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R Masui

Publications and source records attributed to R Masui.

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RecA protein has extremely high cooperativity for substrate in its ATPase activity.

The single-stranded DNA-dependent ATPase activity of Escherichia coli RecA protein, especially its cooperativity for ATP, was investigated. To measure the ATPase activity in detail, the methods and reaction conditions for the ATPase assay were reexamined. Under conditions where RecA protein always showed a maximal rate of ATP hydrolysis, its poly(dT)-dependent ATPase activity was measured. At 25 degrees C, increasing the concentration of RecA protein from 0.3 to 1.0 microM increased the turnover number (kcat) from 0.16 to 0.19 s-1 and the Hill coefficient (nH) for ATP from 9.3 to 11.6. At 0.5 microM RecA protein, increasing the temperature from 25 to 37 degrees C increased kcat from 0.18 to 0.35 s-1 but decreased nH from 9.8 to 6.6. Interestingly, the ATPase activity of RecA protein measured in this study showed much higher cooperativity for ATP than those reported to date. Furthermore, the nH value of 11.6 for ATP obtained here was the highest of any ATPase reported so far. These results suggest that the binding of an ATP molecule to a RecA molecule within a nucleoprotein helical filament causes structural change of many other neighboring RecA molecules. This implies that ATP binding induces structural change of the whole nucleoprotein helical filament. Finally, we demonstrated that analysis of cooperativity is useful for revealing how a protein composed of many subunits functions as a whole.

Adenosine Triphosphatases↗

Local folding of the N-terminal domain of Escherichia coli RecA controls protein-protein interaction.

To obtain structural information about the self-association of the protein RecA, we studied urea denaturation of RecA by circular dichroism spectroscopy and gel filtration. Gel filtration analysis showed that urea at low concentrations, 1.0-1.2 M, dissociated the RecA oligomer to almost a monomeric state prior to the unfolding of each molecule. Upon treatment with 1.0 M urea, the circular dichroism spectrum showed a decrease in the alpha-helical content of RecA. A similar decrease was observed in the absence of urea for RecA at an extremely low protein concentration; the RecA oligomer dissociated to an almost completely monomeric state. The properties of RecA at low urea concentrations were similar to those of a truncated RecA lacking the first 33 N-terminal residues (Delta33RecA). Addition of a synthetic peptide corresponding to the 33 N-terminal residues to Delta33RecA increased the alpha-helical content. These results suggest that local folding of the N-terminal domain is coupled to protein-protein interactions of monomeric RecA, which are involved in the regulation of filament formation. The dissociation constant for interaction between RecA monomers was determined from the ellipticity data to be 0.1 microM.

Adenosine Triphosphate↗

Domain structure of Thermus thermophilus UvrB protein. Similarity in domain structure to a helicase.

UvrB protein plays an essential role in the prokaryotic excision repair system. UvrB protein shows cryptic ATPase activity, DNA binding, helicase-like activity, and incision activity by interacting with UvrA or UvrC proteins. To reveal the structure-function relationship of this multifunctional protein, the domain structure of Thermus thermophilus UvrB protein (ttUvrB) was studied by limited proteolysis and denaturation experiments. Proteolytic profiles indicated that ttUvrB consists of four domains: the N domain (residues 2-105), M domain (106-455), C1 domain (456-590), and C2 domain (591-665). The properties of the proteolytic fragments indicated the involvement of the respective domains in the functions of the protein as follows: the N and C1 domains are necessary for ATPase activity, the C1 domain is indispensable for DNA binding, and the N and/or M domains are involved in UvrA binding. The structural stability of the C1 and C2 domains was higher than that of the N and M domains, which supports the proposed domain nature of ttUvrB. Based on these results and the crystal structure of PcrA helicase (Subramanya, H. S., Bird, L. E., Brannigan, J. A., and Wigley, D. B. (1996) Nature 384, 379-383), the domain organization of ttUvrB was proposed.

Adenosine Triphosphatases↗

An aspartate aminotransferase from an extremely thermophilic bacterium, Thermus thermophilus HB8.

The aspartate aminotransferase gene (AspAT, EC 2.6.1.1) of an extremely thermophilic bacterium, Thermus thermophilus HB8, was cloned and sequenced, and its gene product was overproduced. The purified T. thermophilus AspAT was stable up to about 80 degrees C at neutral pH. T. thermophilus AspAT was strictly specific for acidic amino acid substrates, such as aspartate, glutamate, and the respective keto acids. The gene coding for T. thermophilus AspAT showed that it comprised 1,155 bp with a high G+C content (70 mol%), and encoded a 385-residue protein with a molecular weight of 42,050. The amino acid sequence of T. thermophilus AspAT deduced from its gene showed about 15, 46, and 29% homology with those from Escherichia coli, Bacillus sp. YM-2, and Sulfolobus solfataricus, respectively. When the amino acid sequence of T. thermophilus AspAT was compared with that of E. coli AspAT, the number of Cys was found to have decreased from 5 to 1, that of Asn from 23 to 9, that of Gln from 16 to 8, and that of Asp from 20 to 13, all of which are known to be relatively labile at high temperatures. Conversely, the number of Pro was increased from 15 to 25, Arg from 22 to 32, and Glu 27 to 37. As shown by the E. coli AspAT structure, there was a marked tendency for the extra prolyl residues to be located around the surface of the molecule. This was quite different from that in the case of RecA protein, which shows an increased number of prolyl residues in the interior of its molecule. Different strategies of different proteins as to prolyl contribution to thermostability have been suggested. Despite the high degree of conservation of active-site residues, Arg292 in E. coli AspAT, which interacts with the distal carboxylate of the substrate, was not found in T. thermophilus AspAT. Arg89 may complement the function of Arg292.

Amino Acid Sequence↗

N-terminal 33 amino acid residues of Escherichia coli RecA protein contribute to its self-assembly.

To identify the functional domains in the RecA protein, we prepared the truncated RecA protein lacking its N-terminal 33 amino acid residues by limited tryptic digestion and found that this truncated protein was inefficient at self-assembly. To investigate the function of the N-terminal region further, we constructed the N-terminal truncated recA gene lacking the portion corresponding to the N-terminal 33 residues and prepared a large amount of its gene product. This truncated protein could bind to ATP, but it was defective in self-assembly, binding to single-stranded (ss)DNA and hydrolysis of ATP under normal conditions, although no significant alteration in its stability in comparison with the wild-type protein was observed. In the presence of MgCl2, however, this truncated protein could self-assemble, although a higher protein concentration and longer time than for the wild-type protein were required to complete the process. This truncated protein inhibited the ssDNA-dependent ATPase and ssDNA-binding activities of the wild-type protein. Furthermore, gel filtration chromatography showed that this truncated protein interacted with the wild-type protein and reduced the apparent size of its aggregates. These results suggest that this truncated protein interfered with polymerization of the wild-type protein via a direct protein-protein interaction, which resulted in inhibition of ssDNA-binding and ssDNA-dependent ATP hydrolysis. On the basis of these observations, we concluded that the N-terminal 33 amino acid residues of the RecA protein play an important role not only in protein-protein interaction but also in regulation of the self-assembly process.

Adenosine Triphosphatases↗

Interaction of Escherichia coli RecA protein with ATP and its analogues.

Interactions of Escherichia coli RecA protein with ATP and its analogues in the absence of DNA were studied by circular dichroic (CD) spectroscopy. The binding of RecA protein to ATP increased the CD band of ATP at around 260 nm. The positive CD band of the RecA protein-ATP complex suggested that the bound ATP was in the anti conformation, in accord with X-ray crystallographic data [Story, R.M. and Steitz, T.A. (1992) Nature 355, 374-376]. At pH 7.5 and at 25 degrees C the dissociation constant (Kd) and thermodynamic parameters for the binding of ATP to RecA protein were 18 microM (delta G = -6.5 kcal.mol-1), delta H = 0 kcal.mol-1, and delta S = 22 cal.mol-1.K-1. A non-hydrolyzable ATP analogue, adenosine 5'-O-(3-thiotriphosphate) (ATP gamma S), gave a spectral change similar to that of ATP. The Kd for this analogue, 22 microM, was very close to the Km of ATP. These results in the absence of single-stranded DNA were different from those obtained by kinetic analysis [Weinstock, G.M. et al. (1981) J. Biol. Chem. 256, 8850-8855], which indicated that the inhibition constant of ATP gamma S was much smaller than the Km of ATP in the presence of DNA. For other ATP analogues (dATP, ADP, and dADP), similar spectral changes were observed, and their Kd values ranged from 19 to 54 microM. UTP, dUTP, and TTP also gave CD spectral changes, but not AMP, GTP, dGTP, CTP, and dCTP.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Triphosphate↗

The presence of free D-serine, D-alanine and D-proline in human plasma.

Twelve neutral free amino acids, i.e. serine, threonine, glutamine, asparagine, alanine, proline, methionine, tyrosine, valine, leucine, isoleucine and phenylalanine, were surveyed for the presence of D-enantiomers in plasma samples from patients with renal diseases and from normal subjects. D-serine, D-alanine and D-proline were found in the patient's plasma. The highest concentrations (D/L ratio) of D-serine, D-alanine and D-proline were 0.2362, 0.2087 and 0.0986, respectively. The sum of the contents of the three D-amino acid was shown to be present in the plasma proteins.

Adult↗

Amino acid sequences of ferredoxins from Alocasia macrorrhiza Schott in Papua New Guinea.

The amino acid sequences of ferredoxin isoproteins (Fd A and Fd B) from Alocasia macrorrhiza Schott in Papua New Guinea were determined. They consisted of single polypeptide chains of 97 and 98 residues, respectively, and both Fds had a molecular mass of 10,800 Da. There was an 88% identity between the sequences of the isoproteins (Fd A and Fd B). These sequences were compared with those of the closely related plant Fds and their phylogenetic relationships are discussed.

Amino Acid Sequence↗

The amino acid sequences of two 13 kDa polypeptides and partial amino acid sequence of 30 kDa polypeptide of complex I from bovine heart mitochondria: possible location of iron-sulfur clusters.

Mitochondrial NADH:ubiquinone oxidoreductase (complex I) is the most complicated system in the respiratory chain. It consists of many subunits, some of which hold iron-sulfur clusters, but structural information is still limited. The amino acid sequences of two 13 kDa polypeptides, 13 kDa-A and 13 kDa-B polypeptides, of iron-sulfur protein fraction (IP) of bovine heart mitochondrial complex I were determined by a combination of protease digestion, Edman degradation, and carboxypeptidase digestion. The 13 kDa-A polypeptide was composed of 96 amino acids with a molecular weight of 10,536. The 13 kDa-B polypeptide consisted of 114 amino acids and had an acetylated amino terminus. The molecular weight of this protein was calculated to be 13,130 including the acetyl group. These proteins had no obvious sequence similarity to other known proteins. The partial amino acid sequence of 30 kDa-B polypeptide of IP was also determined to reveal a characteristic arrangement of cysteine residues that could be involved in iron-sulfur cluster formation.

Amino Acid Sequence↗

The amino acid sequence of the 9 kDa polypeptide and partial amino acid sequence of the 20 kDa polypeptide of mitochondrial NADH:ubiquinone oxidoreductase.

Mitochondrial NADH:ubiquinone oxidoreductase (complex I) is the most complicated enzyme in the respiratory chain and is composed of at least 26 distinct polypeptides. Two hydrophilic subfractions of bovine heart complex I were systematically resolved into individual polypeptides by chromatography. Three polypeptides (51, 24, and 9 kDa) were isolated from the flavoprotein fraction (FP) of complex I, and the complete amino acid sequence of the 9 kDa polypeptide was determined. The 9 kDa polypeptide is composed of 75 amino acids with a molecular weight of 8,437. This protein exhibits no obvious sequence similarity to other proteins. The iron-sulfur protein fraction (IP) of complex I was separated into eight polypeptides, 75, 49, 30, 20, 18, 15, 13 kDa-A, and 13 kDa-B. The 20 kDa polypeptide was recognized as a novel component of IP for the first time. The N-terminal and several peptide sequences of the 20 kDa polypeptide were determined. Comparison of the sequences revealed significant sequence similarities of the 20 kDa polypeptide to the psbG gene products encoded in the chloroplast genome. The conserved sequence in these proteins was also found in the small subunit of the nickel-containing hydrogenases. These results suggest that complex I is related to other redox enzyme complexes.

Amino Acid Sequence↗

Properties and structure of the soluble ferredoxin from Synechococcus 6301 (Anacystis nidulans). Relationship to gene sequences.

Photoautotrophic cultures of the unicellular cyanobacterium Synechococcus 6301 (Anacystis nidulans) possessed a single [2Fe-2S] ferredoxin with a midpoint redox potential of -385 mV. Determination of the amino acid sequence of the ferredoxin showed that it consisted of 98 residues, with methionine and tryptophan both absent, and with only the four cysteine residues that are required to co-ordinate the iron-sulphur cluster. Comparisons with other ferredoxin sequences showed that most resemblance was to those from filamentous cyanobacteria, with up to 87% homology. There was less resemblance to the ferredoxins of unicellular cyanobacteria, with 25 differences when compared with that from another Synechococcus sp. However, the sequence of Synechococcus 6301 ferredoxin was identical with that derived for a gene sequence for a putative ferredoxin from the genotypically closely related Synechococcus 7942 (Anacystis nidulans R2). In contrast, the sequence showed substantial differences from that corresponding to a putative ferredoxin gene from Synechococcus 6301 reported by Cozens & Walker [(1988) Biochem. J. 252, 563-569].

Amino Acid Sequence↗