Identification of a Sequence Containing Methylated Cytidine in Corynebacterium glutamicum and Brevibacterium flavum Using Bisulfite DNA Derivatization and Sequencing

  • Jang, Ki-Hyo (Centre for Bioprocessing and Food Technology) ;
  • Chambers, Paul J. (Department of Biological and Food Sciences, Victoria University of Technology) ;
  • Britz, Margaret L. (School of Agriculture and Food System, Gilbert Chandler Campus, The University of Melbourne)
  • Published : 2001.10.01

Abstract

The principal DNA modification systems of the amino-acid-producing bacteria Corynebacterium glutamicum AS019, Brevibacterium flavum BF4, and B. lactofermentum BL1 was investigated using two approaches; digestion of plasmid DNA isolated from these species TseI and Fnu4HI, and sequence analysis of the putative methyltransferase target sites following the derivatization of DNA using metabisulfite treatment. The C. glutamicum and B. flavum strains showed similar digestion patterns to the two enzymes, indicating that the target for cytidine methyltransferase recognizes 5'-GCSGC-3'(where S is either G or C). Mapping the methylated cytidine sites by bisulfite derivatization, followed by PCR amplification and sequencing, was only possible when the protocol included an additional step eliminating any underivatized DNA after PCR amplification, thereby indicating that the derivatization was not $100\%$ efficient. This may have been due to the high G0C content of this genus. It was confirmed that C. glutamicum AS019 and B. flavum BF4 methylated the cytidine in the $Gm^5CCGC$ sequences, yet there were no similar patterns of methylation in B. lactofermentum, which was consistent with the distinctive degradation pattern seen for the above enzymes. These findings demonstrate the successful application of a modified bisulfite derivatization method with the Corynebacterium species for determining methylation patterns, and showed that different species in the geneus contain distinctive restriction and modification systems.

Keywords

References

  1. Nucleic Acids Res. v.22 High sensitivity mapping of methylate cytosines Clark, S. J.;J. Harrison;C. L. Paul;M. Frommer
  2. Proc. Natl. Acad. Sci. USA v.89 A genomic sequencing protocol that yields a positive display of 5-methylcyosine residues in individual DNA strands Formmer, M.;L. E. McDonald;D. S. Millar;C. M. Collis;F. Watt;G. W. Grigg;P. L. Molloy;C. L. Paul
  3. J. Gen. Microbiol. v.136 The effect of growth conditions of Corynebacterium glutamicum on the transformation frequency obtained by electroporation Haynes, J. A.;M. L. Britz
  4. Proceedings, Ⅷth Biotechnology Conference Construction and utilisation of a Corynebacterium-E. coli shuttle vector Hodgson, A. L. M.;J. A. Haynes;M. L. Britz;I. T. Nisbet
  5. FEMS Microbiol. Lett. v.136 Analysis of nucleotide methylation in DNA from Corynebacterium glutamicum and related species Jang, K. H.;P. J. Chambers;M. L. Britz
  6. J. Microbiol. Biotechnol. v.11 Characterization of the cell-surface barriers to plasmid transformation in Corynebacterium glutamicum Jang, K. H.;P. J. Chambers;U. H. Chun;M. L. Britz
  7. Crit. Rev. Biotechnol. v.15 Recent advances in the physiology and genetics of amino acid-producing bacteria Jetten, M. S. M.;A. J. Sinskey
  8. Patent number WO 9625503 Plasmid-derived type Ⅱ restriction-modification systems from Lactococcus lactis Josephsen, J.;N. R. Nyengaard;F. K. Vogensen;A. Madsen
  9. J. Microbiol. biotechnol. v.10 Effect of tktA, $aroF^{FBR}$, and aroL expression in the tryptophan-producing Escherichia coli Kim, T. H.;N. G. Suck;J. H. Kwak;S. Y. Lee;H. S. Lee
  10. Bio/Technology v.5 Cloning systems in amino acid-producing corynebacteria Martin, J. F.;R. Santamaria;H. Sandoval;G. Del Real;L. M. Mateos;J. A. Gil;A. Aguilar
  11. J. Microbiol. Biotechnol. v.4 Effect of glycine on L-omithine production by a citrulline auxotroph of Brevibacterium ketoglutamicum and stoichiometric analysis Nam, S. W.;D. K. Choi;W. S. Ryu;H. W. Hang;B. H. Chung;Y. H. Park
  12. Gene v.157 Purification and characterization of a new DNA methyltransferase from Neisseria gonorrhoeae Piekarowicz, A.;D. C. Stein
  13. Nucleic Acids Res. v.25 REBASE-restriction enzymes and methylases Roberts, R. J.;D. Macelis
  14. Molecular Cloning. A Laboratory Manual(2nd ed.) Sambrook, J.;E. F. Fritsch;T. Maniatis
  15. Gene v.203 The Corynebacterium glutamicum cglIM gene encoding a 5-cytosine methyltransferase enzyme confers a specific DNA methylation pattern in an McrBC-deficient Escherichia coli strain Schafer, A.;A. Tauch;N. Droste;A. Puhler;J. Kalinowski
  16. J. Mol. Biol. v.257 M. BssHII, a multispecific cytosine-$C^5$-DNA-methyltransferase with unusual target recognition properties Schumann, J.;J. Walter;J. Willert;C. Wild;D. Koch;T. A. Trautner
  17. FEMS Microbiol. Lett. v.123 Corynebacterium glutamicum DNA is subjected to methylation-restriction in Escherichia coli Tauch, A.;O. Kirchner;L. Wehmeier;J. Kalinowski;A. Puhler
  18. J. Microbiol. Biotechnol. v.8 Cloning, expression and nucleotide sequencing of the gene encoding glucose permease of phosphotransferase system from Brevibacterium ammoniagenes Yoon, K. H.;H. Yim;K. H. Jung
  19. J. Bacteriol. v.162 Cloning vector system for Corynebacterium glutamicum Yoshihama, M.;K. Higarshiro;E. A. Rao;M. Akedo;W. G. Shanabruch;M. T. Follettie;G. C. Walker;A. J. Sinskey