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Structural analysis of the enzyme N-formylmethanofuran:tetrahydromethanopterin formyltransferase
(2008)
Archaea represent a third domain of life and some archaea exhibit a high degree of tolerance to extreme environmental conditions. Several members are methanogens and present in many anaerobic environments. Most methanogens are able to maintain growth simply on H2 and CO2 via the enzymatically catalyzed reaction 4H2 + CO2 > CH4 + 2 H2O. The archaeon Methanopyrus kandleri grows optimally at temperatures of 84°C to 110°C, pH values of 5.5 to 7.0 and NaCl concentrations 0.2% to 4%. The enzyme N-formylmethanofuran tetrahydromethanopterin formyltransferase (MkFTR) catalyzes the transfer of a formyl group from the cofactor N-formylmethanofuran (FMF) to the cofactor tetrahydromethanopterin (H4MPT), the second step of the above reaction. X-ray crystallographic analysis yielded insights into the structure and function of MkFTR, (1) the MkFTR monomer exhibits a pseudo-two fold structure suggestive of an evolutionary gene duplication. (2) The structure is a D2 homo-tetramer with prominent cleft-like surface features. Analysis of the interface contacts showed that the tetramer is best described as a dimer of dimers. The clefts were associated with the monomer:monomer interface and were weakly occupied by extra electron density which might be attributed to the H4MPT analog folate. (3) This suggested that the clefts are active sites and their association with oligomer interfaces suggested a basis for the dependence of activity on oligomerization. (4) The thermal stability of MkFTR most likely arises from the greater number of H- and ionic-bonds within the monomer and between monomers with respect to mesophilic protein structures. (5) The structure showed a large number of surface exposed negatively charged, glutamate and aspartate residues. These residues explain the salt dependent oligomerization, as only at high enough salt concentration is the electrostatic charge compensated by cation binding and neutralized allowing oligomerization. (6) These residues also improve the solubility of MkFTR at high salt concentration by increased charge repulsion. (7) Comparison of MkFTR structures from low and hight salt conditions showed that surface glutamate residues bind slightly more water molecules at high salt conditions further contributing to MkFTR solubility at high salt concentration.
Background: The industrial production of various alcohols from organic carbon compounds may be performed at high rates and with a low risk of contamination using thermophilic microorganisms as whole-cell catalysts. Thermoanaerobacter species that thrive around 50–75 °C not only perform fermentation of sugars to alcohols, but some also utilize different organic acids as electron acceptors, reducing them to their corresponding alcohols. Results: We purified AdhE as the major NADH- and AdhB as the major NADPH-dependent alcohol dehydrogenase (ADH) from the cell extract of the organic acid-reducing Thermoanaerobacter sp. strain X514. Both enzymes were present in high amounts during growth on glucose with and without isobutyrate, had broad substrate spectra including different aldehydes, with high affinities (< 1 mM) for acetaldehyde and for NADH (AdhE) or NADPH (AdhB). Both enzymes were highly thermostable at the physiological temperature of alcohol production. In addition to AdhE and AdhB, we identified two abundant AdhA-type ADHs based on their genes, which were recombinantly produced and biochemically characterized. The other five ADHs encoded in the genome were only expressed at low levels. Conclusions: According to their biochemical and kinetic properties, AdhE and AdhB are most important for ethanol formation from sugar and reduction of organic acids to alcohols, while the role of the two AdhA-type enzymes is less clear. AdhE is the only abundant aldehyde dehydrogenase for the acetyl-CoA reduction to aldehydes, however, acid reduction may also proceed directly by aldehyde:ferredoxin oxidoreductase. The role of the latter in bio-alcohol formation from sugar and in organic acid reduction needs to be elucidated in future studies.
DNA translocators of natural transformation systems are complex systems critical for the uptake of free DNA and provide a powerful mechanism for adaptation to changing environmental conditions. In natural transformation machineries, outer membrane secretins are suggested to form a multimeric pore for the uptake of external DNA. Recently, we reported on a novel structure of the DNA translocator secretin complex, PilQ, in Thermus thermophilus HB27 comprising a stable cone and cup structure and six ring structures with a large central channel. Here, we report on structural and functional analyses of a set of N-terminal PilQ deletion derivatives in T. thermophilus HB27. We identified 136 N-terminal residues exhibiting an unusual ααβαββα fold as a ring-building domain. Deletion of this domain had a dramatic effect on twitching motility, adhesion, and piliation but did not abolish natural transformation. These findings provide clear evidence that the pilus structures of T. thermophilus are not essential for natural transformation. The truncated complex was not affected in inner and outer membrane association, indicating that the 136 N-terminal residues are not essential for membrane targeting. Analyses of complex formation of the truncated PilQ monomers revealed that the region downstream of residue 136 is required for multimerization, and the region downstream of residue 207 is essential for monomer stability. Possible implications of our findings for the mechanism of DNA uptake are discussed.
Extremophilic prokaryotes live under harsh environmental conditions which require far-reaching cellular adaptations. The acquisition of novel genetic information via natural transformation plays an important role in bacterial adaptation. This mode of DNA transfer permits the transfer of genetic information between microorganisms of distant evolutionary lineages and even between members of different domains. This phenomenon, known as horizontal gene transfer (HGT), significantly contributes to genome plasticity over evolutionary history and is a driving force for the spread of fitness-enhancing functions including virulence genes and antibiotic resistances. In particular, HGT has played an important role for adaptation of bacteria to extreme environments. Here, we present a survey of the natural transformation systems in bacteria that live under extreme conditions: the thermophile Thermus thermophilus and two desiccation-resistant members of the genus Acinetobacter such as Acinetobacter baylyi and Acinetobacter baumannii. The latter is an opportunistic pathogen and has become a world-wide threat in health-care institutions. We highlight conserved and unique features of the DNA transporter in Thermus and Acinetobacter and present tentative models of both systems. The structure and function of both DNA transporter are described and the mechanism of DNA uptake is discussed.
Extremophilic prokaryotes live under harsh environmental conditions which require far-reaching cellular adaptations. The acquisition of novel genetic information via natural transformation plays an important role in bacterial adaptation. This mode of DNA transfer permits the transfer of genetic information between microorganisms of distant evolutionary lineages and even between members of different domains. This phenomenon, known as horizontal gene transfer (HGT), significantly contributes to genome plasticity over evolutionary history and is a driving force for the spread of fitness-enhancing functions including virulence genes and antibiotic resistances. In particular, HGT has played an important role for adaptation of bacteria to extreme environments. Here, we present a survey of the natural transformation systems in bacteria that live under extreme conditions: the thermophile Thermus thermophilus and two desiccation-resistant members of the genus Acinetobacter such as Acinetobacter baylyi and Acinetobacter baumannii. The latter is an opportunistic pathogen and has become a world-wide threat in health-care institutions. We highlight conserved and unique features of the DNA transporter in Thermus and Acinetobacter and present tentative models of both systems. The structure and function of both DNA transporter are described and the mechanism of DNA uptake is discussed.