1887

Abstract

During a study intended to screen for agar-degrading bacteria, strain M2-5 was isolated from black sand off the shore of Jeju Island, Republic of Korea. Strain M2-5 exhibited agarase activity; the β-agarase gene of the isolate had 62 % amino acid sequence identity to the β-agarase gene of JAMB A94. The isolate was closely related to members of the genus but was clearly discernible from reported species, based on a polyphasic analysis. Cells of strain M2-5 were Gram-negative, catalase- and oxidase-positive, motile rods. The DNA G+C content was 53.3 mol%. The predominant isoprenoid quinone was Q-8. The major cellular fatty acids were Cω8 (25.9 %), summed feature 3 (iso-C 2-OH and/or Cω7; 17.2 %) and C (15.0 %). Phylogenetic analysis using 16S rRNA gene sequences showed that strain M2-5 had 96.6 % gene sequence similarity to SA1, the most closely related type strain of the genus . These results suggest that strain M2-5 represents a novel species in the genus , for which the name sp. nov. is proposed; the type strain is M2-5 ( = KCTC 23293 = NCAIM B 02424).

Funding
This study was supported by the:
  • Ministry of Science and Technology (MOST) of the Republic of Korea (Award NMC0301039)
  • KRIBB Research Initiative Program
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2012-04-01
2024-04-18
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References

  1. Aoki T., Araki T., Kitamikado M. 1990; Purification and characterization of a novel beta-agarase from Vibrio sp. AP-2. Eur J Biochem 187:461–465 [View Article][PubMed]
    [Google Scholar]
  2. Armisén R., Galatas F., Hispanagar S. A. 2000; Agar. In Handbook of Hydrocolloids pp. 21–40 Edited by Phillips G. O., Williams P. A. Cambridge, UK: Woodhead Publishing Ltd;
    [Google Scholar]
  3. Atlas R. M. 1993 Handbook of Microbiological Media Boca Raton, FL: CRC Press;
    [Google Scholar]
  4. Barbeyron T., L’Haridon S., Corre E., Kloareg B., Potin P. 2001; Zobellia galactanovorans gen. nov., sp. nov., a marine species of Flavobacteriaceae isolated from a red alga, and classification of [Cytophaga] uliginosa (ZoBell and Upham 1944) Reichenbach 1989 as Zobellia uliginosa gen. nov., comb. nov.. Int J Syst Evol Microbiol 51:985–997 [View Article][PubMed]
    [Google Scholar]
  5. Chakrabarty A. N., Adhya S., Pramanik M. K. 1970; The hydrolysis of Tween 80 by vibrios and aeromonads. J Appl Bacteriol 33:397–402 [View Article][PubMed]
    [Google Scholar]
  6. Chun J., Lee J. H., Jung Y., Kim M., Kim S., Kim B. K., Lim Y. W. 2007; EzTaxon: a web-based tool for the identification of prokaryotes based on 16S ribosomal RNA gene sequences. Int J Syst Evol Microbiol 57:2259–2261 [View Article][PubMed]
    [Google Scholar]
  7. Du Z. J., Zhang D. C., Liu S. N., Chen J. X., Tian X. L., Zhang Z. N., Liu H. C., Chen G. J. 2009; Gilvimarinus chinensis gen. nov., sp. nov., an agar-digesting marine bacterium within the class Gammaproteobacteria isolated from coastal seawater in Qingdao, China. Int J Syst Evol Microbiol 59:2987–2990 [View Article][PubMed]
    [Google Scholar]
  8. Ekborg N. A., Gonzalez J. M., Howard M. B., Taylor L. E., Hutcheson S. W., Weiner R. M. 2005; Saccharophagus degradans gen. nov., sp. nov., a versatile marine degrader of complex polysaccharides. Int J Syst Evol Microbiol 55:1545–1549 [View Article][PubMed]
    [Google Scholar]
  9. Ekborg N. A., Taylor L. E., Longmire A. G., Henrissat B., Weiner R. M., Hutcheson S. W. 2006; Genomic and proteomic analyses of the agarolytic system expressed by Saccharophagus degradans 2-40. Appl Environ Microbiol 72:3396–3405 [View Article][PubMed]
    [Google Scholar]
  10. Felsenstein J. 1985; Confidence limits on phylogenies: an approach using the bootstrap. Evolution 39:783–791 [View Article]
    [Google Scholar]
  11. Felsenstein J. 2005; phylip (phylogeny inference package) version 3.6. Distributed by the author. Department of Genome Sciences, University of Washington, Seattle, USA.
  12. Fu X. T., Kim S. M. 2010; Agarase: review of major sources, categories, purification method, enzyme characteristics and applications. Mar Drugs 8:200–218 [View Article][PubMed]
    [Google Scholar]
  13. Jean W. D., Shieh W. Y., Liu T. Y. 2006; Thalassomonas agarivorans sp. nov., a marine agarolytic bacterium isolated from shallow coastal water of An-Ping Harbour, Taiwan, and emended description of the genus Thalassomonas . Int J Syst Evol Microbiol 56:1245–1250 [View Article][PubMed]
    [Google Scholar]
  14. Jukes T. H., Cantor C. R. 1969; Evolution of protein molecules. In Mammalian Protein Metabolism vol. 3 pp. 21–132 Edited by Munro H. N. New York: Academic Press;
    [Google Scholar]
  15. Kawamoto H., Horibe A., Miki Y., Kimura T., Tanaka K., Nakagawa T., Kawamukai M., Matsuda H. 2006; Cloning and sequencing analysis of alginate lyase genes from the marine bacterium Vibrio sp. O2. Mar Biotechnol (NY) 8:481–490 [View Article][PubMed]
    [Google Scholar]
  16. Komagata K., Suzuki K. 1987; Lipid and cell-wall analysis in bacterial systematics. Methods Microbiol 19:161–207 [View Article]
    [Google Scholar]
  17. Kurahashi M., Yokota A. 2004; Agarivorans albus gen. nov., sp. nov., a γ-proteobacterium isolated from marine animals. Int J Syst Evol Microbiol 54:693–697 [View Article][PubMed]
    [Google Scholar]
  18. Lakshmikanth M., Manohar S., Souche Y., Lalitha J. 2006; Extracellular β-agarase LSL-1 producing neoagarobiose from a newly isolated agar-liquefying soil bacterium, Acinetobacter sp., AG LSL-1. World J Microbiol Biotechnol 22:1087–1094 [View Article]
    [Google Scholar]
  19. Lane D. J. 1991; 16S/23S rRNA sequencing. In Nucleic Acid Techniques in Bacterial Systematics pp. 115–175 Edited by Stackebrandt E., Goodfellow M. Chichester: Wiley;
    [Google Scholar]
  20. Lim J. M., Jeon C. O., Lee J. C., Song S. M., Kim K. Y., Kim C. J. 2006; Marinimicrobium koreense gen. nov., sp. nov. and Marinimicrobium agarilyticum sp. nov., novel moderately halotolerant bacteria isolated from tidal flat sediment in Korea. Int J Syst Evol Microbiol 56:653–657 [View Article][PubMed]
    [Google Scholar]
  21. Mesbah M., Premachandran U., Whitman W. B. 1989; Precise measurement of the G+C content of deoxyribonucleic acid by high performance liquid chromatography. Int J Syst Bacteriol 39:159–167 [View Article]
    [Google Scholar]
  22. Minnikin D. E., O’Donnell A. G., Goodfellow M., Alderson G., Athalye M., Schaal A., Parlett J. H. 1984; An integrated procedure for the extraction of bacterial isoprenoid quinones and polar lipids. J Microbiol Methods 2:233–241 [View Article]
    [Google Scholar]
  23. Miyazaki M., Nogi Y., Ohta Y., Hatada Y., Fujiwara Y., Ito S., Horikoshi K. 2008; Microbulbifer agarilyticus sp. nov. and Microbulbifer thermotolerans sp. nov., agar-degrading bacteria isolated from deep-sea sediment. Int J Syst Evol Microbiol 58:1128–1133 [View Article][PubMed]
    [Google Scholar]
  24. Morrice L. M., McLean M. W., Long W. F., Williamson F. B. 1983; Beta-agarases I and II from Pseudomonas atlantica. Substrate specificities. Eur J Biochem 137:149–154 [View Article][PubMed]
    [Google Scholar]
  25. NCCLS 2003; Performance Standards for Antimicrobial Disk Susceptibility Tests, 8th edn. Approved Standard M2-A8. Wayne, PA: National Committee for Clinical Laboratory Standards;
  26. Nedashkovskaya O. I., Kim S. B., Han S. K., Lysenko A. M., Rohde M., Rhee M. S., Frolova G. M., Falsen E., Mikhailov V. V., Bae K. S. 2004; Maribacter gen. nov., a new member of the family Flavobacteriaceae, isolated from marine habitats, containing the species Maribacter sedimenticola sp. nov., Maribacter aquivivus sp. nov., Maribacter orientalis sp. nov. and Maribacter ulvicola sp. nov.. Int J Syst Evol Microbiol 54:1017–1023 [View Article][PubMed]
    [Google Scholar]
  27. Nedashkovskaya O. I., Suzuki M., Lee J. S., Lee K. C., Shevchenko L. S., Mikhailov V. V. 2009; Pseudozobellia thermophila gen. nov., sp. nov., a bacterium of the family Flavobacteriaceae, isolated from the green alga Ulva fenestrata . Int J Syst Evol Microbiol 59:806–810 [View Article][PubMed]
    [Google Scholar]
  28. Ohta Y., Nogi Y., Miyazaki M., Li Z., Hatada Y., Ito S., Horikoshi K. 2004; Enzymatic properties and nucleotide and amino acid sequences of a thermostable beta-agarase from the novel marine isolate, JAMB-A94. Biosci Biotechnol Biochem 68:1073–1081 [View Article][PubMed]
    [Google Scholar]
  29. Potin P., Richard C., Rochas C., Kloareg B. 1993; Purification and characterization of the alpha-agarase from Alteromonas agarlyticus (Cataldi) comb. nov., strain GJ1B. Eur J Biochem 214:599–607 [View Article][PubMed]
    [Google Scholar]
  30. Sambrook J., Russell D. W. 2001 Molecular Cloning: a Laboratory Manual, 3rd edn. Cold Spring Harbor, NY: Cold Spring Harbor Laboratory;
    [Google Scholar]
  31. Sasser M. 2001; Identification of bacteria by gas chromatography of cellular fatty acids, MIDI Technical Note 101. Newark, DE: MIDI Inc;
  32. Shieh W. Y., Chen A. L., Chiu H. H. 2000; Vibrio aerogenes sp. nov., a facultatively anaerobic marine bacterium that ferments glucose with gas production. Int J Syst Evol Microbiol 50:321–329 [View Article][PubMed]
    [Google Scholar]
  33. Shieh W. Y., Liu T. Y., Lin S. Y., Jean W. D., Chen J. S. 2008; Simiduia agarivorans gen. nov., sp. nov., a marine, agarolytic bacterium isolated from shallow coastal water from Keelung, Taiwan. Int J Syst Evol Microbiol 58:895–900 [View Article][PubMed]
    [Google Scholar]
  34. Stackebrandt E., Goebel B. M. 1994; Taxonomic note: a place for DNA-DNA reassociation and 16S rRNA sequence analysis in the present species definition in bacteriology. Int J Syst Bacteriol 44:846–849 [View Article]
    [Google Scholar]
  35. Suzuki H., Sawai Y., Suzuki T., Kawai K. 2003; Purification and characterization of an extracellular beta-agarase from Bacillus sp. MK03. J Biosci Bioeng 95:328–334[PubMed] [CrossRef]
    [Google Scholar]
  36. Teather R. M., Wood P. J. 1982; Use of Congo red-polysaccharide interactions in enumeration and characterization of cellulolytic bacteria from the bovine rumen. Appl Environ Microbiol 43:777–780[PubMed]
    [Google Scholar]
  37. Thompson J. D., Gibson T. J., Plewniak F., Jeanmougin F., Higgins D. G. 1997; The clustal_x windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools. Nucleic Acids Res 25:4876–4882 [View Article][PubMed]
    [Google Scholar]
  38. Vera J., Alvarez R., Murano E., Slebe J. C., Leon O. 1998; Identification of a marine agarolytic Pseudoalteromonas isolate and characterization of its extracellular agarase. Appl Environ Microbiol 64:4378–4383[PubMed]
    [Google Scholar]
  39. Wayne L. G., Brenner D. J., Colwell R. R., Grimont P. A. D., Kandler O., Krichevsky M. I., Moore L. H., Moore W. E. C., Murray R. G. E. other authors 1987; International Committee on Systematic Bacteriology. Report of the ad hoc committee on reconciliation of approaches to bacterial systematics. Int J Syst Bacteriol 37:463–464 [View Article]
    [Google Scholar]
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