Publication Cover
Natural Product Research
Formerly Natural Product Letters
Volume 38, 2024 - Issue 3
184
Views
0
CrossRef citations to date
0
Altmetric
Short Communication

Isolation and identification of the alga-symbiotic bacterium Gordonia and characterisation of its exopolysaccharide

, , , &
Pages 523-529 | Received 09 May 2022, Accepted 07 Sep 2022, Published online: 14 Sep 2022

References

  • Ahmed Z, Wang Y, Anjum N, Ahmad A, Khan ST. 2013. Characterization of exopolysaccharide produced by Lactobacillus kefiranofaciens ZW3 isolated from Tibet kefir–Part II. Food Hydrocoll. 30(1):343–350.
  • Arbatsky NP, Wang M, Shashkov AS, Chizhov AO, Feng L, Knirel YA, Wang L. 2010. Structure of the O-polysaccharide of Cronobacter sakazakii O2 with a randomly O-acetylated l-rhamnose residue. Carbohydr Res. 345(14):2090–2094.
  • Barbato F, Venditti A, Bianco A, Guarcini L, Bottari E, Festa MR, Cogliani E, Pignatelli V. 2016. Scenedesmus dimorphus (Turpin) Kützing growth with digestate from biogas plant in outdoor bag photobioreactors. Nat Prod Res. 30(2):185–191.
  • Braga SP, Dos Santos AP, Paganini T, Barbosa D, Epamino GWC, Morais C, Martins LF, Silva AM, Setubal JC, Vallim MA, et al. 2019. First report of cis-1, 4-polyisoprene degradation by Gordonia paraffinivorans. Braz J Microbiol. 50(4):1051–1062.
  • Chakraborty K, Kizhakkekalam VK, Joy M, Chakraborty RD. 2021. Novel amylomacins from seaweed-associated Bacillus amyloliquefaciens as prospective antimicrobial leads attenuating resistant bacteria. World J Microbiol Biotechnol. 37(12):1–12.
  • Chanthamalee J, Luepromchai E. 2012. Isolation and application of Gordonia sp. JC11 for removal of boat lubricants. J Gen Appl Microbiol. 58(1):19–31.
  • Cojoc R, Merciu S, Oancea P, Pincu E, Dumitru L, Enache M. 2009. Highly thermostable exopolysaccharide produced by the moderately halophilic bacterium isolated from a man-made young salt lake in Romania. Pol J Microbiol. 58(4):289–294.
  • Fusconi R, Assunção RMN, De Moura Guimarães R, Rodrigues Filho G, Da Hora Machado AE. 2010. Exopolysaccharide produced by Gordonia polyisoprenivorans CCT 7137 in GYM commercial medium and sugarcane molasses alternative medium: FT-IR study and emulsifying activity. Carbohyd Polym. 79(2):403–408.
  • Gnaim R, Polikovsky M, Unis R, Sheviryov J, Gozin M, Golberg A. 2021. Marine bacteria associated with the green seaweed Ulva sp. For the production of polyhydroxyalkanoates. Bioresour Technol. 328:124815.
  • Goodfellow M, Maldonado LA. 2006. The families Dietziaceae, Gordoniaceae, Nocardiaceae and Tsukamurellaceae. In: Dworkin M, Falkow S, Schleifer KH, Stackebrandt E editors. The prokaryotes. New York, Berlin, Heidelberg: Springer; p. 843–888.
  • Gontijo DC, Leite JPV, Nascimento M, Brandão GC, Oliveira A. 2021. Bioprospection for antiplasmodial activity, and identification of bioactive metabolites of native plants species from the Mata Atlântica biome, Brazil. Nat Prod Res. 35(10):1732–1737.
  • Gutierrez T, Shimmield T, Haidon C, Black K, Green DH. 2008. Emulsifying and metal ion binding activity of a glycoprotein exopolymer produced by Pseudoalteromonas sp. Strain TG12. Appl Environ Microbiol. 74(15):4867–4876.
  • Khan MI, Lee J, Park J. 2012. Microbial degradation and toxicity of hexahydro-1, 3, 5-trinitro-1, 3, 5-triazine. J Microbiol Biotechnol. 22(10):1311–1323.
  • Kim KK, Lee CS, Kroppenstedt RM, Stackebrandt E, Lee ST. 2003. Gordonia sihwensis sp. Nov., a novel nitrate-reducing bacterium isolated from a wastewater-treatment bioreactor. Int J Syst Evol Microbiol. 53(Pt 5):1427–1433.
  • KoNDo T, Yamamoto D, Yokota A, Suzuki A, Nagasawa H, Sakuda S. 2000. Gordonan, an acidic polysaccharide with cell aggregation-inducing activity in insect BM-N4 cells, produced by Gordonia sp. Biosci Biotechnol Biochem. 64(11):2388–2394.
  • Li F, Wei Y, Liang L, Huang L, Yu G, Li Q. 2021. A novel low-molecular-mass pumpkin polysaccharide: Structural characterization, antioxidant activity, and hypoglycemic potential. Carbohydr Polym. 251:117090.
  • Loh WLC, Huang K-C, Ng HS, Lan JC-W. 2020. Exploring the fermentation characteristics of a newly isolated marine bacteria strain, Gordonia terrae TWRH01 for carotenoids production. J Biosci Bioeng. 130(2):187–194.
  • Ma Y, Xu M, Liu H, Yu T, Guo P, Liu W, Jin X. 2021. Antimicrobial compounds were isolated from the secondary metabolites of Gordonia, a resident of intestinal tract of Periplaneta americana. AMB Expr. 11(1):1–11.
  • Meng M, Cheng D, Han L, Chen Y, Wang C. 2017. Isolation, purification, structural analysis and immunostimulatory activity of water-soluble polysaccharides from Grifola Frondosa fruiting body. Carbohydr Polym. 157:1134–1143.
  • Naval P, Chandra T. 2019. Characterization of membrane vesicles secreted by seaweed associated bacterium Alteromonas macleodii KS62. Biochem Biophys Res Commun. 514(2):422–427.
  • Nazina TN, Sokolova D, Grigor’yan AA, Xue Y-F, Belyaev S, Ivanov M. 2003. Production of oil-releasing compounds by microorganisms from the Daqing oil field, China. Microbiology. 72(2):173–178.
  • Niknezhad SV, Najafpour-Darzi G, Morowvat MH, Ghasemi Y. 2018. Exopolysaccharide production of Pantoea sp. BCCS 001 GH: Physical characterizations, emulsification, and antioxidant activities. Int J Biol Macromol. 118(Pt A):1103–1111.
  • Rosenberg E, Zuckerberg A, Rubinovitz C, Gutnick D. 1979. Emulsifier of Arthrobacter RAG-1: isolation and emulsifying properties. Appl Environ Microbiol. 37(3):402–408.
  • Silva AS, Camargo F, Andreazza R, Jacques RJS, Baldoni DB, Bento FM. 2012. Enzymatic activity of catechol 1, 2-dioxygenase and catechol 2, 3-dioxygenase produced by Gordonia polyisoprenivorans. Quím Nova. 35(8):1587–1592.
  • Silva NM, de Oliveira AMSA, Pegorin S, Giusti CE, Ferrari VB, Barbosa D, Martins LF, Morais C, Setubal JC, Vasconcellos SP, et al. 2019. Characterization of novel hydrocarbon-degrading Gordonia paraffinivorans and Gordonia sihwensis strains isolated from composting. PloS One. 14(4):e0215396.
  • Sowani H, Deshpande A, Gupta V, Kulkarni M, Zinjarde S. 2019. Biodegradation of squalene and n-hexadecane by Gordonia amicalis HS-11 with concomitant formation of biosurfactant and carotenoids. Int Biodeterior Biodegrad. 142:172–181.
  • Sowani H, Kulkarni M, Zinjarde S. 2018. An insight into the ecology, diversity and adaptations of Gordonia species. Crit Rev Microbiol. 44(4):393–413.
  • Sran KS, Bisht B, Mayilraj S, Choudhury AR. 2019. Structural characterization and antioxidant potential of a novel anionic exopolysaccharide produced by marine Microbacterium aurantiacum FSW-25. Int J Biol Macromol. 131:343–352.
  • Sran KS, Sundharam SS, Krishnamurthi S, Choudhury AR. 2019. Production, characterization and bio-emulsifying activity of a novel thermostable exopolysaccharide produced by a marine strain of Rhodobacter johrii CDR-SL 7Cii. Int J Biol Macromol. 127:240–249.
  • Stackebrandt E, Rainey FA, Ward-Rainey NL. 1997. Proposal for a new hierarchic classification system, Actinobacteria classis nov. Int J Syst Evol Microbiol. 47(2):479–491.
  • Ta-Chen L, Chang J-S, Young C-C. 2008. Exopolysaccharides produced by Gordonia alkanivorans enhance bacterial degradation activity for diesel. Biotechnol Lett. 30(7):1201–1206.
  • Tsukamura M. 1971. Proposal of a new genus, Gordona, for slightly acid-fast organisms occurring in sputa of patients with pulmonary disease and in soil. J Gen Microbiol. 68(1):15–26.
  • Wang XQ, Xing XY, Dong QL, Yan R, Li WN. 2020. Acceleration of growth and lipid synthesis of Scenedesmus obliquus by algae-bacteria mixed culture and supplement of NaHCO3. China Oils and Fats. 45(08):96–102.
  • Xu L, Dong M, Gong H, Sun M, Li Y. 2015. Effects of inorganic cations on the rheology of aqueous welan, xanthan, gellan solutions and their mixtures. Carbohydr Polym. 121:147–154.
  • Zhang H, Lin Z, Liu B, Wang G, Weng L, Zhou J, Hu H, He H, Huang Y, Chen J, et al. 2020. Bioremediation of di-(2-ethylhexyl) phthalate contaminated red soil by Gordonia terrae RL-JC02: Characterization, metabolic pathway and kinetics. Sci Total Environ. 733:139138.
  • Zhao D, Jiang J, Du R, Guo S, Ping W, Ling H, Ge J. 2019. Purification and characterization of an exopolysaccharide from Leuconostoc lactis L2. Int J Biol Macromol. 139:1224–1231.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.