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R H Doi

Publications and source records attributed to R H Doi.

At least 145 records · Page 8Linked to original sources

Ultrastructural analysis of sporulation in a conditional serine protease mutant of Bacillus subtilis.

The morphological characteristics of wild-type Bacillus subtilis and a temperature-sensitive serine protease derivative have been observed during vegetative and sporulation time periods. At 30 C wild-type and mutant cells grow and sporulate identically. At 47.5 C wild-type and mutant cells grow identically, but the mutant cells are blocked at stage 0 or I in the sporulation sequence. Wild-type cells sporulate normally at 47.5 C.

Bacillus subtilis↗

Electron microscopy of the altered spore morphology of a ribonucleic acid polymerase mutant of Bacillus subtilis.

Electron microscopy was used to analyze sporulating cells and spores of Bacillus subtilis mutants (Rif(r)) which are resistant to rifampin, an inhibitor of ribonucleic acid polymerase. The spores of Rif-18 are pleomorphic and frequently exhibit terminal knobs. These knobs first occur during late stage IV and early stage V of sporulation and are extensions of the inner and outer spore coats. Since the rifampin resistance and altered spore morphology of Rif-18 are 100% cotransformable, these data suggest that the altered spore morphology is the result of an alteration in ribonucleic acid polymerase genes. The morphology and physical dimensions are also reported for spores from Rif-11, Rif-15, and Rif-21. Significant differences in size from the wild type were observed for these mutants.

Bacillus subtilis↗

Preferential transcription of Bacillus subtilis light deoxyribonucleic acid strands during sporulation.

Messenger ribonucleic acid (RNA) from log and sporulation stages of growth were transcribed mainly from the heavy strand of the complementary strands of Bacillus subtilis deoxyribonucleic acid (DNA). During sporulation a slight transcription shift from heavy to light DNA strands was observed. RNA-DNA hybrid competition experiments revealed that this shift was due to sporulation-specific transcription from light-DNA strands.

Bacillus subtilis↗

Bacillus subtilis mutant altered in spore morphology and in RNA polymerase activity.

A Bacillus subtilis mutant, that was selected for rifampin resistance produces spores with an altered morphology. The mutant spores are pleomorphic and differ both in shape and size from the wild-type spores. They frequently have an exosporium that is usually absent from wild-type spores. The mutant spores are similar to the wild-type spores in heat resistance, dipicolinic acid content, and density, but exhibit a slower rate of germination, outgrowth, and growth. In vitro studies show that the RNA polymerase of the mutant is resistant to rifampin inhibition, whereas the wild-type enzyme is completely inhibited by low concentrations of the antibiotic. Rifampin resistance and the altered spore morphology are contransformed with 100% frequency, suggesting that the altered morphology is caused by an alteration in the RNA polymerase.

Bacillus subtilis↗

Peptide synthesis by extracts from Bacillus subtilis spores.

Cell-free peptide synthesis by extracts from vegetative cells and spores of Bacillus subtilis was analyzed and compared. The initial rate of phenylalanine incorporation in a polyuridylate-directed system was found to be in a similar range for the two extracts. However, spore extracts frequently incorporated less total phenylalanine as did the vegetative cell system. Optimal conditions for amino acid incorporation by spore extracts were found to be similar to those of vegetative cell extracts. Polyphenylalanine synthesis was stimulated by preincubation of both extracts prior to the addition of polyuridylic acid (poly U) and labeled phenylalanine. Both systems showed a dependence on an energy-generating system and were inhibited by chloramphenicol and puromycin. Ribonuclease, but not deoxyribonuclease, inhibited the reaction significantly. The presence of methionine transfer ribonucleic acid (tRNA(F)) and methionyl-tRNA(F) transformylase was demonstrated in spore extracts. An analysis of several aminoacyl-tRNAs in spores revealed that the relative amounts of these tRNAs were similar to those found in vegetative cells. Only lysine tRNA was found to be present in relatively greater amounts in spores. These results indicate that dormant spores of B. subtilis contain the machinery for the translation of genetic information.

Bacillus subtilis↗