Literature DB >> 19001112

Inactivation of KsgA, a 16S rRNA methyltransferase, causes vigorous emergence of mutants with high-level kasugamycin resistance.

Kozo Ochi1, Ji-Yun Kim, Yukinori Tanaka, Guojun Wang, Kenta Masuda, Hideaki Nanamiya, Susumu Okamoto, Shinji Tokuyama, Yoshikazu Adachi, Fujio Kawamura.   

Abstract

The methyltransferases RsmG and KsgA methylate the nucleotides G535 (RsmG) and A1518 and A1519 (KsgA) in 16S rRNA, and inactivation of the proteins by introducing mutations results in acquisition of low-level resistance to streptomycin and kasugamycin, respectively. In a Bacillus subtilis strain harboring a single rrn operon (rrnO), we found that spontaneous ksgA mutations conferring a modest level of resistance to kasugamycin occur at a high frequency of 10(-6). More importantly, we also found that once cells acquire the ksgA mutations, they produce high-level kasugamycin resistance at an extraordinarily high frequency (100-fold greater frequency than that observed in the ksgA(+) strain), a phenomenon previously reported for rsmG mutants. This was not the case for other antibiotic resistance mutations (Tsp(r) and Rif(r)), indicating that the high frequency of emergence of a mutation for high-level kasugamycin resistance in the genetic background of ksgA is not due simply to increased persistence of the ksgA strain. Comparative genome sequencing showed that a mutation in the speD gene encoding S-adenosylmethionine decarboxylase is responsible for the observed high-level kasugamycin resistance. ksgA speD double mutants showed a markedly reduced level of intracellular spermidine, underlying the mechanism of high-level resistance. A growth competition assay indicated that, unlike rsmG mutation, the ksgA mutation is disadvantageous for overall growth fitness. This study clarified the similarities and differences between ksgA mutation and rsmG mutation, both of which share a common characteristic--failure to methylate the bases of 16S rRNA. Coexistence of the ksgA mutation and the rsmG mutation allowed cell viability. We propose that the ksgA mutation, together with the rsmG mutation, may provide a novel clue to uncover a still-unknown mechanism of mutation and ribosomal function.

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Year:  2008        PMID: 19001112      PMCID: PMC2612157          DOI: 10.1128/AAC.00873-08

Source DB:  PubMed          Journal:  Antimicrob Agents Chemother        ISSN: 0066-4804            Impact factor:   5.191


  30 in total

1.  Isolation of kasugamycin resistant mutants in the 16 S ribosomal RNA of Escherichia coli.

Authors:  A Vila-Sanjurjo; C L Squires; A E Dahlberg
Journal:  J Mol Biol       Date:  1999-10-15       Impact factor: 5.469

Review 2.  The biological cost of antibiotic resistance.

Authors:  D I Andersson; B R Levin
Journal:  Curr Opin Microbiol       Date:  1999-10       Impact factor: 7.934

3.  A NEW ANTIBIOTIC, KASUGSMYCIN.

Authors:  H UMEZAWA; Y OKAMI; T HASHIMOTO; Y SUHARA; M HAMADA; T TAKEUCHI
Journal:  J Antibiot (Tokyo)       Date:  1965-03       Impact factor: 2.649

4.  Mechanism of kasugamycin resistance in Escherichia coli.

Authors:  T L Helser; J E Davies; J E Dahlberg
Journal:  Nat New Biol       Date:  1972-01-05

5.  Analysis of polyamines in higher plants by high performance liquid chromatography.

Authors:  H E Flores; A W Galston
Journal:  Plant Physiol       Date:  1982-03       Impact factor: 8.340

6.  Methyltransferase that modifies guanine 966 of the 16 S rRNA: functional identification and tertiary structure.

Authors:  Dmitry V Lesnyak; Jerzy Osipiuk; Tatiana Skarina; Petr V Sergiev; Alexey A Bogdanov; Aled Edwards; Alexei Savchenko; Andrzej Joachimiak; Olga A Dontsova
Journal:  J Biol Chem       Date:  2006-12-21       Impact factor: 5.157

7.  Mutations in rsmG, encoding a 16S rRNA methyltransferase, result in low-level streptomycin resistance and antibiotic overproduction in Streptomyces coelicolor A3(2).

Authors:  Kenji Nishimura; Takeshi Hosaka; Shinji Tokuyama; Susumu Okamoto; Kozo Ochi
Journal:  J Bacteriol       Date:  2007-03-23       Impact factor: 3.490

8.  Mutation of tlyA confers capreomycin resistance in Mycobacterium tuberculosis.

Authors:  Courtney E Maus; Bonnie B Plikaytis; Thomas M Shinnick
Journal:  Antimicrob Agents Chemother       Date:  2005-02       Impact factor: 5.191

9.  Identification of the RsmG methyltransferase target as 16S rRNA nucleotide G527 and characterization of Bacillus subtilis rsmG mutants.

Authors:  Kenji Nishimura; Shanna K Johansen; Takashi Inaoka; Takeshi Hosaka; Shinji Tokuyama; Yasutaka Tahara; Susumu Okamoto; Fujio Kawamura; Stephen Douthwaite; Kozo Ochi
Journal:  J Bacteriol       Date:  2007-06-15       Impact factor: 3.490

10.  Mechanistic insight into the ribosome biogenesis functions of the ancient protein KsgA.

Authors:  Keith Connolly; Jason P Rife; Gloria Culver
Journal:  Mol Microbiol       Date:  2008-12       Impact factor: 3.501

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  17 in total

1.  The novel kasugamycin 2'-N-acetyltransferase gene aac(2')-IIa, carried by the IncP island, confers kasugamycin resistance to rice-pathogenic bacteria.

Authors:  Atsushi Yoshii; Hiromitsu Moriyama; Toshiyuki Fukuhara
Journal:  Appl Environ Microbiol       Date:  2012-06-01       Impact factor: 4.792

2.  Dimethyl adenosine transferase (KsgA) deficiency in Salmonella enterica Serovar Enteritidis confers susceptibility to high osmolarity and virulence attenuation in chickens.

Authors:  Kim Lam Chiok; Tarek Addwebi; Jean Guard; Devendra H Shah
Journal:  Appl Environ Microbiol       Date:  2013-10-11       Impact factor: 4.792

Review 3.  Insights into microbial cryptic gene activation and strain improvement: principle, application and technical aspects.

Authors:  Kozo Ochi
Journal:  J Antibiot (Tokyo)       Date:  2016-07-06       Impact factor: 2.649

4.  Dimethyl adenosine transferase (KsgA) contributes to cell-envelope fitness in Salmonella Enteritidis.

Authors:  Kim Lam Chiok; Narayan C Paul; Ezekiel O Adekanmbi; Soumya K Srivastava; Devendra H Shah
Journal:  Microbiol Res       Date:  2018-08-23       Impact factor: 5.415

5.  Regulation of expression and catalytic activity of Escherichia coli RsmG methyltransferase.

Authors:  Alfonso Benítez-Páez; Magda Villarroya; M-Eugenia Armengod
Journal:  RNA       Date:  2012-02-15       Impact factor: 4.942

6.  Identification and characterization of a novel multidrug resistance operon, mdtRP (yusOP), of Bacillus subtilis.

Authors:  Ji-Yun Kim; Takashi Inaoka; Kazutaka Hirooka; Hiroshi Matsuoka; Makiko Murata; Reiko Ohki; Yoshikazu Adachi; Yasutaro Fujita; Kozo Ochi
Journal:  J Bacteriol       Date:  2009-03-13       Impact factor: 3.490

7.  Studies on Aminoglycoside Susceptibility Identify a Novel Function of KsgA To Secure Translational Fidelity during Antibiotic Stress.

Authors:  Jin Zou; Wenwen Zhang; Hongjie Zhang; Xiaohua Douglas Zhang; Bo Peng; Jun Zheng
Journal:  Antimicrob Agents Chemother       Date:  2018-09-24       Impact factor: 5.191

Review 8.  New strategies for drug discovery: activation of silent or weakly expressed microbial gene clusters.

Authors:  Kozo Ochi; Takeshi Hosaka
Journal:  Appl Microbiol Biotechnol       Date:  2012-11-11       Impact factor: 4.813

9.  The chlamydial functional homolog of KsgA confers kasugamycin sensitivity to Chlamydia trachomatis and impacts bacterial fitness.

Authors:  Rachel Binet; Anthony T Maurelli
Journal:  BMC Microbiol       Date:  2009-12-31       Impact factor: 3.605

10.  Functionally cloned pdrM from Streptococcus pneumoniae encodes a Na(+) coupled multidrug efflux pump.

Authors:  Kohei Hashimoto; Wakano Ogawa; Toshihiro Nishioka; Tomofusa Tsuchiya; Teruo Kuroda
Journal:  PLoS One       Date:  2013-03-26       Impact factor: 3.240

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