Document Type : Original Article

Authors

1 MSc of Microbiology, Department of Biology, Faculty of Sciences, Shahid Bahonar University of Kerman, Kerman, Iran

2 Associate Professor of Microbiology, Department of Biology, Faculty of Sciences, Shahid Bahonar University of Kerman, Kerman, Iran

Abstract

Background: Sponges and sea anemones do not have specialized defense organs. Instead, they rival harmful microorganisms by producing certain compounds. These compounds can also be useful against some human pathogens. This study aimed to investigate the antimicrobial effects of bioactive products from these marine animals.
Methods: Two species of sea anemone (Zoanthus sansibaricus and Cerianthus lloydii) and one species of sponge (Callyspongia sp .) were collected at the Persian Gulf. The active metabolites of these two marine animals were extracted by methanol and dichloromethane solvents. The antimicrobial activity of each extract was performed against six human pathogenic bacteria including: Pseudomonas aeruginosa, Acinetobacter baumannii, Bacillus cereus, Klebsiella pneumoniae, Escherichia coli, and Staphylococcus aureus, using disk diffusion and agar well plate methods. The MIC and MBC were determined. The inhibitory effect of these extracts on biofilm formation was also studied.
Results: The effect of sponge extracts against planktonic forms of bacteria showed that the most sensitive bacteria to Callyspongia sp. extracts were K. pneumoniae and S. aureus. However, C. lloydii did not have any inhibitory effect on K. pneumoniae. The results of this study confirmed that both sponge and sea anemones extracts had sufficient effects against biofilm formation of pathogenic bacteria.However, Callyspongia sp. extracts had the lowest inhibitory effect against biofilm formation of P. aeruginosa. The highest inhibitory effect was observed on biofilm formation of K. pneumoniae.
Conclusion:The Callyspongia sp sponge extract (Dichloromethane: Methanol) has an excellent antimicrobial effect against six pathogenic bacteria in planktonic and biofilm forms. There was a direct correlation between the increase in the concentration of sea anemones extracts and the inhibitory effect of biofilm formation.

Keywords

  1. Mohsenipour Z, Hassanshahian M. Antibacterial activity of euphorbia hebecarpa alcoholic extracts against six human pathogenic bacteria in planktonic and biofilm forms. Jundishapur J Microbiol 2016; 9(6):e34701.
  2. Sadeghian I, Hassanshahian M, Sadeghian S, Jamali S. Antimicrobial Effects of Quercus Brantii Fruits on Bacterial Pathogens. Jundishapur J Microbiol 2012; 5(3), 465-469.
  3. Mohammadi M, Masoumipour F, Hassanshahian M, Jafarinasab T. Study the antibacterial and antibiofilm activity of Carum copticum against antibiotic-resistant bacteria in planktonic and biofilm forms. Microb Pathog 2019; 129: 99–105.
  4. Saeidi S, Amini Boroujeni N, Ahmadi H, Hassanshahian M. Antibacterial activity of some plant extracts against extended- spectrum beta-lactamase producing Escherichia coli isolates. Jundishapur J Microbiol 2015; 3;8(2):e15434.
  5. Atray D, Atray M. Correlation between biofilm production and antibiotic resistance pattern in uropathogenic escherichia coli in tertiary care hospital in southern Rajasthan, India. International Journal of Current Microbiology and Applied Sciences 2015; 4(7):640-6.
  6. Stewart PS. Prospects for anti-biofilm pharmaceuticals. Pharmaceuticals (Basel) 2015; 8(3):504-11.
  7. Mariottini GL, Grice ID. Antimicrobials from Cnidarians. a new perspective for anti-infective therapy? Mar Drugs 2016; 14(3):E48.
  8. Hooper, J.N.A., Soest, R.W.M., VAN. 2002. Systema Porifera. A Guide to the classification of sponges Vols 1&2, xlviii 1708pp (Kluwer Academic/ Plenum Publishers: New York
  9. Colombo AL, Matta DD, Almeida LP, Rosas R. Fluconazole susceptibility of Brazilian Candida isolates assessed by a disk diffusion method. Braz J Infect Dis 2002; 6(3):118-23.
  10. Boyanova L, Gergova G, Nikolov R, Derejian S, Lazarova E, Katsarov N, et al. Activity of Bulgarian propolis against 94 Helicobacter pylori strains in vitro by agar-well diffusion, agar dilution and disc diffusion methods. J Med Microbiol 2005; 54(Pt5):481-3.
  11. Mohsenipour Z, Hassanshahian M. The inhibitory effect of Thymus vulgaris extracts on the planktonic form and biofilm structures of six human pathogenic bacteria. Avicen J Phytomed 2015; 5 (4): 309-317.
  12. Rosenberg M, Rosenberg E. Role of adherence in growth of Acinetobacter calcoaceticus RAG-1 on hexadecane. J Bacteriol 1981; 148(1):51-7.
  13. O'toole GA, Kolter R. Initiation of biofilm formation in Pseudomonas fluorescens WCS365 proceeds via multiple, convergent signalling pathways: a genetic analysis. Mol Microbiol 1998; 28(3):449-61.
  14. Sepehri Z, Javadian F, Khammari D, Hassanshahian M. Antifungal effects of the aqueous and ethanolic leaf extracts of Echinophora platyloba and Rosmarinus officinalis. Current Medical Mycology. 2016; 2(1): 16-25.
  15. Mohsenipour Z, Hassanshahian M, Moradi M. Investigations of antimicrobial activity of Eucalyptus camaldulensis extracts against six pathogenic bacteria in planktonic form and biofilm. J Kerman Uni Med Scien 2015; 22 (2): 172-184.
  16. Masoumipour F, Hassanshahian M, Jafarinasab T. Antimicrobial activity of combined extracts of trachyspermum, thymus and pistachio against some pathogenic bacteria. J Kerm Med Uni 2018; 25(2):153-163.
  17. Mol VL, Raveendran TV, Abhilash KR, Parameswaran PS. Inhibitory effect of Indian sponge extracts on bacterial strains and larval settlement of the barnacle, Balanus amphitrite. International Biodeterioration & Biodegradation 2010; 64(6):506-10.
  18. Abdelmohsen UR, Bayer K, Hentschel U. Diversity, abundance and natural products of marine sponge-associated actinomycetes. Nat Prod Rep 2014; 31(3):381-99.
  19. Koopmans M, Martens D, Wijffels RH. Towards commercial production of sponge medicines. Mar Drugs 2009; 7(4):787-802.
  20. Unson MD, Holland ND, Faulkner DJ. A brominated secondary metabolite synthesized by the cyanobacterial symbiont of a marine sponge and accumulation of the crystalline metabolite in the sponge tissue. Marine Biology 1994; 119(1):1-11.
  21. Newbold RW, Jensen PR, Fenical W, Pawlik JR. Antimicrobial activity of Caribbean sponge extracts. Aquatic Microbial Ecology 1999; 19(3):279-84.
  22. Kim K. Antimicrobial activity in gorgonian corals (Coelenterata, Octocorallia). Coral Reefs 1994; 13(2):75-80.
  23. Shapo JL, Moeller PD, Galloway SB. Antimicrobial activity in the common seawhip, Leptogorgia virgulata (Cnidaria: Gorgonaceae). Comp Biochem Physiol B Biochem Mol Biol 2007; 148(1):65-73.
  24. Tadesse M, Gulliksen B, Strøm MB, Styrvold OB, Haug T. Screening for antibacterial and antifungal activities in marine benthic invertebrates from northern Norway. J Invertebr Pathol 2008; 99(3):286-93.
  25. John ST, Velmurugan S, Senthil Nagaraj D, Kumaran S, Pugazhvendan SR. Antimicrobial activity of sea anemone Stichodactyla haddoni and Anthopleura elegantissima extracts against human pathogens. Int J Adv Res Biol Sci 2015; 2(6):27-35.
  26. Bragadeeswaran S, Thangaraj S, Prabhu K, Raj Sophia Rani S. Antifouling activity by sea anemone (Heteractis magnifica and H. aurora) extracts against marine biofilm bacteria. Submission article platform-Latin American Journal of Aquatic Research 2011; 39(2):385-9.
  27. Masoumipour F, Hassanshahian M. Antimicrobial activity of five medicinal plants on candida albicans. Iran J Toxicol 2016; 10(6): 65-77.
  28. Hassanshahian M, Bayat Z, Saeidi S, Shiri Y. Antimicrobial activity of Trachyspermum ammi essential oil against human bacterial. International J Advan Biolo Biomed Res 2014; 2(1): 18-24.
  29. Mashhadi M, Fakhri J, Saeedi S, Hassanshahian M, Abkhoo A. Antimicrobial effects of medicinal plants collected in Zabol, Iran, on pathogenic food pathogenic. J Med Bacteriol 2016; 5(3): 18-28.
  30. Hamayeli H, Shoshtari A, Hassanshahian M, Askari M. Study the antimicrobial activity of six marine sponges and three parts of sea anemone on Candida albicans. J Coastal Life Med. 2016; 4(8): 122-129.