859 resultados para Coa Synthetase


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The adapted metabolic response of commercial wine yeast under prolonged exposure to concentrated solutes present in Icewine juice is not fully understood. Presently, there is no information regarding the transcriptomic changes in gene expression associated with the adaptive stress response ofwine yeast during Icewine fermentation compared to table wine fermentation. To understand how and why wine yeast respond differently at the genomic level and ultimately at the metabolic level during Icewine fermentation, the focus ofthis project was to identify and compare these differences in the wine yeast Saccharomyces cerevisiae KI-Vll16 using cDNA microarray technology during the first five days of fermentation. Significant differences in yeast gene expression patterns between fermentation conditions were correlated to differences in nutrient utilization and metabolite production. Sugar consumption, nitrogen usage and metabolite levels were measured using enzyme assays and HPLC. Also, a small subset of differentially expressed genes was verified using Northern analysis. The high osmotic stress experienced by wine yeast throughout Icewine fermentation elicited changes in cell growth and metabolism correlating to several fermentation difficulties, including reduced biomass accumulation and fermentation rate. Genes associated with carbohydrate and nitrogen transport and metabolism were expressed at lower levels in Icewine juice fermenting cells compared to dilute juice fermenting cells. Osmotic stress, not nutrient availability during Icewine fermentation appears to impede sugar and nitrogen utilization. Previous studies have established that glycerol and acetic acid production are increased in yeast during Icewine fermentation. A gene encoding for a glycerollW symporter (STL1) was found to be highly expressed up to 25-fold in the i Icewine juice condition using microarray and Northern analysis. Active glycerol transport by yeast under hyperosmotic conditions to increase cytosolic glycerol concentration may contribute to reduced cell growth observed in the Icewine juice condition. Additionally, genes encoding for two acetyl CoA synthetase isoforms (ACSl and ACS2) were found to be highly expressed, 19- and II-fold respectively, in dilute juice fermenting cells relative to the Icewine juice condition. Therefore, decreased conversion of acetate to acetyl-CoA may contribute to increased acetic acid production during Icewine fermentation. These results further help to explain the response of wine yeast as they adapt to Icewine juice fermentation. ii

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Die Endozytose und die anschließende Verwertung der aufgenommenen Substanzen ist Gegenstand zahlreicher Untersuchungen. Dabei wird ein besonderes Augenmerk auf die Proteine gelegt, die an diesen Vorgängen beteiligt sind. In der hier vorliegenden Arbeit wird der Lipid-Status der Zelle und Enzyme des Lipid-Stoffwechsels berücksichtigt. Das Ausschalten einer Long Chain-Fatty Acyl CoA Synthetase 1 (LC-FACS), fcsB, in Dictyostelium discoideum hat eine Veränderung der Menge an neutralen Lipiden zur Folge. In diesen LC-FACS2 „Knock-Out“-Zellen wird ein Zusammenhang zwischen neutralen Lipiden und der Phagozytose von Hefen und Bakterien detektiert. Ein Einfluss auf den endozytotischen Transit kann in diesen Zellen nur induziert werden, wenn man zusätzlich den Triglycerid-Hydrolyse-Inhibitor LSD1 in den Zellen exprimiert. Mit Hilfe der Daten wird ein Modell erstellt, indem die Reduktion der Menge an neutralen Lipiden nicht direkt für diesen Phänotyp verantwortlich ist. Es ist vielmehr das Energie-Niveau der Zellen, das die Phagozytoserate beeinflusst. Möglich macht dies ein Pool aus Fettsäuren im Zytoplasma. Dieser besteht aus unaktivierten Fettsäuren und Acyl-CoAs. Auf ihn greifen Kompartimente wie Lipidtropfen, Mitochondrien und Peroxisomen zu, wenn Fettsäuren verstoffwechselt werden sollen. In LC-FACS2 „Knock-Out“-Zellen, wird das Gleichgewicht im Pool in Richtung der unaktivierten Fettsäuren verschoben. Anhand der Größe dieses Pools kann die Zelle ihren Energiestatus messen. Ein höherer Energie-Status führt dann zu einer Reduktion der Phagozytoserate. Vacuolin B Null Zellen (vacB-) zeigen eine extreme Verzögerung im endozytotischen Transit. Schaltet man in diesen Zellen die LC-FACS1 aus (vacB-/fcsA-), so reduziert man ebenfalls die Menge an Triglyceriden. Dies ist darauf zurückzuführen, dass der Acyl-CoA Anteil des Fettsäure-Pools reduziert ist. Diese Reduktion resultiert hier in einer Beschleunigung des endozytotischen Transits. Die Exozytose von vacB--Zellen und vacB-/ fcsA--Zellen unterscheidet sich nicht. Daher wird die Ursache für diese Beschleunigung in veränderten Fusions- bzw. Fissionseigenschaften der Endosomen vermutet. Somit führt das Ausschalten von LC-FACS-Proteinen in Dictyostelium zu einer veränderten Zusammensetzung des Fettsäure-Pools. Dies hat im Fall der LC-FACS1 Modifikationen der Membran-Dynamik und im Fall der LC-FACS2 Änderungen des Energie-Spiegels zur Folge.

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Die soziale Waldamöbe Dictystelium discoideum ist ein etablierter Modellorganismus zur Erforschung grundlegender zellbiologischer Prozesse. Innerhalb der letzten Jahre konnte dabei insbesondere das Wissen zum Lipidmetabolismus umfassend erweitert werden. In diesem Zusammenhang spielt besonders eine Enzymgruppe eine wichtige Rolle: die LC/VLC-Acyl-CoA-Synthetasen. Diese übernehmen dabei die Aufgabe Fettsäuren zu aktivieren, um sie so dem Zellmetabolismus überhaupt erst zugänglich zu machen. D. discoideum verfügt über insgesamt vier dieser Enzyme: FcsA, FcsB, FcsC und das Bubblegum-Enzym Acsbg1. Während die FcsA und FcsB bereits in vorangegangenen Arbeiten untersucht wurden, werden die FcsC und die Acsbg1 in dieser Arbeit erstmals biologisch charakterisiert. Untersuchungen zur subzellulären Lokalisation der Proteine zeigen, dass die meisten LC/VLC-Acyl-CoA-Synthetase auf Endosomen und im Cytoplasma gefunden werden können (FcsA, FcsC und Acsbg1), während die FcsB als Transmembranprotein über das ER zu den Peroxisomen transportiert wird. Die Acsbg1 akkumuliert dabei zusätzlich an der Plasmamembran. Funktionell konnte gezeigt werden, dass neben der FcsA auch die Acsbg1 an der Bereitstellung von Acyl-CoA für Triacylglyceridsynthese beteiligt ist. Dabei besitzt die FcsA die Hauptenzymaktivität und kompensiert den Verlust der Acsbg1 in acsbg1- Zellen. In fcsA-/acsbg1- Zellen dagegen kommt der Verlust der Acsbg1 durch eine zusätzliche Verringerung des TAG-Gehaltes der Doppel-KOs im Vergleich zu fcsA- Zellen zum tragen. Alle vier Enzyme beeinflussen die Phagozytose. Dabei zeigen fcsA- und fcsC- Zellen eine gesteigerte Phagozytose in Gegenwart von der gesättigten Fettsäure Palmitinsäure im Kulturmedium. Auch der knockout der Acsbg1 wirkt sich positiv auf die Phagozytoserate aus, jedoch kommt auch nur dieser zum tragen, wenn neben der Acsbg1 auch die FcsA ausgeschaltet wird. Die FcsB dagegen zeigt eine dramatische Reduktion der Partikelaufnahme in nicht Fettsäure gefütterten Zellen. Durch die Zugabe einer exogenen Fettsäure kann dieser Effekt nicht kompensiert werden. Auch der zusätzliche Verlust der FcsA-Enzymaktivität verändert dieses Verhalten in Palmitinsäure inkubierten Zellen nicht. In fcsA-/fcsB- konnte zudem ein Defekt beim Abbau von Triacylglyceriden gefunden werden. Dieser Defekt liefert erste Hinweise für ein Modell, das den Abbau von LD gespeicherten Lipiden durch Autophagozytose in D. discoideum beschreibt. Peroxisomen sind wichtige Organellen für die Detoxifikation und die Oxidation von Fettsäuren. Durch das Ausschalten der Acaa1, der Thiolase, die den letzten Schritt der β-Oxidation in Peroxisomen katalysiert, zeigte sich ein verlangsamter Triacylglycerol-Abbau sowie eine verringerte Degradation des Etherlipids UKL und von Sterolestern, was auf eine Beteiligung der Peroxisomen beim Abbau von langkettigen Fettsäuren schließen lässt. Bei dem Versuch durch das Ausschalten des pex19-Gens eine Zelllinie zu generieren, die keine Peroxisomen besitzt, wurde die Organelle überraschender Weise, wenn auch mit einer vom Wildtyp abweichenden Morphologie, weiterhin vorgefunden. Dieser Befund korrelierte mit dem Resultat, dass trotzdem das pex19-Gen erfolgreich unterbrochen wurde, dennoch eine intakte Kopie des Gens nachgewiesen werden konnte. Dementsprechend sollte die erschaffene pex19- Zelllinie als knockdown und nicht als knockout gewertet werden. Der pex19 knockdown zeigte beim Abbau von Triacylglyceriden eine ähnliche Verlangsamung wie acaa1- Zellen. Zusätzlich wurde eine Verringerung der Synthese des Etherlipids UKL beobachtet, was darauf hindeutet, dass dieses Lipid im Peroxisom gebildet wird. Auch die Phagozytose und das Wachstum auf Bakterienrasen waren im pex19 knockdown dramatisch reduziert. Durch die Überexpression von Pex19-GFP im knockdown Hintergrund konnten die physiologischen Defekte in den meisten so generierten Zelllinien ausgeglichen werden. Lipid Droplets sind Organellen, die in Eukaryoten und Prokaryoten als Speicher für Neutralfette dienen und ebenfalls als Ort der Lipidsynthese fungieren. Um diese Aufgaben erfüllen zu können, besitzen sie auf ihrer Oberfläche Proteine, die für die Regulierung dieser Prozesse notwendig sind. Durch die weiterführende Analyse von Kandidatenproteinen, die durch eine proteomische Analyse von aufgereinigten LDs identifiziert wurden, konnte für vier weitere Proteine (Plsc1, Net4, Lip5 und Nsdhl) die LD-Assoziation durch GFP-Fusionsproteine bestätigt werden. Bei der Charakterisierung von plsc1 knockouts zeigte sich eine verminderte Fähigkeit beim Wachstum auf Bakterienrasen sowie eine erhöhte Phagozytoserate in Gegenwart einer exogenen Fettsäure, was auf eine Involvierung des Proteins in die Phospholipidsynthese hindeutet. Die bisher einzige identifizierte LD-assoziierte Lipase Lip5 nimmt nur eine untergeordnete Rolle bei der Hydrolyse von Triacylglycerolen und Sterolestern ein, da in KO-Mutanten nur ein milder Defekt beim Abbau beider Substanzen beobachtet werden konnte. Die LD-Lokalisation von Net4 ist evolutionär konserviert und kann nicht nur in D. discoideum beobachtet werden, sondern auch in humanen Zellen. Welche Funktion das Protein auf der LD-Oberfläche ausübt, konnte nicht geklärt werden. Allerdings kann ein direkter Einfluss auf den TAG- und Sterolaufbau ausgeschlossen werden. LDs stehen in engem Kontakt mit anderen Organellen, die in den Lipidmetabolismus involviert sind, wie mit den Mitochondrien oder dem ER. Durch Perilipin-Hybridproteine können künstliche, stabile Verbindungen zwischen LDs und diesen Organellen hergestellt werden. Dabei zeigte Perilipin ein sehr starkes Targeting-Potenzial, durch welches es notwendig war, als zweite Hybridhälfte ein Transmembranprotein zu wählen. Die Analyse eines Hybrids, das eine dauerhafte Verbindung von LDs und dem ER herstellt, wies dabeieine Reduktion der LD-Größe auf, wobei der Gesamt-TAG-Gehalt der Zellen unbeeinflusst blieb. Durch die starke Affinität von Perilipin für die Assoziation an LDs konnten durch die Generierung von Hybriden andere Proteine an die LD-Oberfläche dirigiert werden. Auf diese Weise konnte erfolgreich die LC-Acyl-CoA-Synthetase FcsA auf das LD transplantiert werden.

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Long-chain acyl CoA synthetase 1 (ACSL1) plays an important role in fatty acid metabolism and triacylglycerol (TAG) synthesis. Disturbance of these pathways may result in dyslipidemia and insulin resistance, hallmarks of the metabolic syndrome (MetS). Dietary fat is a key environmental factor that may interact with genetic determinants of lipid metabolism to affect MetS risk. We investigated the relationship between ACSL1 polymorphisms (rs4862417, rs6552828, rs13120078, rs9997745, and rs12503643) and MetS risk and determined potential interactions with dietary fat in the LIPGENE-SU.VI.MAX study of MetS cases and matched controls (n = 1,754). GG homozygotes for rs9997745 had increased MetS risk {odds ratio (OR) 1.90 [confidence interval (CI) 1.15, 3.13]; P = 0.01}, displayed elevated fasting glucose (P = 0.001) and insulin concentrations (P = 0.002) and increased insulin resistance (P = 0.03) relative to the A allele carriers. MetS risk was modulated by dietary fat, whereby the risk conferred by GG homozygosity was abolished among individuals consuming either a low-fat (<35% energy) or a high-PUFA diet (>5.5% energy). In conclusion, ACSL1 rs9997745 influences MetS risk, most likely via disturbances in fatty acid metabolism, which was modulated by dietary fat consumption, particularly PUFA intake, suggesting novel gene-nutrient interactions.

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The purpose of this study was to investigate variations in hepatic regulation of metabolism during the dry period, after parturition, and in early lactation in dairy cows. For this evaluation, cows were divided into 2 groups based on the plasma concentration of beta-hydroxybutyric acid (BHBA) in wk 4 postpartum (PP; group HB, BHBA >0.75 mmol/L; group LB, BHBA <0.75 mmol/L, respectively). Liver biopsies were obtained from 28 cows at drying off (mean 59 +/- 8 d antepartum), on d 1, and in wk 4 and 14 PP. Blood samples were collected every 2 wk during this entire period. Liver samples were analyzed for mRNA abundance of genes related to carbohydrate metabolism (pyruvate carboxylase, PC; phosphoenolpyruvate carboxykinase, PEPCK; citrate synthase, CS), fatty acid biosynthesis (ATP citrate lyase, ACLY) and oxidation (acyl-CoA synthetase long-chain, ACSL; carnitine palmitoyltransferase 1A, CPT 1A; carnitine palmitoyltransferase 2, CPT 2; acyl-coenzyme A dehydrogenase very long chain, ACADVL), cholesterol biosynthesis (3-hydroxy-3-methylglutaryl-coenzyme A synthase 1, HMGCS1), ketogenesis (3-hydroxy-3-methylglutaryl-coenzyme A synthase 2, HMGCS2), and of genes encoding the transcription factors peroxisome proliferator-activated receptor alpha (PPARalpha), peroxisome proliferator-activated receptor gamma (PPARgamma), and sterol regulatory element binding factor 1 (SREBF1). Blood plasma was assayed for concentrations of glucose, BHBA, nonesterified fatty acids, cholesterol, triglycerides, insulin, insulin-like growth factor-I, and thyroid hormones. In both groups, plasma parameters followed a pattern usually observed in dairy cows. However, changes were moderate and the energy balance in cows turned positive in wk 7 PP for both groups. Additionally, the energy balance and milk yield were similar for both groups after parturition onwards. Significant group effects were found at drying off, when plasma concentrations of triglycerides were higher in LB than in HB, and in wk 4 PP, when plasma concentrations of glucose and IGF-I were lower in HB than in LB. Similarly, moderate changes in mRNA expression of hepatic genes between the different time points were observed, although HB cows showed more adaptive performance than LB cows based on changes in mRNA expression of PEPCKc, PEPCKm, CS, CPT 1A, CPT 2, and PPARalpha. Part of the variation measured in this study was explained by parity. Significant Spearman rank correlation coefficients between the variables were not similar at each time point and were not similar between the groups at each time point, suggesting that metabolic regulation differs between cows. In conclusion, metabolic regulation in dairy cows is a dynamic system, and differs obviously between cows at different metabolic stages related to parturition.

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Insufficient feed intake during early lactation results in elevated body fat mobilization to meet energy demands for milk production. Hepatic energy metabolism is involved by increasing endogenous glucose production and hepatic glucose output for milk synthesis and by adaptation of postcalving fuel oxidation. Given that cows differ in their degree of fat mobilization around parturition, indicated by variable total liver fat concentration (LFC), the study investigated the influence of peripartum fat mobilization on hepatic gene expression involved in gluconeogenesis, fatty acid oxidation, ketogenesis, and cholesterol synthesis, as well as transcriptional factors referring to energy metabolism. German Holstein cows were grouped according to mean total LFC on d 1, 14, and 28 after parturition as low [<200mg of total fat/g of dry matter (DM); n=10], medium (200-300 mg of total fat/g of DM; n=10), and high (>300 mg of total fat/g of DM; n=7), indicating fat mobilization during early lactation. Cows were fed total mixed rations ad libitum and held under equal conditions. Liver biopsies were taken at d 56 and 15 before and d 1, 14, 28, and 49 after parturition to measure mRNA abundances of pyruvate carboxylase (PC); phosphoenolpyruvate carboxykinase; glucose-6-phosphatase; propionyl-coenzyme A (CoA) carboxylase α; carnitine palmitoyl-transferase 1A (CPT1A); acyl-CoA synthetase, long chain 1 (ASCL1); acyl-CoA dehydrogenase, very long chain; 3-hydroxy-3-methylglutaryl-CoA synthase 1 and 2; sterol regulatory element-binding factor 1; and peroxisome proliferator-activated factor α. Total LFC postpartum differed greatly among cows, and the mRNA abundance of most enzymes and transcription factors changed with time during the experimental period. Abundance of PC mRNA increased at parturition to a greater extent in high- and medium-LFC groups than in the low-LFC group. Significant LFC × time interactions for ACSL1 and CPT1A during the experimental period indicated variable gene expression depending on LFC after parturition. Correlations between hepatic gene expression and performance data and plasma concentrations of metabolites and hormones showed time-specific relations during the transition period. Elevated body fat mobilization during early lactation affected gene expression involved in gluconeogenesis to a greater extent than gene expression involved in lipid metabolism, indicating the dependence of hepatic glucose metabolism on hepatic lipid status and fat mobilization during early lactation.

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Rapid pollen tube growth requires a high rate of sugar metabolism to meet energetic and biosynthetic demands. Previous work on pollen sugar metabolism showed that tobacco pollen carry out efficient ethanolic fermentation concomitantly with a high rate of respiration (Bucher et al ., 1995). Here we show that the products of fermentation, acetaldehyde and ethanol, are further metabolised in a pathway that bypasses mitochondrial PDH. The enzymes involved in this pathway are pyruvate decarboxylase, aldehyde dehydrogenase and acetyl-CoA synthetase. Radiolabelling experiments show that during tobacco pollen tube growth label of C-14-ethanol is incorporated into CO2 as well as into lipids and other higher molecular weight compounds. A role for the glyoxylate cycle appears unlikely since activity of malate synthase, a key enzyme of the glyoxylate cycle, could not be detected.

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X-linked adrenoleukodystrophy (X-ALD) is a peroxisomal disorder with impaired β-oxidation of very long chain fatty acids (VLCFAs) and reduced function of peroxisomal very long chain fatty acyl-CoA synthetase (VLCS) that leads to severe and progressive neurological disability. The X-ALD gene, identified by positional cloning, encodes a peroxisomal membrane protein (adrenoleukodystrophy protein; ALDP) that belongs to the ATP binding cassette transporter protein superfamily. Mutational analyses and functional studies of the X-ALD gene confirm that it and not VLCS is the gene responsible for X-ALD. Its role in the β-oxidation of VLCFAs and its effect on the function of VLCS are unclear. The complex pathology of X-ALD and the extreme variability of its clinical phenotypes are also unexplained. To facilitate understanding of X-ALD pathophysiology, we developed an X-ALD mouse model by gene targeting. The X-ALD mouse exhibits reduced β-oxidation of VLCFAs, resulting in significantly elevated levels of saturated VLCFAs in total lipids from all tissues measured and in cholesterol esters from adrenal glands. Lipid cleft inclusions were observed in adrenocortical cells of X-ALD mice under the electron microscope. No neurological involvement has been detected in X-ALD mice up to 6 months. We conclude that X-ALD mice exhibit biochemical defects equivalent to those found in human X-ALD and thus provide an experimental system for testing therapeutic intervention.

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Cellular levels of free arachidonic acid (AA) are controlled by a deacylation/reacylation cycle whereby the fatty acid is liberated by phospholipases and reincorporated by acyltransferases. We have found that the esterification of AA into membrane phospholipids is a Ca(2+)-independent process and that it is blocked up to 60-70% by a bromoenollactone (BEL) that is a selective inhibitor of a newly discovered Ca(2+)-independent phospholipase A2 (PLA2) in macrophages. The observed inhibition correlates with a decreased steady-state level of lysophospholipids as well as with the inhibition of the Ca(2+)-independent PLA2 activity in these cells. This inhibition is specific for the Ca(2+)-independent PLA2 in that neither group IV PLA2, group II PLA2, arachidonoyl-CoA synthetase, lysophospholipid:arachidonoyl-CoA acyltransferase, nor CoA-independent transacylase is affected by treatment with BEL. Moreover, two BEL analogs that are not inhibitors of the Ca(2+)-independent PLA2--namely a bromomethyl ketone and methyl-BEL--do not inhibit AA incorporation into phospholipids. Esterification of palmitic acid is only slightly affected by BEL, indicating that de novo synthetic pathways are not inhibited by BEL. Collectively, the data suggest that the Ca(2+)-independent PLA2 in P388D1 macrophages plays a major role in regulating the incorporation of AA into membrane phospholipids by providing the lysophospholipid acceptor employed in the acylation reaction.

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Intestinal chiral inversion of ibuprofen is still lacking direct evidence. In a preliminary experiment, ibuprofen was found to undergo inversion in Caco-2 cells. This investigation was thus conducted to determine the characteristics and influence of some biochemical factors on the chiral inversion of ibuprofen in Caco-2 cells. The effects of substrate concentration (2.5-40 mu g/ml), cell density (0.5-2 x 10(6) cells/ well), content of serum (0-20%), coexistence of S ibuprofen (corresponding doses), sodium azide (10mm), exogenous Coenzyme A (CoA) (0.1 - 0.4 mm),. and palmitic acid (5-25 mu m) on inversion were examined. A stereoselective HPLC method based on the Chromasil-CHI-TBB column was developed for quantitative analysis of the drug in cell culture medium. The inversion ratio (F-i) and elimination rate constant were calculated as the indexes of inversion extent. Inversion of ibuprofen in Caeo-2 cells was found to be both dose and cell density dependent, indicating saturable characteristics. Addition of serum significantly inhibited the inversion, to an extent of 2.7 fold decrease at 20% content. Preexistence of S enantiomer exerted a significant inhibitory effect (p < 0.01 for all tests). Sodium azide decreased the inversion ratio from 0.43 to 0.32 (p < 0.01). Exogenous CoA and palmitic acid significantly promoted the inversion at all tested doses (p < 0.01 for all tests). This research provided strong evidence to the capacity and capability of intestinal chiral inversion. Although long incubation times up to 120 h were required, Caco-2 cells should be a suitable model for chiral inversion research of 2-APAs considering the human-resourced and well-defined characteristics from the present study.

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Picornaviruses are a group of human and animal pathogens capable of inflicting serious public health diseases and economic burdens. Treatments options through vaccines for prevention or antivirals to cure infection are not available for the vast majority of these viruses. These shortcomings, in the development of vaccines or antivirals therapeutic, are linked to the genetic diversity and to an incomplete understanding of the biology of these viruses. Despite the diverse host range, this group of positive-strand RNA viruses shares the same replication mechanisms, including the development of membranous structures (replication organelles) in the cytoplasm of infected cells. The development of these membranous structures, which serve as sites for the replication of the viral RNA genome, has been linked to the hijacking of elements of the cellular membrane metabolism pathways. Here we show that upon picornavirus infection, there is a specific activation of acyl-CoA synthetase enzymes resulting in strong import and accumulation of long chain fatty acids in the cytoplasm of infected cells. We show that the newly imported fatty acids serve as a substrate for the upregulation of phosphatidylcholine synthesis required for the structural development of replication organelles. In this work, we identified that acyl-CoA synthetase long chain 3 (ACSL3) is required for the upregulation of lipids syntheses and the replication of poliovirus. We have shown that the poliovirus protein 2A was required but not sufficient for the activation of import of long chain fatty acids in infected cells. We demonstrated that the fatty acid import is upregulated upon infection by diverse picornaviruses and that such upregulation is not dependent on activation of ER stress response or the autophagy pathways. In this work, we have demonstrated that phosphatidylcholine was required for the structural development of replication organelles. Phosphatidylcholine synthesis was dispensable for the production of infectious particles at high MOI but required at a low MOI for the protection of the replication complexes from the cellular innate immunity mechanisms.

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Albicidins, a family of potent antibiotics and phytotoxins produced by the sugarcane leaf scald pathogen Xanthomonas albilineans, inhibit DNA replication in bacteria and plastids. A gene located by Tn5-tagging was confirmed by complementation to participate in albicidin biosynthesis. The gene (xabB) encodes a large protein (predicted Mr 525695), with a modular architecture indicative of a multifunctional polyketide synthase (PKS) linked to a non-ribosomal peptide synthetase (NRPS). At 4801 amino acids in length, XabB is the largest reported PKS–NRPS. Twelve catalytic domains in this multifunctional enzyme are arranged in the order N terminus–acyl-CoA ligase (AL)–acyl carrier protein (ACP)–ß-ketoacyl synthase (KS)–ß-ketoacyl reductase (KR)–ACP–ACP–KS–peptidyl carrier protein (PCP)–condensation (C)–adenylation–PCP–C. The modular architecture of XabB indicates likely steps in albicidin biosynthesis and approaches to enhance antibiotic yield. The novel pattern of domains, in comparison with known PKS–NRPS enzymes for antibiotic production, also contributes to the knowledge base for rational design of enzymes producing novel antibiotics.

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BACKGROUND: Acetate metabolism in skeletal muscle is regulated by acetylCoA synthetase (ACS). The main function of ACS is to provide cells with acetylCoA, a key molecule for numerous metabolic pathways including fatty acid and cholesterol synthesis and the Krebs cycle. METHODS: Hyperpolarized [1-(13)C]acetate prepared via dissolution dynamic nuclear polarization was injected intravenously at different concentrations into rats. The (13)C magnetic resonance signals of [1-(13)C]acetate and [1-(13)C]acetylcarnitine were recorded in vivo for 1min. The kinetic rate constants related to the transformation of acetate into acetylcarnitine were deduced from the 3s time resolution measurements using two approaches, either mathematical modeling or relative metabolite ratios. RESULTS: Although separated by two biochemical transformations, a kinetic analysis of the (13)C label flow from [1-(13)C]acetate to [1-(13)C]acetylcarnitine led to a unique determination of the activity of ACS. The in vivo Michaelis constants for ACS were KM=0.35±0.13mM and Vmax=0.199±0.031μmol/g/min. CONCLUSIONS: The conversion rates from hyperpolarized acetate into acetylcarnitine were quantified in vivo and, although separated by two enzymatic reactions, these rates uniquely defined the activity of ACS. The conversion rates associated with ACS were obtained using two analytical approaches, both methods yielding similar results. GENERAL SIGNIFICANCE: This study demonstrates the feasibility of directly measuring ACS activity in vivo and, since the activity of ACS can be affected by various pathological states such as cancer or diabetes, the proposed method could be used to non-invasively probe metabolic signatures of ACS in diseased tissue.

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Holocarboxylase synthetase (HCS) catalyzes the biotinylation of the four biotin-dependent carboxylases in human cells. Patients with HCS deficiency lack activity of all four carboxylases, indicating that a single HCS is targeted to the mitochondria and cytoplasm. We isolated 21 human HCS cDNA clones, in four size classes of 2.0-4.0 kb, by complementation of an Escherichia coli birA mutant defective in biotin ligase. Expression of the cDNA clones promoted biotinylation of the bacterial biotinyl carboxyl carrier protein as well as a carboxyl-terminal fragment of the alpha subunit of human propionyl-CoA carboxylase expressed from a plasmid. The open reading frame encodes a predicted protein of 726 aa and M(r) 80,759. Northern blot analysis revealed the presence of a 5.8-kb major species and 4.0-, 4.5-, and 8.5-kb minor species of poly(A)+ RNA in human tissues. Human HCS shows specific regions of homology with the BirA protein of E. coli and the presumptive biotin ligase of Paracoccus denitrificans. Several forms of HCS mRNA are generated by alternative splicing, and as a result, two mRNA molecules bear different putative translation initiation sites. A sequence upstream of the first translation initiation site encodes a peptide structurally similar to mitochondrial presequences, but it lacks an in-frame ATG codon to direct its translation. We anticipate that alternative splicing most likely mediates the mitochondrial versus cytoplasmic expression, although the elements required for directing the enzyme to the mitochondria remain to be confirmed.

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Activation of the cephalosporin side-chain precursor to the corresponding CoA-thioester is an essential step for its incorporation into the P-lactam backbone. To identify an acyl-CoA ligase involved in activation of adipate, we searched in the genome database of Penicillium chrysogenum for putative structural genes encoding acyl-CoA ligases. Chemostat-based transcriptome analysis was used to identify the one presenting the highest expression level when cells were grown in the presence of adipate. Deletion of the gene renamed aclA, led to a 32% decreased specific rate of adipate consumption and a threefold reduction of adipoyl-6-aminopenicillanic acid levels, but did not affect penicillin V production. After overexpression in Escherichia coli, the purified protein was shown to have a broad substrate range including adipate. Finally, protein-fusion with cyan-fluorescent protein showed co-localization with microbody-borne acyl-transferase. Identification and functional characterization of aclA may aid in developing future metabolic engineering strategies for improving the production of different cephalosporins. (C) 2009 Elsevier Inc. All rights reserved.