9 resultados para Trehalase


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Saccharomyces cerevisiae neutral trehalase (encoded by NTH1) is regulated by cAMP-dependent protein kinase (PKA) and by an endogenous modulator protein. A yeast strain with knockouts of CMK1 and CMK2 genes (cmk1cmk2) and its isogenic control (CMK1CMK2) were used to investigate the role of CaM kinase II in the in vitro activation of neutral trehalase during growth on glucose. In the exponential growth phase, cmk1cmk2 cells exhibited basal trehalase activity and an activation ratio by PKA very similar to that found in CMK1CMK2 cells. At diauxie, even though both cells presented comparable basal trehalase activities, cmk1cmk2 cells showed reduced activation by PKA and lower total trehalase activity when compared to CMK1CMK2 cells. To determine if CaM kinase II regulates NTH1 expression or is involved in post-translational modulation of neutral trehalase activity, NTH1 promoter activity was evaluated using an NTH1-lacZ reporter gene. Similar ß-galactosidase activities were found for CMK1CMK2 and cmk1cmk2 cells, ruling out the role of CaM kinase II in NTH1 expression. Thus, CaM kinase II should act in concert with PKA on the activation of the cryptic form of neutral trehalase. A model for trehalase regulation by CaM kinase II is proposed whereby the target protein for Ca2+/CaM-dependent kinase II phosphorylation is not the neutral trehalase itself. The possible identity of this target protein with the recently identified trehalase-associated protein YLR270Wp is discussed.

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Neutral trehalase from Neurospora crassa was expressed in Escherichia coli as a polypeptide of similar to 84 kDa in agreement with the theoretical size calculated from the corresponding cDNA. The recombinant neutral trehalase, purified by affinity chromatography exhibited a specific activity of 80-150 mU/mg protein. Optima of pH and temperature were 7.0 and 30 degrees C, respectively. The enzyme was absolutely specific for trehalose, and was quite sensitive to incubation at 40 degrees C. The recombinant enzyme was totally dependent on calcium, and was inhibited by ATP, copper, silver, aluminium and cobalt. K(M) was 42 mM, and V(max) was 30.6 nmol of glucose/min. The recombinant protein was phosphorylated by cAMP-dependent protein kinase, but not significantly activated. Immunoblotting with polyclonal antiserum prepared against the recombinant protein showed that neutral trehalase protein levels increased during exponential phase of N. crassa growth and dropped at the stationary phase. This is the first report of a neutral trehalase produced in E. coli with similar biochemical properties described for fungi native neutral trehalases, including calcium-dependence. (C) 2008 Elsevier Inc. All rights reserved.

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Trehalase (EC 3.2.1.28) hydrolyzes only alpha, alpha`- trehalose and is present in a variety of organisms, but is most important in insects and fungi. Crystallographic data showed that bacterial trehalase has 0312 and E496 as the catalytical residues and three Arg residues in the active site. Those residues have homologous in all family 37 trehalases including Spodoptera frugiperda trehalase (0322, E520, R169, R227, R287). To test the role of these residues, mutants of trehalase were produced. All mutants were at least four orders of magnitude less active than wild type trehalase and no structural difference between these mutants and wild type enzyme were discernible by circular dichroism. D322A and E520 pH-activity profile lacked the alkaline arm and the acid arm, respectively, suggesting that D322 is the acid and E520 the basic catalyst. Azide increases E520A activity three times, confirming its action as the basic catalyst. Taking into account the decrease in activity after substitution for alanine residue, the three arginine residues are as important as the catalytical ones to trehalase activity. This clarifies the previous misidentification of an Arg residue as the acid catalyst. As far as we know, this is the first report on the functional identification residues important for trehalase activity. (C) 2010 Elsevier Ltd. All rights reserved.

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Both soluble (SfTre1) and membrane-bound (SfTre2) trehalases occur along the midgut of Spodoptera frugiperda larvae. Released SfTre2 was purified as a 67 kDa protein. Its K(m) (1.6 mM) and thermal stability (half life 10 min at 62 degrees C) are different from the previously isolated soluble trehalase (K(m) = 0.47 mM; 100% stable at 62 degrees C). Two cDNAs coding for S. frugiperda trehalases have been cloned using primers based on consensus sequences of trehalases and having as templates a cDNA library prepared from total polyA-containing RNA extracted from midguts. One cDNA codes for a trehalase that has a predicted transmembrane sequence and was defined as SfTre2. The other, after being cloned and expressed, results in a recombinant trehalase with a K(m) value and thermal stability like those of native soluble trehalase. This enzyme was defined as SfTre1 and, after it was used to generate antibodies, it was immunolocalized at the secretory vesicles and at the glycocalyx of columnar cells. Escherichia coli trehalase 3D structure and sequence alignment with SfTre1 support a proposal regarding the residue modulating the pKa value of the proton donor.

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Trehalose (α-d-glucopyranosyl-1,1-α-d-glucopyranoside), a disaccharide widespread among microbes and lower invertebrates, is generally believed to be nonexistent in higher plants. However, the recent discovery of Arabidopsis genes whose products are involved in trehalose synthesis has renewed interest in the possibility of a function of trehalose in higher plants. We previously showed that trehalase, the enzyme that degrades trehalose, is present in nodules of soybean (Glycine max [L.] Merr.), and we characterized the enzyme as an apoplastic glycoprotein. Here we describe the purification of this trehalase to homogeneity and the cloning of a full-length cDNA encoding this enzyme, named GMTRE1 (G. max trehalase 1). The amino acid sequence derived from the open reading frame of GMTRE1 shows strong homology to known trehalases from bacteria, fungi, and animals. GMTRE1 is a single-copy gene and is expressed at a low but constant level in many tissues.

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Trehalose biosynthesis and its hydrolysis have been extensively studied in yeast, but few reports have addressed the catabolism of exogenously supplied trehalose. Here we report the catabolism of exogenous trehalose by Candida utilis. In contrast to the biphasic growth in glucose, the growth of C. utilis in a mineral medium with trehalose as the sole carbon and energy source is aerobic and exhibits the Kluyver effect. Trehalose is transported into the cell by an inducible trehalose transporter (K M of 8 mM and V MAX of 1.8 µmol trehalose min-1 mg cell (dry weight)-1. The activity of the trehalose transporter is high in cells growing in media containing trehalose or maltose and very low or absent during the growth in glucose or glycerol. Similarly, total trehalase activity was increased from about 1.0 mU/mg protein in cells growing in glucose to 39.0 and 56.2 mU/mg protein in cells growing in maltose and trehalose, respectively. Acidic and neutral trehalase activities increased during the growth in trehalose, with neutral trehalase contributing to about 70% of the total activity. In addition to the increased activities of the trehalose transporter and trehalases, growth in trehalose promoted the increase in the activity of alpha-glucosidase and the maltose transporter. These results clearly indicate that maltose and trehalose promote the increase of the enzymatic activities necessary to their catabolism but are also able to stimulate each other's catabolism, as reported to occur in Escherichia coli. We show here for the first time that trehalose induces the catabolism of maltose in yeast.

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Abstract Background The ability to respond rapidly to fluctuations in environmental changes is decisive for cell survival. Under these conditions trehalose has an essential protective function and its concentration increases in response to enhanced expression of trehalose synthase genes, TPS1, TPS2, TPS3 and TSL1. Intriguingly, the NTH1 gene, which encodes neutral trehalase, is highly expressed at the same time. We have previously shown that trehalase remains in its inactive non-phosphorylated form by the action of an endogenous inhibitor. Recently, a comprehensive two-hybrid analysis revealed a 41-kDa protein encoded by the YLR270w ORF, which interacts with NTH1p. Results In this work we investigate the correlation of this Trehalase Associated Protein, in trehalase activity regulation. The neutral trehalase activity in the ylr270w mutant strain was about 4-fold higher than in the control strain. After in vitro activation by PKA the ylr270w mutant total trehalase activity increased 3-fold when compared to a control strain. The expression of the NTH1 gene promoter fused to the heterologous reporter lacZ gene was evaluated. The mutant strain lacking YLR270w exhibited a 2-fold increase in the NTH1-lacZ basal expression when compared to the wild type strain. Conclusions These results strongly indicate a central role for Ylr270p in inhibiting trehalase activity, as well as in the regulation of its expression preventing a wasteful futile cycle of synthesis-degradation of trehalose.

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Flugfähige Insekten sind äußerst leistungsfähige Tiere. Ihre Flugmuskulatur ist das Gewebe mit der höchsten ATP-Umsatzrate im Tierreich. Der hohe Energieumsatz ist möglich durch einen vollständig aeroben Stoffwechsel der Flugmuskulatur, der durch die effiziente Sauerstoffversorgung über das Tracheensystem gewährleistet wird. Andererseits haben Insekten einen offenen Blutkreislauf, d.h. ihre Gewebe werden nicht über Kapillaren mit Substraten versorgt, sondern von der Hämolymphe umspült, die daher eine hohe Konzentration an energieliefernden Substraten haben muss. Als schnell verfügbares Substrat nutzen Wanderheuschrecken bei Beginn eines Fluges als Hauptsubstrat Trehalose, die in hoher Konzentration als Hämolymphzucker vorliegt (20 bis 40mal höhere Konzentration als Glucose). Trehalose ist, anders als Glucose, ein nicht-reduzierender Zucker und daher nicht toxisch. Allerdings muss das Disaccharid Trehalose zu Glucose hydrolysiert werden, bevor sie im Zellstoffwechsel verwertet werden kann. Diese Funktion erfüllt die Trehalase (EC 3.2.1.28), ein Enzym, das membrangebunden ist und nach Zellfraktionierung in der Mikrosomenfraktion erscheint. Es ist schon lange offensichtlich, dass die Aktivität der Trehalase regulierbar sein muss und zwar reversibel (eine Eigenschaft, die für Hydrolasen ungewöhnlich ist), der Mechanismus ist allerdings bislang nicht klar, da alle üblichen Typen von Aktivitätsregulation nicht verwirklicht zu sein scheinen. Die meisten Autoren vermuten, dass die Regulation über den Transport des Substrats erfolgt. Ein Trehalosetransporter konnte allerdings bisher in der Flugmuskulatur von Locusta nicht nachgewiesen werden. In dieser Arbeit stelle ich Experimente vor, die dafür sprechen, dass Trehalase als Ektoenzym aktiv ist (overte Form), während eine inaktive Form (latente Form) in Vesikeln im Cytoplasma vorliegt und per Exocytose reversibel in die Plasmamembran transloziert werden kann. Für die Testung dieser Arbeitshypothese nutzte ich Trehazolin, einen sehr spezifischen Inhibitor der Trehalase, der äußerst fest und dauerhaft im aktiven Zentrum des Enzyms bindet. Dazu war es nötig, die Flugmuskulatur zu fraktionieren, um die Effekte von Trehazolin auf die verschiedenen Formen der Trehalase (gebunden, löslich, overt, latent) zu analysieren. Mit der Arbeitshypothese vereinbar sind die folgenden Befunde: (1) In die Hämolymphe injiziertes Trehazolin hemmt bevorzugt die overte Trehalase und erst bei höheren Dosen und nach längerer Zeit die latente Form. (2) Trehazolin wirkt in hoher Dosis (50µg pro Tier) auch nach Verfütterung, allerdings stark abgeschwächt, da nach 24 Stunden ein signifikanter Effekt nur auf die overte, aber nicht auf die latente Form sichtbar war. (3) In einem Langzeitversuch über 30 Tage führte die einmalige Injektion von 20µg Trehazolin zu einer schnellen Hemmung der overten Trehalase, der eine verzögerte Hemmung der latenten Aktivität folgte. Der Zeitverlauf von Hemmung und Erholung spricht für eine Vorläufer-Produkt-Beziehung zwischen latenter und overter Form. (4) Flugaktivität der Tiere führt zu einer starken Verminderung der latenten Aktivität, falls Trehazolin in der Hämolymphe der Tiere vorhanden war. (5) Neuropeptide könnten die Translokation fördern. Insulin hat einen entsprechenden Effekt, der aber unabhängig ist von der Flugaktivität. (6) Der PI3-Kinasehemmstoff Wortmannin stabilisiert die latente Form der Trehalase. Auch andere Organe als die Flugmuskulatur besitzen Trehalase, aber mit deutlich geringerer Aktivität. In der Sprungmuskulatur könnte auch eine latente Form vorhanden sein, für Darm und Gehirn ist das nicht wahrscheinlich.