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R H Doi

Publications and source records attributed to R H Doi.

At least 37 records · Page 2Linked to original sources

Cellulosome and noncellulosomal cellulases of Clostridium cellulovorans.

This paper reviews the properties of the cellulosome and noncellulosome cellulases produced by Clostridium cellulovorans, an anaerobic, mesophilic, spore-forming microorganism that produces copious amounts of cellulase. The three major subunits of the cellulosome, CbpA, exoglucanase S (ExgS), and P100, are described, as well as the properties of the functional domains of CbpA. The properties of two noncellulosomal endoglucanases, EngD and EngF, are compared. The functions of the cellulose-binding domain (CBD) of CbpA indicate its potential uses in biotechnology.

Amino Acid Sequence↗

Characterization of EngF from Clostridium cellulovorans and identification of a novel cellulose binding domain.

The physical and enzymatic properties of noncellulosomal endoglucanase F (EngF) from Clostridium cellulovorans were studied. Binding studies revealed that the Kd and the maximum amount of protein bound for acid-swollen cellulose were 1.8 microM and 7.1 mumol/g of cellulose, respectively. The presence of cellobiose but not glucose or maltose could dissociate EngF from cellulose. N- and C-terminally truncated enzymes showed that binding activity was located at some site between amino acid residues 356 and 557 and that enzyme activity was still present when 20 amino acids but not 45 amino acids were removed from the N terminus and when 32 amino acids were removed from the C terminus; when 57 amino acids were removed from the C terminus, all activity was lost. EngF showed low endoglucanase activity and could hydrolyze cellotetraose and cellopentaose but not cellotriose. Activity studies suggested that EngF plays a role as an endoglucanase during cellulose degradation. Comparative sequence analyses indicated strongly that the cellulose binding domain (CBD) is different from previously reported CBDs.

Adsorption↗

The importance of a proper helical structure in the promoter-10 binding region to Bacillus subtilis sigma A structure and function.

Two Bacillus subtilis sigA mutants with amino acid substitutions tending to disrupt the structure of the promoter -10 binding helix of B. subtilis sigma A factor were constructed. B. subtilis DB1001 which contained an A197P substitution was very sensitive to temperature elevation. B. subtilis DB1002 had a T199G substitution and was low in growth potential at the elevated temperature. Degradation of sigma A in B. subtilis DB1001 (t(1/2)=63.2 min) and DB1002 (t(1/2)=186.0 min) occurred readily even at 37 degrees C; however, sigma A in B. subtilis DB2 (wild-type) was fairly stable at the same temperature. The activities of both DB1001 and DB1002 sigma A factors on groE promoter (sigma A-type) were lower than those of the wild-type counterpart at both permissive and restrictive temperatures. The failure of a higher sigma A concentration to suppress the Ts phenotype of DB1001 indicated that the temperature sensitivity of B. subtilis DB1001 was due to altered function, rather than insufficient concentration, of sigma A in the cells. Taken together, our results suggest that the helicity of the promoter -10 binding helix is essential to the packing interaction in the hydrophobic core region of sigma A, which helps to maintain the stable and functional sigma A structure.

Amino Acid Substitution↗

Characterization of engF, a gene for a non-cellulosomal Clostridium cellulovorans endoglucanase.

A new Clostridium cellulovorans (strain ATCC 35296) endoglucanase gene engF has been isolated and sequenced. The gene contains 1671 bp and codes for a protein containing 557 amino acids and a mass of 60.1 kDa. A putative signal peptide of 29 amino acids is present and the mature protein has a mass of 57.1 kDa. EngF does not have amino acid sequence homology to previously isolated EngB and EngD, but does show sequence homology to family 5 glycosyl hydrolases from Bacillus, Erwinia carotovora, and C. acetobutylicum species. EngF is not a component of the cellulosome and does not contain a duplicated sequence (DS) at its C-terminal region. EngF is capable of binding to cellulose and hydrolyzing carboxymethylcellulose but not xylan. The cellulose binding domain (CBD) differs from types I, II and III CBDs and no obvious homology has been found to other CBD types. The maximum activity of EngF occurs at pH 5.5 and at 47 degrees C. Its properties suggest that EngF plays an ancillary role in the degradation of cellulosic materials.

Amino Acid Sequence↗

Prokaryotic promoters in biotechnology.

The basic properties of prokaryotic promoters and the promotor region are described with special emphasis on promoters that are found in Escherichia coli and Bacillus subtilis. Promoters recognized by major and minor forms of RNA polymerase holoenzymes are compared for their specificities and differences. Both natural and hybrid promoters that have been constructed for purposes of efficient and regulated transcription are discussed in terms of their utility. Since promoter regions contain sequences that are recognized not only by RNA polymerase but by positive and negative regulatory factors that regulate expression from promoters, the functions and properties of these promoter regions are also described. The current utility and the future prospects of the prokaryotic promoters in expressing heterologous genes for biotechnology purposes are discussed.

Bacillus subtilis↗

Cellulose promotes extracellular assembly of Clostridium cellulovorans cellulosomes.

Cellulosome synthesis by Clostridium cellulovorans was investigated by growing the cells in media containing different carbon sources. Supernatant from cells grown with cellobiose contained no cellulosomes and only the free forms of cellulosomal major subunits CbpA, P100, and P70 and the minor subunits with enzymatic activity. Supernatant from cells grown on pebble-milled cellulose and Avicel contained cellulosomes capable of degrading crystalline cellulose. Supernatants from cells grown with cellobiose, pebble-milled cellulose, and Avicel contained about the same amount of carboxymethyl cellulase activity. Although the supernatant from the medium containing cellobiose did not initially contain active cellulosomes, the addition of crystalline cellulose to the cell-free supernatant fraction converted the free major forms to cellulosomes with the ability to degrade crystalline cellulose. The binding of P100 and P70 to crystalline cellulose was dependent on their attachment to the endoglucanase-binding domains of CbpA. These data strongly indicate that crystalline cellulose promotes cellulosome assembly.

Bacterial Proteins↗

Mutation analysis of the cellulose-binding domain of the Clostridium cellulovorans cellulose-binding protein A.

Cellulose-binding protein A (CbpA) has been previously shown to mediate the interaction between crystalline cellulose substrates and the cellulase enzyme complex of Clostridium cellulovorans. CbpA contains a family III cellulose-binding domain (CBD) which, when expressed independently, binds specifically to crystalline cellulose. A series of N- and C-terminal deletions and a series of small internal deletions of the CBD were created to determine whether the entire region previously described as a CBD is required for the cellulose-binding function. The N- and C-terminal deletions reduced binding affinity by 10- to 100-fold. Small internal deletions of the CBD resulted in substantial reduction of CBD function. Some, but not all, point mutations throughout the sequence had significant disruptive effects on the binding ability of the CBD. Thus, mutations in any region of the CBD had effects on the binding of the fragment to cellulose. The results indicate that the entire 163-amino-acid region of the CBD is required for maximal binding to crystalline cellulose.

Amino Acid Sequence↗

The Clostridium cellulovorans cellulosome.

The Clostridium cellulovorans cellulosome is comprised of a large, nonenzymatic scaffolding protein called the cellulose binding protein A (CbpA) and a number of endoglucanases/xylanases. The CbpA contains several functional domains, including a signal peptide, a cellulose binding domain (CBD), a hydrophilic domain (HLD) present four times, and a hydrophobic domain (HBD) present nine times. The functions of the domains were studied by the construction of minigenes containing the putative functional domains and by expression of the minigenes in Escherichia coli. The purified product of the CBD was able to bind to various crystalline forms of cellulose and chitin with a Kd of 1 microM. The binding capacity for CBD was a function of the crystallinity of the cellulose sample. Furthermore, the binding of CBD to Avicel was not inhibited by cellobiose or carboxymethylcellulose, suggesting that the CBD binding target was a three-dimensional structure found only in crystalline forms of cellulose. The HBD was tested for its ability to bind endoglucanases by an interaction Western as well as a sandwich enzyme immunoassay technique. The HBD was able to bind both EngB and EngD, indicating that the HBD contained an endoglucanase binding domain (EBD). Because there are nine EBD domains, it is possible that CbpA can bind up to nine endoglucanases. The role of the HLDs remains elusive. The data indicate that the cellulosome is a complex enzyme containing a scaffolding protein (CbpA) to which is attached a number of endoglucanase molecules. This arrangement allows the complex to bind and degrade crystalline cellulose, which resists degradation by the free forms of cellulosomal endoglucanases.

Amino Acids↗

Conformational properties of Bacillus subtilis RNA polymerase sigma A factor during transcription initiation.

By the use of a partial proteolysis method and Western-blot analysis, the conformational properties of Bacillus subtilis sigma A factor in the transcription initiation stage were studied. From a comparison of the trypsin-digestion patterns of free sigma A and of sigma A associated with core enzyme, it was found that the production of 45 kDa sigma A tryptic-derived fragment was enhanced when sigma A was associated with the core enzyme. More importantly, a 40 kDa sigma A tryptic-derived fragment was found exclusively in this associated state. Based on the change of the digestion kinetics when producing the 45 kDa tryptic fragment and the generation of this new 40 kDa tryptic fragment from sigma A, it was apparent that a conformation change of sigma A occurred during the association of sigma A with the core enzyme. Also, similar patterns were found for the sigma A present in the holoenzyme-promoter DNA complex. These findings suggest that no further distinctive conformational change of sigma A occurs at the step of RNA polymerase holoenzyme and promoter DNA complex formation. Trypsin-digestion patterns of sigma A in different RNA polymerase holoenzyme and promoter DNA complexes were also studied. The presence of similar trypsin digestion-patterns of sigma A in those complexes strongly supports the idea that a similar sigma A conformation is used in the recognition of different sigma A-type promoters and the formation of different open complexes.

Bacillus subtilis↗

Regulation of Bacillus subtilis senS by homologous regulatory regions of senS and the inducible cat gene.

We have identified a stem-and-loop region between the promoter and open reading frame of the Bacillus subtilis senS gene containing a 9 base sequence (TTTAGATAA) identical to a sequence found in a similar regulatory element of the inducible pC194 cat gene. A high copy number of this pC194 regulatory region repressed the expression of senS, indicating that the stem-and-loop region of the cat gene titrated a positive factor necessary for senS expression. These results suggest that factors with similar binding requirements control senS and cat expression. In addition, senS was found to be autoregulated.

Bacillus subtilis↗

A simple method to distinguish between simian immunodeficiency virus isolates by restriction analysis of PCR products.

A simple method to distinguish between simian immunodeficiency virus (SIV) isolates of experimentally infected rhesus macaques is reported. Peripheral blood mononuclear cells (PBMC) were prepared from a rhesus macaque infected with SIVStM isolated originally from a stump-tailed macaque, or from a rhesus monkey infected with SIVSM from a sooty mangabey monkey. PBMC were cocultivated with CEM x 174 cells and a region of the SIV envelope (env) gene was amplified by the polymerase chain reaction (PCR) from cDNA of infected cocultivation cells. Restriction enzyme digestion analysis of the PCR products enabled SIVStM and SIVSM to be differentiated from each other, and from a molecular clone of SIVMAC, SIVMAC239, originally isolated from an infected rhesus macaque. Furthermore, when SIVSM and SIVStM were introduced into the same animal, restriction enzyme analysis of the PCR product amplified from cocultivation cells of this rhesus macaque suggested that the animal was superinfected.

Animals↗

Temperature-sensitive sporulation caused by a mutation in the Bacillus subtilis secY gene.

A thermosensitive sporulation mutant of Bacillus subtilis containing a mutation in the secY gene was isolated and characterized. No asymmetric septum specific to the sporulation was detected by electron microscopy at the nonpermissive temperature, indicating that the block occurred at a very early stage of sporulation. Furthermore, competence development in the mutant cell was affected even at the sporulation-proficient temperature. It is assumed that the SecY protein of B. subtilis has multiple roles both in the regulation of spore formation and in stationary-phase-associated phenomena.

Bacillus subtilis↗

Characterization of the cellulose-binding domain of the Clostridium cellulovorans cellulose-binding protein A.

Cellulose-binding protein A (CbpA), a component of the cellulase complex of Clostridium cellulovorans, contains a unique sequence which has been demonstrated to be a cellulose-binding domain (CBD). The DNA coding for this putative CBD was subcloned into pET-8c, an Escherichia coli expression vector. The protein produced under the direction of the recombinant plasmid, pET-CBD, had a high affinity for crystalline cellulose. Affinity-purified CBD protein was used in equilibrium binding experiments to characterize the interaction of the protein with various polysaccharides. It was found that the binding capacity of highly crystalline cellulose samples (e.g., cotton) was greater than that of samples of low crystallinity (e.g., fibrous cellulose). At saturating CBD concentration, about 6.4 mumol of protein was bound by 1 g of cotton. Under the same conditions, fibrous cellulose bound only 0.2 mumol of CBD per g. The measured dissociation constant was in the 1 microM range for all cellulose samples. The results suggest that the CBD binds specifically to crystalline cellulose. Chitin, which has a crystal structure similar to that of cellulose, also was bound by the CBD. The presence of high levels of cellobiose or carboxymethyl cellulose in the assay mixture had no effect on the binding of CBD protein to crystalline cellulose. This result suggests that the CBD recognition site is larger than a simple cellobiose unit or more complex than a repeating cellobiose moiety. This CBD is of particular interest because it is the first CBD from a completely sequenced nonenzymatic protein shown to be an independently functional domain.

Amino Acid Sequence↗

The hydrophobic repeated domain of the Clostridium cellulovorans cellulose-binding protein (CbpA) has specific interactions with endoglucanases.

We overexpressed one of the hydrophobic repeated domains (HBDs) (110 amino acid residues) of the cellulose-binding protein (CbpA) from Clostridium cellulovorans by making a hybrid protein with the Escherichia coli maltose-binding protein (MalE). The HBD was purified to homogeneity, and interactions between the HBD and endoglucanases were analyzed by a novel interaction Western blotting (immunoblotting) method. The HBD had specific interactions with endoglucanases (EngB and EngD) from C. cellulovorans. These results indicated that the HBD was an endoglucanase binding site of CbpA.

ATP-Binding Cassette Transporters↗

Effects of amino acid substitutions in the promoter -10 binding region of the sigma A factor on growth of Bacillus subtilis.

On the bases of structural and functional information about the Bacillus subtilis sigma A protein and the techniques of site-directed mutagenesis, we constructed a B. subtilis sigA mutant (DB1005) which grows normally at 37 degrees C but is sensitive to higher temperatures. DNA sequencing analyses revealed that DB1005 has Ile-198-->Ala and Ile-202-->Ala amino acid substitutions in the alpha-helix of the 2.4 region of the sigma A protein. Western blotting (immunoblotting) revealed that this mutant sigma A protein is stable at both 37 and 49 degrees C. These results suggest that Ile-198 and Ile-202 separately or in combination are critical for the sigma A protein to be functional at the restrictive temperature.

Amino Acid Sequence↗

Primary sequence analysis of Clostridium cellulovorans cellulose binding protein A.

The cbpA gene for the Clostridium cellulovorans cellulose binding protein (CbpA), which is part of the multisubunit cellulase complex, has been cloned and sequenced. When cbpA was expressed in Escherichia coli, proteins capable of binding to crystalline cellulose and of interacting with anti-CbpA were observed. The cbpA gene consists of 5544 base pairs and encodes a protein containing 1848 amino acids with a molecular mass of 189,036 Da. The open reading frame is preceded by a Gram-positive-type ribosome binding site. A signal peptide sequence of 28 amino acids is present at its N terminus. The encoded protein is highly hydrophobic with extremely high levels of threonine and valine residues. There are two types of putative cellulose binding domains of approximately 100 amino acids that are slightly hydrophilic and eight conserved, highly hydrophobic beta-sheet regions of approximately 140 amino acids. These latter hydrophobic regions may be the CbpA domains that interact with the different enzymatic subunits of the cellulase complex.

Amino Acid Sequence↗

Analysis of functional domains of endoglucanases from Clostridium cellulovorans by gene cloning, nucleotide sequencing and chimeric protein construction.

The nucleotide sequence of engD, an endo-beta-1,4-glucanase gene from Clostridium cellulovorans was determined (Genbank Accession No. M37434). The COOH-terminal part of the gene product, EngD, contained a Thr-Thr-Pro repeated sequence followed by a region that has homology to the exoglucanase of Cellulomonas fimi. EngD and EngB, another C. cellulovorans endoglucanase, show 75% amino acid sequence homology at their NH2-termini, in contrast to their carboxyterminal domains which show no homology. EngD had endoglucanase activity on carboxymethylcellulose (CMC), cellobiosidase activity on p-nitrophenyl-cellobioside (p-NPC), and partial hydrolytic activity on crystalline cellulose (Avicel), while EngB showed hydrolytic activity against only CMC. Chimeric proteins between EngB and EngD were constructed by exchanging the non-homologous COOH-terminal regions. Chimeric proteins that contained the NH2-terminus of EngD retained cellobiosidase activity but chimeras with the EngB NH2-terminus showed no cellobiosidase activity. Hydrolysis of crystalline cellulose (Avicelase activity) was observed only with the enzyme containing the EngD NH2-terminus and EngD COOH-terminus.

Amino Acid Sequence↗

Detection of simian immunodeficiency virus RNA from infected rhesus macaques by the polymerase chain reaction.

A rapid method for the detection of simian immunodeficiency virus (SIV) RNA from peripheral blood mononuclear cells (PBMC) of experimentally infected rhesus macaques by the polymerase chain reaction (PCR) is reported. The PCR was carried out with a complementary DNA (cDNA) template using 3 pairs of primers that were designed to anneal to homologous sequences in conserved regions of 3 molecular clones of SIVmac. The specificity of the primers was confirmed by performing the PCR with template DNA from the 3 molecular clones. SIV-specific RNA was detected from 30 and 50 infected PBMC/6.25 x 10(5) PBMC of two animals.

Animals↗