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1.
Int J Mol Sci ; 22(13)2021 Jul 02.
Artigo em Inglês | MEDLINE | ID: mdl-34281213

RESUMO

3'-Phosphoadenosine 5'-monophosphate (pAp) is a byproduct of sulfate assimilation and coenzyme A metabolism. pAp can inhibit the activity of 3'-phosphoadenosine 5'-phosphosulfate (PAPS) reductase and sulfotransferase and regulate gene expression under stress conditions by inhibiting XRN family of exoribonucleases. In metazoans, plants, yeast, and some bacteria, pAp can be converted into 5'-adenosine monophosphate (AMP) and inorganic phosphate by CysQ. In some bacteria and archaea, nanoRNases (Nrn) from the Asp-His-His (DHH) phosphoesterase superfamily are responsible for recycling pAp. In addition, histidinol phosphatase from the amidohydrolase superfamily can hydrolyze pAp. The bacterial enzymes for pAp turnover and their catalysis mechanism have been well studied, but these processes remain unclear in archaea. Pyrococcus yayanosii, an obligate piezophilic hyperthermophilic archaea, encodes a DHH family pApase homolog (PyapApase). Biochemical characterization showed that PyapApase can efficiently convert pAp into AMP and phosphate. The resolved crystal structure of apo-PyapApase is similar to that of bacterial nanoRNaseA (NrnA), but they are slightly different in the α-helix linker connecting the DHH and Asp-His-His associated 1 (DHHA1) domains. The longer α-helix of PyapApase leads to a narrower substrate-binding cleft between the DHH and DHHA1 domains than what is observed in bacterial NrnA. Through mutation analysis of conserved amino acid residues involved in coordinating metal ion and binding substrate pAp, it was confirmed that PyapApase has an ion coordination pattern similar to that of NrnA and slightly different substrate binding patterns. The results provide combined structural and functional insight into the enzymatic turnover of pAp, implying the potential function of sulfate assimilation in hyperthermophilic cells.


Assuntos
Pyrococcus/enzimologia , Família Multigênica , Pyrococcus/genética , Especificidade por Substrato , Sulfatos/metabolismo
2.
Angew Chem Int Ed Engl ; 60(46): 24418-24423, 2021 11 08.
Artigo em Inglês | MEDLINE | ID: mdl-34498345

RESUMO

The knowledge on sulfur incorporation mechanism involved in sulfur-containing molecule biosynthesis remains limited. Chuangxinmycin is a sulfur-containing antibiotic with a unique thiopyrano[4,3,2-cd]indole (TPI) skeleton and selective inhibitory activity against bacterial tryptophanyl-tRNA synthetase. Despite the previously reported biosynthetic gene clusters and the recent functional characterization of a P450 enzyme responsible for C-S bond formation, the enzymatic mechanism for sulfur incorporation remains unknown. Here, we resolve this central biosynthetic problem by in vitro biochemical characterization of the key enzymes and reconstitute the TPI skeleton in a one-pot enzymatic reaction. We reveal that the JAMM/MPN+ protein Cxm3 functions as a deubiquitinase-like sulfurtransferase to catalyze a non-classical sulfur-transfer reaction by interacting with the ubiquitin-like sulfur carrier protein Cxm4GG. This finding adds a new mechanism for sulfurtransferase in nature.


Assuntos
Antibacterianos/biossíntese , Proteínas de Bactérias/metabolismo , Sulfurtransferases/metabolismo , Actinoplanes/genética , Actinoplanes/metabolismo , Antibacterianos/química , Proteínas de Bactérias/química , Proteínas de Bactérias/genética , Escherichia coli/química , Escherichia coli/genética , Escherichia coli/metabolismo , Humanos , Indóis/análise , Indóis/química , Indóis/metabolismo , Família Multigênica , Pyrococcus/enzimologia , Pyrococcus/genética , Enxofre/metabolismo , Sulfurtransferases/química , Sulfurtransferases/genética , Ubiquitinação , Ubiquitinas/genética , Ubiquitinas/metabolismo
3.
Acc Chem Res ; 52(3): 576-584, 2019 03 19.
Artigo em Inglês | MEDLINE | ID: mdl-30830755

RESUMO

Transition metal catalysis is a powerful tool for chemical synthesis, a standard by which understanding of elementary chemical processes can be measured, and a source of awe for those who simply appreciate the difficulty of cleaving and forming chemical bonds. Each of these statements is amplified in cases where the transition metal catalyst controls the selectivity of a chemical reaction. Enantioselective catalysis is a challenging but well-established phenomenon, and regio- or site-selective catalysis is increasingly common. On the other hand, transition-metal-catalyzed reactions are typically conducted under highly optimized conditions. Rigorous exclusion of air and water is common, and it is taken for granted that only a single substrate (of a particular class) will be present in a reaction, a desired site selectivity can be achieved by installing a directing group, and undesired reactivity can be blocked with protecting groups. These are all reasonable synthetic strategies, but they also highlight limits to catalyst control. The utility of transition metal catalysis could be greatly expanded if catalysts possessed the ability to regulate which molecules they encounter and the relative orientation of those molecules. The rapid and widespread adoption of stoichiometric bioorthogonal reactions illustrates the utility of robust reactions that proceed with high selectivity and specificity under mild reaction conditions. Expanding this capability beyond preprogrammed substrate pairs via catalyst control could therefore have an enormous impact on molecular science. Many metalloenzymes exhibit this level of catalyst control, and directed evolution can be used to rapidly improve the catalytic properties of these systems. On the other hand, the range of reactions catalyzed by enzymes is limited relative to that developed by chemists. The possibility of imparting enzyme-like activity, selectivity, and evolvability to reactions catalyzed by synthetic transition metal complexes has inspired the creation of artificial metalloenzymes (ArMs). The increasing levels of catalyst control exhibited by ArMs developed to date suggest that these systems could constitute a powerful platform for bioorthogonal transition metal catalysis and for selective catalysis in general. This Account outlines the development of a new class of ArMs based on a prolyl oligopeptidase (POP) scaffold. Studies conducted on POP ArMs containing a covalently linked dirhodium cofactor have shown that POP can impart enantioselectivity to a range of dirhodium-catalyzed reactions, increase reaction rates, and improve the specificity for reaction of dirhodium carbene intermediates with targeted organic substrates over components of cell lysate, including bulk water. Several design features of these ArMs enabled their evolution via random mutagenesis, which revealed that mutations throughout the POP scaffold, beyond the second sphere of the dirhodium cofactor, were important for ArM activity and selectivity. While it was anticipated that the POP scaffold would be capable of encapsulating and thus controlling the selectivity of bulky cofactors, molecular dynamics studies also suggest that POP conformational dynamics plays a role in its unique efficacy. These advances in scaffold selection, bioconjugation, and evolution form the basis of our ongoing efforts to control transition metal reactivity using protein scaffolds with the goal of enabling unique synthetic capabilities, including bioorthogonal catalysis.


Assuntos
Metaloproteínas/química , Ródio/química , Serina Endopeptidases/química , Catálise , Metaloproteínas/genética , Mutação , Prolil Oligopeptidases , Engenharia de Proteínas , Pyrococcus/enzimologia , Serina Endopeptidases/genética
4.
Biomacromolecules ; 21(2): 974-987, 2020 02 10.
Artigo em Inglês | MEDLINE | ID: mdl-31940180

RESUMO

Glycosidases have long been used for the synthesis of glycosides by transglycosylation reactions. Especially glycosidases from hyperthermophilic bacteria are useful for reactions under extreme reaction conditions, e.g., in the presence of organic solvents. We herein report the facile enzymatic synthesis and purification of 2-(ß-galactosyl)-ethyl methacrylate (Gal-EMA) with the recombinant hyperthermostable glycosidase from Pyrococcus woesei in high yields. Optimized reaction conditions resulted in gram-scale synthesis of the galactosylated monomer with 88% transglycosylation yield. The product Gal-EMA was characterized by high-performance liquid chromatography-electrospray ionization-mass spectrometry (HPLC-ESI-MS), nuclear magnetic resonance (NMR) spectroscopy, and infrared (IR) spectroscopy. Gal-EMA was utilized to synthesize sugar-functionalized acrylate polymers with defined amounts of incorporated galactose (0-100%). Analysis of the binding affinity of the lectin RCA120 from Ricinus communis to the glycopolymers using an enzyme-linked lectin assay (ELLA) revealed KD values between 0.24 and 6.2 nM, depending on the amount of incorporated Gal-EMA. The potential of Gal-EMA for the synthesis of acrylate-functionalized glycan oligomers was demonstrated by sequential elongation of the terminal galactose by two glycosyltransferases, resulting in the terminal glycan N-acetyllactosamine (LacNAc) epitope. In conclusion, the enzymatic synthesis of Gal-EMA opens new routes to a series of novel monomeric building blocks for the synthesis of glycan-functionalized polyacrylates.


Assuntos
Lectinas/metabolismo , Metacrilatos/metabolismo , Polímeros/metabolismo , Pyrococcus/enzimologia , beta-Galactosidase/metabolismo , Humanos , Lectinas/síntese química , Metacrilatos/síntese química , Polímeros/síntese química , Espectrometria de Massas por Ionização por Electrospray/métodos , beta-Galactosidase/síntese química
5.
Glycobiology ; 28(6): 418-426, 2018 06 01.
Artigo em Inglês | MEDLINE | ID: mdl-29800365

RESUMO

Chitinase D (designated as Pc-ChiD) was found in a hyperthermophilic archaeon, Pyrococcus chitonophagus (previously described as Thermococcus chitonophagus), that was isolated from media containing only chitin as carbon source. Pc-ChiD displays chitinase activity and is thermostable at temperatures up to 95°C, suggesting its potential for industrial use. Pc-ChiD has a secretion signal peptide and two chitin-binding domains (ChBDs) in the N-terminal domain. However, the C-terminal domain shares no sequence similarity with previously identified saccharide-degrading enzymes and does not contain the DXDXE motif conserved in the glycoside hydrolase (GH) 18 family chitinases. To elucidate its overall structure and reaction mechanism, we determined the first crystal structures of Pc-ChiD, both in the ligand-free form and in complexes with substrates. Structure analyses revealed that the C-terminal domain of Pc-ChiD, Pc-ChiD(ΔBD), consists of a third putative substrate-binding domain, which cannot be predicted from the amino acid sequence, and a catalytic domain structurally similar to that found in not the GH18 family but the GH23 family. Based on the similarity with GH23 family chitinase, the catalytic residues of Pc-ChiD were predicted and confirmed by mutagenesis analyses. Moreover, the specific C-terminal 100 residues of Pc-ChiD are important to fix the putative substrate-binding domain next to the catalytic domain, contributing to the structure stability as well as the long chitin chain binding. Our findings reveal the structure of a unique archaeal chitinase that is distinct from previously known members of the GH23 family.


Assuntos
Proteínas Arqueais/química , Quitinases/química , Simulação de Acoplamento Molecular , Proteínas Arqueais/metabolismo , Domínio Catalítico , Quitinases/metabolismo , Ligantes , Ligação Proteica , Pyrococcus/enzimologia
6.
Biochem Biophys Res Commun ; 483(1): 52-57, 2017 01 29.
Artigo em Inglês | MEDLINE | ID: mdl-28063932

RESUMO

DNA polymerases are useful tools in various biochemical experiments. We have focused on the DNA polymerases involved in DNA replication including the unnatural base pair between 7-(2-thienyl)imidazo[4,5-b]pyridine (Ds) and 2-nitro-4-propynylpyrrole (Px). Many reports have described the different combinations between unnatural base pairs and DNA polymerases. As an example, for the replication of the Ds-Px pair, Deep Vent DNA polymerase exhibits high efficiency and fidelity, but Taq DNA polymerase shows much lower efficiency and fidelity. In the present study, we determined the crystal structure of Deep Vent DNA polymerase in the apo form at 2.5 Å resolution. Using this structure, we constructed structural models of Deep Vent DNA polymerase complexes with DNA containing an unnatural or natural base in the replication position. The models revealed that the unnatural Ds base in the template-strand DNA clashes with the side-chain oxygen of Thr664 in Taq DNA polymerase, but not in Deep Vent DNA polymerase.


Assuntos
DNA Polimerase Dirigida por DNA/química , Proteínas Arqueais/química , Pareamento de Bases , Sítios de Ligação , Cristalografia por Raios X , DNA/química , Modelos Moleculares , Pyrococcus/enzimologia , Homologia Estrutural de Proteína , Taq Polimerase/química
7.
Extremophiles ; 21(5): 861-869, 2017 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-28744780

RESUMO

Nitriles are important chemical building blocks for the synthesis of intermediates in fine chemical and pharmaceutical industries. Here, we report a new highly thermostable nitrilase from an Antarctic Pyrococcus sp. MC-FB, a hyperthermophilic archaeon. A gene that encoded a nitrilase was identified and subsequently cloned and overexpressed in Escherichia coli. The recombinant nitrilase, named NitMC-FB, is active as a homodimer (60 kDa) with an optimal temperature and pH of 90 °C and 7.0, respectively. NitMC-FB hydrolyzes preferentially aromatic nitriles, being the first aromatic nitrilase from an archaeon described so far. The K M and V max parameters were determined to be 13.9 mM and 3.7 µmol/min*mg, respectively, with 2-cyanopyridine as the substrate. Additionally, the recombinant nitrilase is highly thermostable with a half-life of 8 h at 90 °C.


Assuntos
Aminoidrolases/genética , Proteínas Arqueais/metabolismo , Pyrococcus/enzimologia , Aminoidrolases/química , Aminoidrolases/metabolismo , Regiões Antárticas , Proteínas Arqueais/química , Proteínas Arqueais/genética , Estabilidade Enzimática , Desnaturação Proteica , Pyrococcus/genética
8.
Int J Mol Sci ; 17(2): 210, 2016 Feb 04.
Artigo em Inglês | MEDLINE | ID: mdl-26861292

RESUMO

The potential of the hyperthermophilic ß-glycosidase from Pyrococcus woesei (DSM 3773) for the synthesis of glycosides under microwave irradiation (MWI) at low temperatures was investigated. Transgalactosylation reactions with ß-N-acetyl-d-glucosamine as acceptor substrate (GlcNAc-linker-tBoc) under thermal heating (TH, 85 °C) and under MWI at 100 and 300 W resulted in the formation of (Galß(1,4)GlcNAc-linker-tBoc) as the main product in all reactions. Most importantly, MWI at temperatures far below the temperature optimum of the hyperthermophilic glycosidase led to higher product yields with only minor amounts of side products ß(1,6-linked disaccharide and trisaccharides). At high acceptor concentrations (50 mM), transgalactosylation reactions under MWI at 300 W gave similar product yields when compared to TH at 85 °C. In summary, we demonstrate that MWI is useful as a novel experimental set-up for the synthesis of defined galacto-oligosaccharides. In conclusion, glycosylation reactions under MWI at low temperatures have the potential as a general strategy for regioselective glycosylation reactions of hyperthermophilic glycosidases using heat-labile acceptor or donor substrates.


Assuntos
Glicoconjugados/síntese química , Glicosídeo Hidrolases/química , Micro-Ondas , Pyrococcus/enzimologia , Proteínas Recombinantes , Catálise , Estabilidade Enzimática , Glicoconjugados/química , Glicosilação , Temperatura Alta , Hidrólise , Peso Molecular
9.
Nucleic Acids Res ; 41(7): 4207-18, 2013 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-23408858

RESUMO

Archaeal family-D DNA polymerase is inhibited by the presence of uracil in DNA template strands. When the enzyme encounters uracil, following three parameters change: DNA binding increases roughly 2-fold, the rate of polymerization slows by a factor of ≈ 5 and 3'-5' proof-reading exonuclease activity is stimulated by a factor of ≈ 2. Together these changes result in a significant decrease in polymerization activity and a reduction in net DNA synthesis. Pol D appears to interact with template strand uracil irrespective of its distance ahead of the replication fork. Polymerization does not stop at a defined location relative to uracil, rather a general decrease in DNA synthesis is observed. 'Trans' inhibition, the slowing of Pol D by uracil on a DNA strand not being replicated is also observed. It is proposed that Pol D is able to interact with uracil by looping out the single-stranded template, allowing simultaneous contact of both the base and the primer-template junction to give a polymerase-DNA complex with diminished extension ability.


Assuntos
DNA Polimerase Dirigida por DNA/metabolismo , Pyrococcus/enzimologia , Uracila/metabolismo , DNA/biossíntese , DNA/química , DNA/metabolismo , DNA de Cadeia Simples/química , DNA de Cadeia Simples/metabolismo , Nucleotídeos de Desoxiadenina/metabolismo , Desoxirribonucleotídeos/metabolismo , Exonucleases/metabolismo , Inibidores da Síntese de Ácido Nucleico , Moldes Genéticos
10.
J Ind Microbiol Biotechnol ; 42(1): 137-41, 2015 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-25387612

RESUMO

Talaromyces cellulolyticus (formerly known as Acremonium cellulolyticus) is one of the high cellulolytic enzyme-producing fungi. T. cellulolyticus exhibits the potential ability for high amount production of enzyme proteins. Using the homologous expression system under the control of a glucoamylase promoter, some kinds of cellulases of T. cellulolyticus can be expressed by T. cellulolyticus. On the other hand, hyperthermophilic cellulase has been expected to be useful in the industrial applications to biomass. The hyperthermophilic archaea Pyrococcus horikoshii and P. furiosus have GH family 5 and 12 hyperthermophilic endocellulase, respectively. The two kinds of hyperthermophilic endocellulases were successfully produced by T. cellulolyticus using the above expression system under the control of a glucoamylase promoter of T. cellulolyticus. These recombinant cellulases exhibited the same characteristics as those of the recombinant cellulases prepared in E. coli. The productions of the recombinant enzymes were estimated to be over 100 mg/L. In this study, we first report the overexpression of the hyperthermophilic enzymes of archaea using the fungal expression system.


Assuntos
Celulases/biossíntese , Regulação Enzimológica da Expressão Gênica , Pyrococcus/enzimologia , Talaromyces/metabolismo , Glucana 1,4-alfa-Glucosidase/genética , Regiões Promotoras Genéticas , Pyrococcus/genética
11.
J Biol Chem ; 288(29): 21279-21294, 2013 Jul 19.
Artigo em Inglês | MEDLINE | ID: mdl-23733187

RESUMO

In the search for structural models of integral-membrane metallopeptidases (MPs), we discovered three related proteins from thermophilic prokaryotes, which we grouped into a novel family called "minigluzincins." We determined the crystal structures of the zymogens of two of these (Pyrococcus abyssi proabylysin and Methanocaldococcus jannaschii projannalysin), which are soluble and, with ∼100 residues, constitute the shortest structurally characterized MPs to date. Despite relevant sequence and structural similarity, the structures revealed two unique mechanisms of latency maintenance through the C-terminal segments previously unseen in MPs as follows: intramolecular, through an extended tail, in proabylysin, and crosswise intermolecular, through a helix swap, in projannalysin. In addition, structural and sequence comparisons revealed large similarity with MPs of the gluzincin tribe such as thermolysin, leukotriene A4 hydrolase relatives, and cowrins. Noteworthy, gluzincins mostly contain a glutamate as third characteristic zinc ligand, whereas minigluzincins have a histidine. Sequence and structural similarity further allowed us to ascertain that minigluzincins are very similar to the catalytic domains of integral membrane MPs of the MEROPS database families M48 and M56, such as FACE1, HtpX, Oma1, and BlaR1/MecR1, which are provided with trans-membrane helices flanking or inserted into a minigluzincin-like catalytic domain. In a time where structural biochemistry of integral-membrane proteins in general still faces formidable challenges, the minigluzincin soluble minimal scaffold may contribute to our understanding of the working mechanisms of these membrane MPs and to the design of novel inhibitors through structure-aided rational drug design approaches.


Assuntos
Archaea/enzimologia , Proteínas Arqueais/química , Domínio Catalítico , Proteínas de Membrana/química , Metaloproteases/química , Sequência de Aminoácidos , Biologia Computacional , Cristalografia por Raios X , Ativação Enzimática , Ensaios Enzimáticos , Precursores Enzimáticos/química , Precursores Enzimáticos/metabolismo , Humanos , Modelos Moleculares , Dados de Sequência Molecular , Proteólise , Pyrococcus/enzimologia , Solubilidade , Homologia Estrutural de Proteína
12.
Acta Crystallogr D Biol Crystallogr ; 70(Pt 6): 1659-68, 2014 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-24914977

RESUMO

A novel maltose-forming α-amylase (PSMA) was recently found in the hyperthermophilic archaeon Pyrococcus sp. ST04. This enzyme shows <13% amino-acid sequence identity to other known α-amylases and displays a unique enzymatic property in that it hydrolyzes both α-1,4-glucosidic and α-1,6-glucosidic linkages of substrates, recognizing only maltose units, in an exo-type manner. Here, the crystal structure of PSMA at a resolution of 1.8 Šis reported, showing a tight ring-shaped tetramer with monomers composed of two domains: an N-domain (amino acids 1-341) with a typical GH57 family (ß/α)7-barrel fold and a C-domain (amino acids 342-597) composed of α-helical bundles. A small closed cavity observed in proximity to the catalytic residues Glu153 and Asp253 at the domain interface has the appropriate volume and geometry to bind a maltose unit, accounting for the selective exo-type maltose hydrolysis of the enzyme. A narrow gate at the putative subsite +1 formed by residue Phe218 and Phe452 is essential for specific cleavage of glucosidic bonds. The closed cavity at the active site is connected to a short substrate-binding channel that extends to the central hole of the tetramer, exhibiting a geometry that is significantly different from classical maltogenic amylases or ß-amylases. The structural features of this novel exo-type maltose-forming α-amylase provide a molecular basis for its unique enzymatic characteristics and for its potential use in industrial applications and protein engineering.


Assuntos
Amilases/metabolismo , Maltose/metabolismo , Pyrococcus/enzimologia , Amilases/química , Amilases/genética , Domínio Catalítico , Modelos Moleculares , Mutagênese Sítio-Dirigida , Conformação Proteica , Proteólise , Especificidade por Substrato
13.
Extremophiles ; 18(2): 429-40, 2014 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-24430467

RESUMO

Amidases catalyze the hydrolysis of amides to free carboxylic acids and ammonia. Hyperthermophilic archaea are a natural reservoir of various types of thermostable enzymes. Here, we report the purification and characterization of an amidase from Pyrococcus yayanosii CH1, the first representative of a strict-piezophilic hyperthermophilic archaeon that originated from a deep-sea hydrothermal vent. An open reading frame that encoded a putative member of the nitrilase protein superfamily was identified. We cloned and overexpressed amiE in Escherichia coli C41 (DE3). The purified AmiE enzyme displayed maximal activity at 85 °C and pH 6.0 (NaH2PO4-Na2HPO4) with acetamide as the substrate and showed activity over the pH range of 4-8 and the temperature range of 4-95 °C. AmiE is a dimer and active on many aliphatic amide substrates, such as formamide, acetamide, hexanamide, acrylamide, and L-glutamine. Enzyme activity was induced by 1 mM Ca(2+), 1 mM Al(3+), and 1-10 mM Mg(2+), but strongly inhibited by Zn(2+), Cu(2+), Ni(2+), and Fe(3+). The presence of acetone and ethanol significantly decreased the enzymatic activity. Neither 5% methanol nor 5% isopropanol had any significant effect on AmiE activity (99 and 96% retained, respectively). AmiE displayed amidase activity although it showed high sequence homology (78% identity) with the known nitrilase from Pyrococcus abyssi. AmiE is the most characterized archaeal thermostable amidase in the nitrilase superfamily. The thermostability and pH-stability of AmiE will attract further studies on its potential industrial applications.


Assuntos
Amidoidrolases/metabolismo , Proteínas Arqueais/metabolismo , Temperatura Alta , Pyrococcus/enzimologia , Amidoidrolases/química , Sequência de Aminoácidos , Proteínas Arqueais/química , Domínio Catalítico , Estabilidade Enzimática , Concentração de Íons de Hidrogênio , Cinética , Dados de Sequência Molecular , Concentração Osmolar , Especificidade por Substrato
14.
Appl Microbiol Biotechnol ; 98(5): 2121-31, 2014 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-23884203

RESUMO

The deduced amino acid sequence from a gene of the hyperthermophilic archaeon Pyrococcus sp. ST04 (Py04_0872) contained a conserved glycoside hydrolase family 57 (GH57) motif, but showed <13% sequence identity with other known Pyrococcus GH57 enzymes, such as 4-α-glucanotransferase (EC 2.4.1.25), amylopullulanase (EC 3.2.1.41), and branching enzyme (EC 2.4.1.18). This gene was cloned and expressed in Escherichia coli, and the recombinant product (Pyrococcus sp. ST04 maltose-forming α-amylase, PSMA) was a novel 70-kDa maltose-forming α-amylase. PSMA only recognized maltose (G2) units with α-1,4 and α-1,6 linkages in polysaccharides (e.g., starch, amylopectin, and glycogen) and hydrolyzed pullulan very poorly. G2 was the primary end product of hydrolysis. Branched cyclodextrin (CD) was only hydrolyzed along its branched maltooligosaccharides. 6-O-glucosyl-ß-cyclodextrin (G1-ß-CD) and ß-cyclodextrin (ß-CD) were resistant to PSMA suggesting that PSMA is an exo-type glucan hydrolase with α-1,4- and α-1,6-glucan hydrolytic activities. The half-saturation value (Km) for the α-1,4 linkage of maltotriose (G3) was 8.4 mM while that of the α-1,6 linkage of 6-O-maltosyl-ß-cyclodextrin (G2-ß-CD) was 0.3 mM. The kcat values were 381.0 min(-1) for G3 and 1,545.0 min(-1) for G2-ß-CD. The enzyme was inhibited competitively by the reaction product G2, and the Ki constant was 0.7 mM. PSMA bridges the gap between amylases that hydrolyze larger maltodextrins and α-glucosidase that feeds G2 into glycolysis by hydrolyzing smaller glucans into G2 units.


Assuntos
Maltose/metabolismo , Pyrococcus/enzimologia , alfa-Amilases/isolamento & purificação , alfa-Amilases/metabolismo , Clonagem Molecular , Escherichia coli/genética , Expressão Gênica , Cinética , Peso Molecular , Pyrococcus/genética , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/isolamento & purificação , Proteínas Recombinantes/metabolismo , Especificidade por Substrato , alfa-Amilases/química , alfa-Amilases/genética
15.
Proc Natl Acad Sci U S A ; 108(5): 1845-9, 2011 Feb 01.
Artigo em Inglês | MEDLINE | ID: mdl-21245343

RESUMO

DNA replication in archaea and eukaryotes is executed by family B DNA polymerases, which exhibit full activity when complexed with the DNA clamp, proliferating cell nuclear antigen (PCNA). This replication enzyme consists of the polymerase and exonuclease moieties responsible for DNA synthesis and editing (proofreading), respectively. Because of the editing activity, this enzyme ensures the high fidelity of DNA replication. However, it remains unclear how the PCNA-complexed enzyme temporally switches between the polymerizing and editing modes. Here, we present the three-dimensional structure of the Pyrococcus furiosus DNA polymerase B-PCNA-DNA ternary complex, which is the core component of the replisome, determined by single particle electron microscopy of negatively stained samples. This structural view, representing the complex in the editing mode, revealed the whole domain configuration of the trimeric PCNA ring and the DNA polymerase, including protein-protein and protein-DNA contacts. Notably, besides the authentic DNA polymerase-PCNA interaction through a PCNA-interacting protein (PIP) box, a novel contact was found between DNA polymerase and the PCNA subunit adjacent to that with the PIP contact. This contact appears to be responsible for the configuration of the complex specific for the editing mode. The DNA was located almost at the center of PCNA and exhibited a substantial and particular tilt angle against the PCNA ring plane. The obtained molecular architecture of the complex, including the new contact found in this work, provides clearer insights into the switching mechanism between the two distinct modes, thus highlighting the functional significance of PCNA in the replication process.


Assuntos
DNA Polimerase beta/metabolismo , DNA/metabolismo , Antígeno Nuclear de Célula em Proliferação/metabolismo , DNA/química , DNA Polimerase beta/química , Ácido Glutâmico/metabolismo , Microscopia Eletrônica , Modelos Moleculares , Antígeno Nuclear de Célula em Proliferação/química , Pyrococcus/enzimologia , Estreptavidina/metabolismo
16.
Extremophiles ; 17(4): 593-9, 2013 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-23624891

RESUMO

The hyperthermophilic endocellulase, EGPh (glycosyl hydrolase family 5) from Pyrococcus horikoshii possesses 4 cysteine residues forming 2 disulfide bonds, as identified by structural analysis. One of the disulfide bonds is located at the proximal region of the active site in EGPh, which exhibits a distinct pattern from that of the thermophilic endocellulase EGAc (glycosyl hydrolase family 5) of Acidothermus cellulolyticus despite the structural similarity between the two endocellulases. The structural similarity between EGPh and EGAc suggests that EGPh possesses a structure suitable for changing the position of the disulfide bond corresponding to that in EGAc. Introduction of this alternative disulfide bond in EGPh, while removing the original disulfide bond, did not result in a loss of enzymatic activity but the EGPh was no longer hyperthermostable. These results suggest that the contribution of disulfide bond to hyperthermostability at temperature higher than 100 °C is restrictive, and that its impact is dependent on the specific structural environment of the hyperthermophilic proteins. The data suggest that the structural position and environment of the disulfide bond has a greater effect on high-temperature thermostability of the enzyme than on the potential energy of the dihedral angle that contributes to disulfide bond cleavage.


Assuntos
Proteínas Arqueais/química , Celulase/química , Dissulfetos/química , Pyrococcus/enzimologia , Actinomycetales/enzimologia , Sequência de Aminoácidos , Proteínas Arqueais/genética , Proteínas de Bactérias/química , Proteínas de Bactérias/genética , Celulase/genética , Cisteína/química , Cisteína/genética , Estabilidade Enzimática , Temperatura Alta , Dados de Sequência Molecular , Mutação , Desnaturação Proteica
17.
Appl Microbiol Biotechnol ; 97(8): 3419-27, 2013 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-22752365

RESUMO

Two types of hetero-oligomeric dye-linked L-proline dehydrogenases (α4ß4 and αßγδ types) are expressed in the hyperthermophilic archaea belonging to Thermococcales. In both enzymes, the ß subunit (PDHß) is responsible for catalyzing L-proline dehydrogenation. The genes encoding the two enzyme types form respective clusters that are completely conserved among Pyrococcus and Thermococcus strains. To compare the enzymatic properties of PDHßs from α4ß4- and αßγδ-type enzyme complexes, eight PDHßs (four of each type) from Pyrococcus furiosus DSM3638, Pyrococcus horikoshii OT-3, Thermococcus kodakaraensis KOD1 JCM12380 and Thermococcus profundus DSM9503 were expressed in Escherichia coli cells and purified to homogeneity using one-step Ni-chelating chromatography. The α4ß4-type PDHßs showed greater thermostability than most of the αßγδ-type PDHßs: the former retained more than 80 % of their activity after heating at 70 °C for 20 min, while the latter showed different thermostabilities under the same conditions. In addition, the α4ß4-type PDHßs utilized ferricyanide as the most preferable electron acceptor, whereas αßγδ-type PDHßs preferred 2, 6-dichloroindophenol, with one exception. These results indicate that the differences in the enzymatic properties of the PDHßs likely reflect whether they were from an αßγδ- or α4ß4-type complex, though the wider divergence observed within αßγδ-type PDHßs based on the phylogenetic analysis may also be responsible for their inconsistent enzymatic properties. By contrast, differences in the kinetic parameters among the PDHßs did not reflect the complex type. Interestingly, the k cat value for free α4ß4-type PDHß from P. horikoshii was much larger than the value for the same subunit within the α4ß4-complex. This indicates that the isolated PDHß could be a useful element for an electrochemical system for detection of L-proline.


Assuntos
Prolina Oxidase/metabolismo , Prolina/metabolismo , Pyrococcus/enzimologia , Thermococcus/enzimologia , 2,6-Dicloroindofenol/metabolismo , Cromatografia de Afinidade , Clonagem Molecular , Estabilidade Enzimática , Escherichia coli/genética , Escherichia coli/metabolismo , Ferricianetos/metabolismo , Expressão Gênica , Temperatura Alta , Cinética , Prolina Oxidase/genética , Estabilidade Proteica , Pyrococcus/genética , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/isolamento & purificação , Proteínas Recombinantes/metabolismo , Thermococcus/genética , Fatores de Tempo
18.
J Basic Microbiol ; 53(3): 231-9, 2013 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-22733591

RESUMO

Thermostable amylopullulanase (TAPU) is valuable in starch saccharification industry for its capability to catalyze both α-1,4 and α-1,6 glucosidic bonds under the industrial starch liquefication condition. The majority of TAPUs belong to glycoside hydrolase family 57 (GH57). In this study, we performed a phylogenetic analysis of GH57 amylopullulanase (APU) based on the highly conserved DOMON_glucodextranase_like (DDL) domain and classified APUs according to their multidomain architectures, phylogenetic analysis and enzymatic characters. This study revealed that amylopullulanase, pullulanase, andα-amylase had passed through a long joint evolution process, in which DDL played an important role. The phylogenetic analysis of DDL domain showed that the GH57 APU is directly sharing a common ancestor with pullulanase, and the DDL domains in some species undergo evolution scenarios such as domain duplication and recombination.


Assuntos
Proteínas de Bactérias/química , Proteínas de Bactérias/genética , Evolução Molecular , Glucosidases/química , Glicosídeo Hidrolases/química , Glicosídeo Hidrolases/genética , Filogenia , Estrutura Terciária de Proteína/genética , Pyrococcus/enzimologia , Thermococcus/enzimologia , Glucosidases/genética , Glicosídeo Hidrolases/metabolismo , Microbiologia Industrial , Pyrococcus/genética , Recombinação Genética , Amido/metabolismo , Thermococcus/genética
19.
Biochemistry ; 51(20): 4157-66, 2012 May 22.
Artigo em Inglês | MEDLINE | ID: mdl-22559858

RESUMO

Protein N-glycosylation occurs in the three domains of life. Oligosaccharyltransferase (OST) transfers glycan to asparagine in the N-glycosylation sequon. The catalytic subunit of OST is called STT3 in eukaryotes, AglB in archaea, and PglB in eubacteria. The genome of a hyperthermophilic archaeon, Archaeoglobus fulgidus, encodes three AglB paralogs. Two of them are the shortest AglBs across all domains of life. We determined the crystal structure of the C-terminal globular domain of the smallest AglB to identify the minimal structural unit. The Archaeoglobus AglB lacked a ß-barrel-like structure, which had been found in other AglB and PglB structures. In agreement, the deletion in a larger Pyrococcus AglB confirmed its dispensability for the activity. By contrast, the Archaeoglobus AglB contains a kinked helix bearing a conserved motif, called DK/MI motif. The lysine and isoleucine residues in the motif participate in the Ser/Thr recognition in the sequon. The Archaeoglobus AglB structure revealed that the kinked helix contained an unexpected insertion. A revised sequence alignment based on this finding identified a variant type of the DK motif with the insertion. A mutagenesis study of the Archaeoglobus AglB confirmed the contribution of this particular type of the DK motif to the activity. When taken together with our previous results, this study defined the classification of OST: one group consisting of eukaryotes and most archaea possesses the DK-type Ser/Thr pocket, and the other group consisting of eubacteria and the remaining archaea possesses the MI-type Ser/Thr pocket. This classification provides a useful framework for OST studies.


Assuntos
Archaeoglobus fulgidus/enzimologia , Hexosiltransferases/química , Proteínas de Membrana/química , Motivos de Aminoácidos , Sequência de Aminoácidos , Archaeoglobus fulgidus/genética , Asparagina/química , Asparagina/metabolismo , Domínio Catalítico , Cristalografia por Raios X , Lisina/química , Dados de Sequência Molecular , Mutação , Conformação Proteica , Pyrococcus/enzimologia
20.
Microb Cell Fact ; 11: 120, 2012 Sep 06.
Artigo em Inglês | MEDLINE | ID: mdl-22950411

RESUMO

BACKGROUND: The integration of biotechnology into chemical manufacturing has been recognized as a key technology to build a sustainable society. However, the practical applications of biocatalytic chemical conversions are often restricted due to their complexities involving the unpredictability of product yield and the troublesome controls in fermentation processes. One of the possible strategies to overcome these limitations is to eliminate the use of living microorganisms and to use only enzymes involved in the metabolic pathway. Use of recombinant mesophiles producing thermophilic enzymes at high temperature results in denaturation of indigenous proteins and elimination of undesired side reactions; consequently, highly selective and stable biocatalytic modules can be readily prepared. By rationally combining those modules together, artificial synthetic pathways specialized for chemical manufacturing could be designed and constructed. RESULTS: A chimeric Embden-Meyerhof (EM) pathway with balanced consumption and regeneration of ATP and ADP was constructed by using nine recombinant E. coli strains overproducing either one of the seven glycolytic enzymes of Thermus thermophilus, the cofactor-independent phosphoglycerate mutase of Pyrococcus horikoshii, or the non-phosphorylating glyceraldehyde-3-phosphate dehydrogenase of Thermococcus kodakarensis. By coupling this pathway with the Thermus malate/lactate dehydrogenase, a stoichiometric amount of lactate was produced from glucose with an overall ATP turnover number of 31. CONCLUSIONS: In this study, a novel and simple technology for flexible design of a bespoke metabolic pathway was developed. The concept has been testified via a non-ATP-forming chimeric EM pathway. We designated this technology as "synthetic metabolic engineering". Our technology is, in principle, applicable to all thermophilic enzymes as long as they can be functionally expressed in the host, and thus would be potentially applicable to the biocatalytic manufacture of any chemicals or materials on demand.


Assuntos
Engenharia Metabólica , Trifosfato de Adenosina/metabolismo , Escherichia coli/metabolismo , Glucose/metabolismo , Gliceraldeído-3-Fosfato Desidrogenases/genética , Gliceraldeído-3-Fosfato Desidrogenases/metabolismo , Concentração de Íons de Hidrogênio , Ácido Láctico/metabolismo , Malato Desidrogenase/genética , Malato Desidrogenase/metabolismo , Fosfoglicerato Mutase/genética , Fosfoglicerato Mutase/metabolismo , Pyrococcus/enzimologia , Temperatura , Thermococcus/enzimologia , Thermus thermophilus/enzimologia
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