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PMID: 402547 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Erythromycin resistant mutations in Bacillus subtilis cause temperature sensitive sporulation.

Molecular & general genetics : MGG ·Vol. 150 ·No. 2 ·1977-01-18 ·Pages 147-59

Tipper DJ, Johnson CW, Ginther CL, Leighton T, Wittmann HG

Abstract

All of several hundred erythromycin resistant single site mutants of Bacillus subtilis W168 are temperature senstive for sporulation. The mutants and wild type cells grow vegetatively at essentially the same rates at both permissive (30 degrees C) and nonpermissive (47 degrees C) temperatures. In addition cellular protein synthesis, cell mass increases and cell viabilities are similar in mutant and wild type strains for several hours after the end of vegetative growth (47 degrees C). in the mutants examined, the temperature sensitive periods begin when the sporulation process is approximately 40% completed, and end when the process is 90% completed. At nonpermissive temperatures, the mutants produce serine and metal proteases at 50% of the wild type rate, accumulate serine esterase at 16% of the wild type rate, and do not demonstrate a sporulation related increase in alkaline phosphatase activity. The eryR and spots phenotypes cotransform 100%, and cotransduce 100% using phage PBS1. Revertants selected for ability to sporulate normally at 47 degrees C (spot), simultaneously regain parental sensitivity to erthromycin. No second site revertants are found. Ribosomes from eryR spots strains bind erythromycin at less than 1% of the wild type rate. A single 50S protein (L17) from mutant ribosomes shows an altered electrophoretic mobility. Ribosomes from spo+ revertants bind erythromycin like parental ribosomes and their proteins are electrophoretically identical to wild type. These data indicate that the L17 protein of the 50S ribosomal subunit from Bacillus subtilis may participate specifically in the sporulation process.

MeSH Terms
Bacillus subtilis/drug effects,physiology Drug Resistance, Microbial Erythromycin/pharmacology Hot Temperature Mutation Phenotype Protein Biosynthesis Ribosomes/metabolism Spores
Chemicals
Erythromycin
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Tipper D J
Johnson C W
Ginther C L
Leighton T
Wittmann H G
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27 references, click to expand
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Article Info
Journal
Molecular & general genetics : MGG
Abbr.
Mol Gen Genet
ISSN
0026-8925
Published
1977-01-18
Pages
147-59
Language
English
Region
Germany
NLM ID
0125036
Subset
IM
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