurs through reversible covalent interaction with the universal metabolic integrator coenzyme A (CoA). Mechanistically, the CoA 3-phospho ADP moiety interacts with Thr 217, an Aurora A selectivity filter, which permits the formation of an unprecedented covalent bond with Cys 290 in the kinase activation segment, lying some 15 [A] away. CoA modification (CoAlation) of endogenous Aurora A is rapidly induced by oxidative stresses at Cys 290 in human cells, and microinjection of CoA into mouse embryos perturbs meitoic spindle formation and chromosome alignment. Aurora A regulation by CoA reveals how targeting of Aurora A might be accomplished in the future by development of a double-anchored covalent inhibitor.

biochemistry

The iPSC proteomic compendium

Induced pluripotent stem cell (iPSC) technology holds great potential for therapeutic and research purposes. The Human Induced Pluripotent Stem Cell Initiative (HipSci) was established to generate a panel of high-quality iPSCs, from healthy and disease cohorts, with accompanying multi-omics and phenotypic data. Here, we present a proteomic analysis of 217 HipSci iPSC lines obtained from 163 donors.\n\nThis dataset provides a comprehensive proteomic map of iPSCs, identifying >16,000 protein groups. We analyse how the expression profiles of proteins involved in cell cycle, metabolism and DNA repair contribute to key features of iPSC biology and we identify potential new regulators of the primed pluripotent state. To facilitate access, all these data have been integrated into the Encyclopedia of Proteome Dynamics (www.peptracker.com/epd), where it can be browsed interactively. Additionally, we generated an iPSC specific spectral library for DIA which we deposited in PRIDE along with the raw and processed mass-spectrometry data.

biochemistry

Structural insights into substrate recognition by the SOCS2 E3 ubiquitin ligase

The suppressor of cytokine signaling 2 (SOCS2) acts as substrate recognition subunit of a Cullin5 E3 ubiquitin ligase complex. SOCS2 binds to phosphotyrosine-modified epitopes as degrons for ubiquitination and proteasomal degradation, yet the molecular basis of substrate recognition has remained elusive. We solved cocrystal structures of SOCS2-ElonginB-ElonginC in complex with phosphorylated peptides from substrates growth hormone receptor (GHR-pY595) and erythropoietin receptor (EpoR-pY426) at 1.98 A{square} and 2.69 A{square}, respectively. Both peptides bind in an extended conformation recapitulating the canonical SH2 domain-pY pose, yet capture different conformations of the EF loop via specific hydrophobic interactions. The flexible BG loop, for the first time fully defined in the electron density, does not contact the substrate degrons directly. Cancer-associated SNPs located around the pY pocket weaken substrate-binding affinity in biophysical assays. Our findings reveal insights into substrate recognition and specificity by SOCS2, and provide a blueprint for small molecule ligand design.

biochemistry

Relationship between epicardial and perivascular fatty tissue and adipokine-cytokine level in coronary artery disease patients

The aim of this study was to determine the relationship between the thickness of EAT and PVAT and the adipokine-cytokine profile of patients with coronary heart disease, which can be of significant importance for predicting the course of CVD. 84 patients with CVD, were assessed and divided into two groups based on the presence of visceral obesity (VO). In VO patients, the thickness of the epicardial deposits of the left and right ventricles were 1.75 and 1.43 times greater, respectively, than in patients without VO. For patients with VO, the prevalence of the volume of the left anterior descending artery was 10% higher, and the middle third of the envelope artery was 28% higher, when compared to patients without VO. When evaluating inflammatory status, it was established that the concentration of TNF- and IL-1{beta}, leptin in the blood serum of patients with VO exceeded the values of patients without VO. Level of proinflammatory IL-10 was 2-times lower in patients with VO. The findings of this study show that the increase of EAT and PVAT are independent risk factors of CVD, as well as a possible model for the assessment of drug effectiveness for CVD.

biochemistry

FlexiBAC: a versatile, open-source baculovirus vector system for protein expression, secretion, and proteolytic processing

Baculovirus-mediated expression in insect cells is a powerful approach for protein production. However, many existing methods are time consuming, offer limited options for protein tagging, and are unsuitable for secreted proteins requiring proteolytic maturation, such as TGF-{beta} family growth factors. To overcome these limitations, we engineered \"FlexiBAC\", a system that simplifies baculovirus production and permits furin-driven proteolytic maturation of targets. This system allows recombinant baculovirus formation inside insect cells and reduces the time between initial cloning and protein production to 13 days. FlexiBAC includes 146 shuttle vectors that append combinations of purification tags, fluorescent markers, proteolytic cleavage sites, trafficking signals, and chemical conjugation tags to the termini of the target protein. We demonstrate that this system can be used to produce high levels of mature, active forms of TGF-{beta} family growth factors, such as Activin A, as well as other proteins that are typically difficult to reconstitute, such as proteins rich in coiled-coil, low complexity, and disordered domains.

biochemistry

Chemo-mechanical Coupling in the Transport Cycle of a Type II ABC Transporter

AT P -binding cassette (ABC) transporters are integral membrane proteins that translocate a wide range of substrates across biological membranes, harnessing free energy from the binding and hydrolysis of ATP. To understand the mechanism of the inward- to outward-facing transition that could be achieved by tight regulation of ATPase activity through extensive conformational changes of the protein, we applied template-based iterative all-atom molecular dynamics (MD) simulation to the heme ABC transporter BhuUV-T. The simulations, together with biased MDs, predict two new conformations of the protein, namely, occluded (Occ) and outward-facing (OF) conformations. The comparison between the inward-facing crystal structure and the predicted two structures shows atomic details of the gating motions at the transmembrane helices and dimerization of the nucleotide-binding domains (NBDs). The MD simulations further reveal a novel role of the ABC signature motifs (LSGG[Q/E]) at the NBDs in decelerating ATPase activity in the Occ form through sporadic flipping of the side chains of the LSGG[Q/E] catalytic serine residues. The orientational changes are coupled to loose NBD dimerization in the Occ state, whereas they are blocked in the OF form where the NBDs are tightly dimerized. The chemo-mechanical coupling mechanism may apply to other types of ABC transporters having the conserved LSGG[Q/E] signature motifs.

biochemistry

Digging deeper into the human proteome: A novel nanoflow LCMS setup using micro pillar array columns (μPAC™)

In bottom-up proteomics, capillaries up to 75 cm long with internal diameters of 50 to 100 {micro}m packed with sub-2-{micro}m C18-functionalized particles are routinely used in combination with high-resolution mass spectrometry. Unlike such conventional liquid chromatography (LC) columns, micro pillar array columns ({micro}PAC) are fabricated using micromachining technology, resulting in perfectly ordered chromatographic separation beds, leading to a minimized analyte dispersion while column permeability is increased by one order of magnitude. This allows using very long columns (up to 200 cm) at only a fraction of the pressure needed to operate packed bed columns. To validate {micro}PAC column performances, different amounts of tryptic digests of HEK293T cell lysates were prepared and separated using a 200 cm {micro}PAC column or a 40 cm long conventional column. Using an Orbitrap Elite instrument, on average 25% more proteins were identified with the {micro}PAC column. Moreover, the rate at which the peak width increases with gradient time is much lower on the {micro}PAC column. For a 10-hour long gradient, average peak widths below 0.5 min were observed, resulting in consistent identification of over 5,000 proteins. Combining long solvent gradients and this new type of LC column, substantial improvements in proteome coverage could be obtained. Finally, we demonstrated high reproducibility and durability of the {micro}PAC column. Data are available via ProteomeXchange with identifiers PXD011547 and PXD013235.

biochemistry

Tryptophan fluorescence quenching in β-lactam-interacting proteins is modulated by the structure of intermediates and final products of the acylation reaction

In most bacteria, {beta}-lactam antibiotics inhibit the last cross-linking step of peptidoglycan synthesis by acylation of the active-site Ser of D,D-transpeptidases belonging to the penicillin-binding protein (PBP) family. In mycobacteria, cross-linking is mainly ensured by L,D-transpeptidases (LDTs), which are promising targets for the development of {beta}-lactam-based therapies for multidrug-resistant tuberculosis. For this purpose, fluorescence spectroscopy is used to investigate the efficacy of LDT inactivation by {beta}-lactams but the basis for fluorescence quenching during enzyme acylation remains unknown. In contrast to what has been reported for PBPs, we show here using a model L,D-transpeptidase (Ldtfm) that fluorescence quenching of Trp residues does not depend upon direct hydrophobic interaction between Trp residues and {beta}-lactams. Rather, Trp fluorescence was quenched by the drug covalently bound to the active-site Cys residue of Ldtfm. Fluorescence quenching was not quantitatively determined by the size of the drug and was not specific of the thioester link connecting the {beta}-lactam carbonyl to the catalytic Cys as quenching was also observed for acylation of the active-site Ser of {beta}-lactamase BlaC from M. tuberculosis. Fluorescence quenching was extensive for reaction intermediates containing an amine anion and for acylenzymes containing an imine stabilized by mesomeric effect, but not for acylenzymes containing a protonated {beta}-lactam nitrogen. Together, these results indicate that the extent of fluorescence quenching is determined by the status of the {beta}-lactam nitrogen. Thus, fluorescence kinetics can provide information not only on the efficacy of enzyme inactivation but also on the structure of the covalent adducts responsible for enzyme inactivation.

biochemistry

Quantifying dynamic protein acetylation using quantitative stoichiometry

Protein acetylation is a widespread post-translational modification implicated in many cellular processes. Recent advances in mass spectrometry have enabled the cataloging of thousands of sites throughout the cell, however identifying regulatory acetylation marks have proven to be a daunting task. Knowledge of the kinetics and stoichiometry of site-specific acetylation are important factors to uncover function. Here, an improved method of quantifying acetylation stoichiometry was developed and validated, providing a detailed landscape of dynamic acetylation stoichiometry within cellular compartments. The dynamic nature of site-specific acetylation in response to serum stimulation was revealed. In two distinct human cell lines, growth factor stimulation led to site-specific, temporal acetylation changes, revealing diverse kinetic profiles that clustered into several groups. Overlap of dynamic acetylation sites among two different human cell lines suggested similar regulatory control points across major cellular pathways that include splicing, translation, and protein homeostasis. Rapid increases in acetylation on protein translational machinery suggest a positive regulatory role under pro-growth conditions. Lastly, higher median stoichiometry was observed in cellular compartments where active acetyltransferases are well-described.

biochemistry

Screening a Resource of Recombinant Protein Fragments for Targeted Proteomics

The availability of proteomics resources hosting protein and peptide standards, as well as the data describing their analytical performances, will continue to enhance our current capabilities to develop targeted proteomics methods for quantitative biology. This study describes the analysis of a resource of 26,840 individually purified recombinant protein fragments corresponding to more than 16,000 human protein-coding genes. The resource was screened to identify proteotypic peptides suitable for targeted proteomics efforts and we report LC-MS/MS assay coordinates for more than 25,000 proteotypic peptides, corresponding to more than 10,000 unique proteins. Additionally, peptide formation and digestion kinetics were, for a subset of the standards, monitored using a time-course protocol involving parallel digestion of isotope-labelled recombinant protein standards and endogenous human plasma proteins. We show that the strategy by adding isotope-labelled recombinant proteins prior to trypsin digestion enables short digestion protocols ([≤]60 min) with robust quantitative precision. In a proof-of-concept study, we quantified 23 proteins in human plasma using assay parameters defined in our study and used the standards to describe distinct clusters of individuals linked to different levels of LPA, APOE, SERPINA5 and TFRC. In summary, we describe the use and utility of a resource of recombinant proteins to identify proteotypic peptides useful for targeted proteomics assay development.

biochemistry

Homochiral and racemic MicroED structures of a peptide from the ice nucleation protein InaZ

The ice nucleation protein InaZ of Pseudomonas syringae contains a large number of degenerate repeats that span more than a quarter of its sequence and include the segment GSTSTA. We determine ab initio structures of this repeat segment, resolved to 1.1[A] by microfocus x-ray crystallography and 0.9[A] by the cryoEM method MicroED, from both racemic and homochiral crystals. We evaluate the benefits of racemic protein crystals for structure determination by MicroED and confirm that phase restriction introduced by crystal centrosymmetry increases the number of successful trials during ab initio phasing of electron diffraction data. Both homochiral and racemic GSTSTA form amyloid-like protofibrils with labile, corrugated antiparallel beta sheets that mate face to back. The racemic GSTSTA protofibril represents a new class of amyloid assembly in which all left-handed sheets mate with their all right-handed counterparts. Our determination of racemic amyloid assemblies by MicroED reveals complex amyloid architectures and illustrates the racemic advantage in macromolecular crystallography, now with sub-micron sized crystals.\n\nSynopsisThe atomic asymmetry, left or right handedness, present in macromolecules and first described by Pasteur in his experiments with tartaric acid, is evident even in complex molecular assemblies like amyloid fibrils. Here, using the cryoEM method MicroED, we show that a segment from the ice nucleation protein InaZ assembles into homochiral and racemic water-binding amyloid protofibrils.

biochemistry

Principles for enhancing virus capsid capacity and stability from a thermophilic virus capsid structure

The capsids of double-stranded DNA viruses protect the viral genome from the harsh extracellular environment, while maintaining stability against the high internal pressure of packaged DNA. To elucidate how capsids maintain stability in an extreme environment, we used cryoelectron microscopy to determine the capsid structure of the thermostable phage P74-26 to 2.8-[A] resolution. We find the P74-26 capsid exhibits an overall architecture that is very similar to those of other tailed bacteriophages, allowing us to directly compare structures to derive the structural basis for enhanced stability. Our structure reveals lasso-like interactions that appear to function like catch bonds. This architecture allows the capsid to expand during genome packaging, yet maintain structural stability. The P74-26 capsid has T=7 geometry despite being twice as large as mesophilic homologs. Capsid capacity is increased through a novel mechanism with a larger, flatter major capsid protein. Our results suggest that decreased icosahedral complexity (i.e. lower T number) leads to a more stable capsid assembly.

biochemistry

Apolipoprotein E interacts with amyloid-β oligomers via positively cooperative multivalent binding

Interaction of apolipoprotein E (apoE) isoforms with amyloid-{beta} (A{beta}) peptides is considered a critical determinant of the progression of Alzheimers disease. However, molecular mechanism of the apoE-A{beta} interaction is poorly understood. Here we characterize the nature of the apoE-A{beta} complexes and identify the region of apoE that interacts with A{beta}. We have prepared three distinct fragments of apoE4, viz., the N-terminal fragment (NTF), hinge domain fragment (HDF) and C-terminal fragment (CTF) to compare its interactions with A{beta}. Kinetics of aggregation of A{beta} is delayed dramatically in presence of low, substoichiometric concentrations of both NTF and CTF in lipid-free, as well as, in lipidated forms. Effect of HDF is found to be small. Strong inhibition by NTF and CTF at substoichiometric concentrations indicate interactions with the intermediates or the oligomers of A{beta}. Kinetics of Forster Resonance Energy Transfer (FRET) between full-length apoE4 labeled with EDANS at positions 62, 139, 210, 247, and 276 and tetramethylrhodamine (TMR)-labeled A{beta} further support involvement of multiple regions of apoE in the interactions. Since the interactions involve intermediates of A{beta} quantitative evaluation of the binding affinities are not feasible. Hence we employed a competitive binding assay to examine whether the N- and C-terminal domains interact cooperatively. Addition of unlabeled full-length apoE eliminates the FRET between EDANS-NTF + EDANS-CTF and TMR-A{beta} almost completely but not vice versa. Furthermore, full-length apoE but not the equimolar mixture of the fragments could displace the already bound EDANS-apoE molecules from the complexes. Therefore, binding affinity of the A{beta} oligomers to the intact full-length apoE is much higher than the affinity to the domains when mixed together as fragments. Thus, our results indicate that apoE-A{beta} complex formation is mediated by positively cooperative multivalent binding between the multiple sites on apoE and the oligomeric forms of A{beta}.

biochemistry

Error sensitivity and optimization of steady-state kinetic parameters using multidimensional chemical kinetic analysis

Enzyme behavior has been described using the Michaelis-Menten mechanism. The analysis of extended time domains provides a means to extract the Michaelis-Menten constants through direct fitting of raw data. We have developed a scheme for determining Michaelis-Menten rate constants by appropriate fitting of multidimensional experimental data sets to the closed form of the Michaelis-Menten model. We considered how varying parameters in experimental data affect the accuracy of the remaining parameter estimates. We determine how to improve experimental design to achieve a given accuracy, relative to the amount of intrinsic or external error. We analyze this scheme on data sets built around 20 hypothetical and 2 natural enzymes (kinesin and apyrase) to test error sensitivity in different parameter regimes. Overall, we provide evidence that our data fitting regime will tolerate significant experimental error in the raw data and still converge on the four Michaelis-Menten constants.

biochemistry

IL-25 induces beige fat to improve metabolic homeostasis via macrophage and innervation

Beige fat dissipates energy and functions as a defense against cold and obesity, but the underlying mechanisms remain unclear. We found that the signaling of interleukin (IL)-25 including its cognate receptor, IL-17 receptor B (IL-17RB), increased in adipose tissue upon cold and {beta}3-adrenoceptor agonist stimulation. IL-25 induced the browning effect in white adipose tissue (WAT) by releasing IL-4, 13 and promoting alternative activation of macrophages to regulate innervation, which characterized as tyrosine hydroxylase (TH) up-regulation to produce more catecholamine including norepinephrine. Blockade of IL-4R and depletion of macrophages with clodronate-loaded liposomes in vivo significantly impaired the browning of WAT. Obese mice administered with IL-25 were protected from obesity on a high-fat diet and the subsequent metabolic disorders, and the process involved the uncoupling protein 1 (UCP1)-mediated thermogenesis. In conclusion, the activation of IL-25 signaling on beige fat might play a therapeutic potential for obesity and its associated metabolic disorders.

biochemistry

Risk stratification of allogeneic stem cell recipients with respect to the potential for development of GVHD via their pre-transplant plasma lipid and metabolic signature

The clinical outcome of allogeneic hematopoietic stem cell transplantation (SCT) is strongly influenced from the complications arising during the post-transplant immune restoration and has been well studied and described. However, the metabolic status of the recipient pre-transplant also has the potential to influence this outcome and has never been studied before and has the potential to enable risk stratification with respect to the development of transplant associated complications such as graft vs. host disease (GVHD). In order to better understand this aspect of transplant related complications we investigated the pre-transplantation metabolic signature to assess the possibility of pre-transplant risk stratification. This pilot study was composed of 14 patients undergoing myeloablative conditioning followed by either HLA matched related, unrelated donor, or autologous stem cell transplantation. Blood samples were taken prior to transplant and the plasma was comprehensively characterized with respect to its lipidome and metabolome via LCMS and GCMS. The results indicated a significantly pro-inflammatory metabolic profile in patients who eventually developed Graft vs. Host Disease (GVHD). The data revealed 5 potential pre-transplant biomarkers (1-monopalmitin, diacylglycerol (DG) 38:5, DG 38:6, 2-aminobutyric acid, and fatty acid (FA) 20:1) that demonstrated high sensitivity and specificity towards predicting post-transplant GVHD development. The predictive model developed demonstrated an estimated predictive accuracy of risk stratification of 100%, with an Area under the Curve of the ROC of 0.995 with 100%. The likelihood ratio of 1-monopalmitin (infinity), DG 38:5 (6.0) and DG 38:6 (6.0) also demonstrated that a patient with a positive test result for these biomarkers pre-transplant will likely have very high odds of developing GVHD post-transplant. Collectively the data demonstrates the possibility of using pre-transplant metabolic signature for risk stratification of SCT recipients with respect to development of GVHD.

biochemistry

Reconstitution of eukaryotic chromosomes and manipulation of DNA N6-methyladenine alters chromatin and gene expression

DNA N6-adenine methylation (6mA) has recently been reported in diverse eukaryotes, spanning unicellular organisms to metazoans. Yet the functional significance of 6mA remains elusive due to its low abundance, difficulty of manipulation within native DNA, and lack of understanding of eukaryotic 6mA writers. Here, we report a novel DNA 6mA methyltransferase in ciliates, termed MTA1. The enzyme contains an MT-A70 domain but is phylogenetically distinct from all known RNA and DNA methyltransferases. Disruption of MTA1 in vivo leads to the genome-wide loss of 6mA in asexually growing cells and abolishment of the consensus ApT dimethylated motif. Genes exhibit subtle changes in chromatin organization or RNA expression upon loss of 6mA, depending on their starting methylation level. Mutants fail to complete the sexual cycle, which normally coincides with a peak of MTA1 expression. Thus, MTA1 functions in a developmental stage-specific manner. We determine the impact of 6mA on chromatin organization in vitro by reconstructing complete, full-length ciliate chromosomes harboring 6mA in native or ectopic positions. Using these synthetic chromosomes, we show that 6mA directly disfavors nucleosomes in vitro in a local, quantitative manner, independent of DNA sequence. Furthermore, the chromatin remodeler ACF can overcome this effect. Our study identifies a novel MT-A70 protein necessary for eukaryotic 6mA methylation and defines the impact of 6mA on chromatin organization using epigenetically defined synthetic chromosomes.\n\nHighlightsO_LIThe MT-A70 protein MTA1 mediates DNA N6-adenine methylation in Oxytricha\nC_LIO_LIMTA1 mutants exhibit subtle changes in nucleosome organization and transcription in vivo\nC_LIO_LI6mA directly disfavors nucleosome occupancy in natural and synthetic chromosomes in vitro\nC_LIO_LIDe novo synthesis of complete, epigenetically defined Oxytricha chromosomes\nC_LI

biochemistry