ANTI-BIOFOULING ACTIVITY OF SPONGE Callyspongia pseudoreticulata COMPONENTS EXTRACT AGAINST Balanus amphitrite
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Abú-Shams, K., & Pascal, I. (2005). Asbestos: Characteristics, properties, pathogenesis and sources of exposure. Anales Del Sistema Sanitario de Navarra, 28, 7–11.
Aguila-Ramírez, R. N., Hernández-Guerrero, C. J., González-Acosta, B., Id-Daoud, G., Hewitt, S., Pope, J., & Hellio, C. (2014). Antifouling activity of symbiotic bacteria from sponge Aplysina gerardogreeni. International Biodeterioration and Biodegradation, 90, 64–70. https://doi.org/10.1016/j.ibiod.2014.02.003
Allchurch, A., Mehrotra, R., Carmody, H., Monchanin, C., & Scott, C. M. (2022). Competition and epibiosis by the sponge Pseudoceratina purpurea (Carter, 1880) on scleractinian corals at a tourism hotspot in the Gulf of Thailand. Regional Studies in Marine Science, 49, 102131. https://doi.org/10.1016/j.rsma.2021.102131
Amara, I., Miled, W., Slama, R. Ben, & Ladhari, N. (2018). Antifouling processes and toxicity effects of antifouling paints on marine environment. A review. Environmental Toxicology and Pharmacology, 57, 115–130. https://doi.org/10.1016/j.etap.2017.12.001
Avila, C. (2020). Terpenoids in marine heterobranch molluscs. Marine Drugs, 18(162), 1–38. https://doi.org/10.3390/md18030162
Chen, S., Li, A., Wang, Y., Zhang, Y., Liu, X., Ye, Z., Gao, S., Xu, H., Deng, L., Dong, A., & Zhang, J. (2023). Janus polyurethane sponge as an antibiofouling, antibacterial, and exudate-managing dressing for accelerated wound healing. Acta Biomaterialia, 171, 428–439. https://doi.org/10.1016/j.actbio.2023.09.015
Cristina, R., Paula, B., Rosário, O., & Carlos, O. (2024). Asbestos rehabilitation methods. REHABEND, 1740–1745.
Farkas, A., Degiuli, N., Martiæ, I., & Anèiæ, I. (2022). Energy savings potential of hull cleaning in a shipping industry. Journal of Cleaner Production, 374, 1–15. https://doi.org/10.1016/j.jclepro.2022.134000
Guimarães, A. C., Meireles, L. M., Lemos, M. F., Guimarães, M. C. C., Endringer, D. C., Fronza, M., & Scherer, R. (2019). Antibacterial activity of terpenes and terpenoids present in essential oils. Molecules, 24(2471), 1–12. https://doi.org/10.3390/molecules24132471
Haber, M., Gur, A., Blihoghe, D., & Ilan, M. (2013). Barnacle fouling in the Mediterranean sponges Axinella polypoides and Axinella verrucosa. Marine Ecology, 34(4), 467–473. https://doi.org/10.1111/maec.12047
Hadžiæ, N., Gatin, I., Uroiæ, T., & Ložar, V. (2022). Biofouling dynamic and its impact on ship powering and dry-docking. Ocean Engineering, 245, 1–13. https://doi.org/10.1016/j.oceaneng.2022.110522
Hirota, H., Tomono, Y., & Fusetani, N. (1996). Terpenoids with antifouling activity against barnacle larvae from the marine sponge Acanthella cavernosa. Tetrahedron, 52(7), 2359–2368. https://doi.org/10.1016/0040-4020(95)01079-3
Hong, L.-L., Ding, Y.-F., Zhang, W., & Lin, H.-W. (2022). Chemical and biological diversity of new natural products from marine sponges: a review (2009–2018). Marine Life Science & Technology, 4(3), 356–372. https://doi.org/10.1007/s42995-022-00132-3
Hosie, A., Fromont, J., Munyard, K., & Jones, D. (2021). New species and new records of sponge-inhabiting Barnacles (Cirripedia, Balanidae, Acastinae) from Australia. Diversity, 13(290), 1–52. https://doi.org/10.3390/d13070290
Irianti, T., Puspitasari, A., & Suryani, E. (2011). The activity of radical scavenging of 2,2-diphenyl-1-pycrilhydrazil by ethanolic extracts of (Tinospora crispa (L.) miers) stem and its fractions. Majalah Obat Tradisional, 16(3), 139–146.
Karthikeyan, A., Joseph, A., & Nair, B. G. (2022). Promising bioactive compounds from the marine environment and their potential effects on various diseases. Journal of Genetic Engineering and Biotechnology, 20(1), 1–38. https://doi.org/10.1186/s43141-021-00290-4
Kim, J.-H., Kim, H. K., Kim, H., Chan, B. K. K., Kang, S., & Kim, W. (2019). Draft genome assembly of a fouling Barnacle, Amphibalanus amphitrite (Darwin, 1854): The first reference genome for thecostraca. Frontiers in Ecology and Evolution, 7, 1–6. https://doi.org/10.3389/fevo.2019.00465
Kumar, S., Ye, F., Dobretsov, S., & Dutta, J. (2021). Nanocoating is a new way for biofouling prevention. Frontiers in Nanotechnology, 3, 1–16. https://doi.org/10.3389/fnano.2021.771098
Luoma, E., Laurila-Pant, M., Altarriba, E., Nevalainen, L., Helle, I., Granhag, L., Lehtiniemi, M., Srëbalienë, G., Olenin, S., & Lehikoinen, A. (2022). A multi-criteria decision analysis model for ship biofouling management in the Baltic Sea. Science of The Total Environment, 852, 1–9. https://doi.org/10.1016/j.scitotenv.2022.158316
Martins, T., Schinke, C., Queiroz, S. C. N., de C Braga, P. A., Silva, F. S. P., Melo, I. S., & Reyes, F. G. R. (2021). Role of bioactive metabolites from Acremonium camptosporum associated with the marine sponge Aplysina fulva. Chemosphere, 274, 1–11. https://doi.org/10.1016/j.chemosphere.2021.129753
Mol, R. R. (2016). Antibacterial and antifouling activity of the marine sponge Callyspongia diffusa collected from south-west coast of India. International Journal of Biotechnology and Biochemistry, 12(1), 33–42.
Müller, W. E. G., Wang, X., Proksch, P., Perry, C. C., Osinga, R., Gardères, J., & Schröder, H. C. (2013). Principles of biofouling protection in marine mponges: A Model for the design of novel biomimetic and bio-inspired coatings in the marine environment? Marine Biotechnology, 15(4), 375–398. https://doi.org/10.1007/s10126-013-9497-0
Nalini, S., Inbakandan, D., Venkatnarayanan, S., Mohammed Riyaz, S. U., Dheenan, P. S., Vinithkumar, N. V., Sriyutha Murthy, P., Parthasarathi, R., & Kirubagaran, R. (2019). PYRROLO isolated from marine sponge associated bacterium Halobacillus kuroshimensis SNSAB01 – Antifouling study based on molecular docking, diatom adhesion and mussel byssal thread inhibition. Colloids and Surfaces B: Biointerfaces, 173(May 2018), 9–17. https://doi.org/10.1016/j.colsurfb.2018.09.044
Núñez-Pons, L., Shilling, A., Verde, C., Baker, B. J., & Giordano, D. (2020). Marine terpenoids from polar latitudes and their potential applications in biotechnology. Marine Drugs, 18(401), 1–45. https://doi.org/10.3390/md18080401
Nurdin, M., & Usman. (2017). Bioactivity test of compound (hexa-tetra contana) from sponge (Callyspongia pseudoreticulata) as antibacterial of withered disease on potato plant (Ralstonia solanacearum). International Journal of Pharma and Bio Sciences, 8(4), 1–13.
Pope, E., Ali, A., Conlan, S., Bowen, I., Clare, A., & Rowley, A. (2008). Myrrh-derived terpenoids as inhibitors of marine biofouling. Aquatic Biology, 4(2), 175–185. https://doi.org/10.3354/ab00108
Qi, S. H., & Ma, X. (2017). Antifouling compounds from marine invertebrates. Marine Drugs, 15(9). https://doi.org/10.3390/md15090263
Qian, P. Y., Xu, Y., & Fusetani, N. (2009). Natural products as antifouling compounds: recent progress and future perspectives. Biofouling, 26(2), 223–234. https://doi.org/10.1080/08927010903470815
Rajitha, K., Nancharaiah, Y. V., & Venugopalan, V. P. (2020). Insight into bacterial biofilm-barnacle larvae interactions for environmentally benign antifouling strategies. International Biodeterioration and Biodegradation, 149(104937), 1–12. https://doi.org/10.1016/j.ibiod.2020.104937
Ravi, P., Kumaresan, S., Danaraj, J., Uthirakrishnan, U., Pandian, S., Sivaramakrishnan, R., Prakasam, S. B., & Pugazhendhi, A. (2023). Anti-fouling potential and in-silico analysis of carotenoid and fatty acids from Rauvolfia tetraphylla L. Environmental Research, 231(116158), 1–8. https://doi.org/10.1016/j.envres.2023.116158
Romeu, M. J., & Mergulhão, F. (2023). Development of antifouling strategies for marine applications. Microorganisms, 11(1568), 1–34. https://doi.org/10.3390/microorganisms11061568
Rosmiati, R., Mohamad, H., Muhammad, T. S. T., Musa, N., Ahmad, A., Ismail, N., Mohamad, F., & Nurhidayah, N. (2011). In vitro antagonistic activities of Indonesian marine sponge Aaptos aaptos and Callyspongia Pseudoreticulata extracts and their toxicity against Vibrio spp. Indonesian Aquaculture Journal, 6(2), 173–182. https://doi.org/10.15578/iaj.6.2.2011.173-182
Rosmiati, Tenriulo, A., Nurhidayah, Suryati, E., & Parenrengi, A. (2016). Isolation and identification of aaptaminoid from Aaptos aaptos and its potential use for vibriosis prevention. Jurnal Riset Akuakultur, 15(1), 41–50.
Sadan, N. E., Akash, P. S., & Kumar P G, S. (2022). Biofouling impacts and toxicity of antifouling agents on marine environment: A qualitative study. Sustainability, Agri, Food and Environmental Research, 10(1), 1–9. https://doi.org/10.7770/safer-V10N1-art2492
Salama, A. J., Satheesh, S., & Balqadi, A. A. (2018). Antifouling activities of methanolic extracts of three macroalgal species from the Red Sea. Journal of Applied Phycology, 30(3), 1943–1953. https://doi.org/10.1007/s10811-017-1345-6
Suryati, E., Parenrengi, A., & Rosmiati. (2003). Screening and analyzing bioactive content of sponge Clathria sp. as effective antibiofouling on the Balanus amphitrit. Jurnal Penelitian Perikanan Indonesia, 5(3), 47–54. https://agris.fao.org/agris-search/search.do?recordID=ID2002000296
Tian, X., Lin, Y., Gong, Y., Zhang, G., Wang, Y., Yang, W., & Su, Z. (2024). Facile synthesis of MIL-88A/PVA sponge for rapid tetracycline antibiotics degradation via sulfate radical-advanced oxidation processes. Separation and Purification Technology, 351(128122), 1–11. https://doi.org/10.1016/j.seppur.2024.128122
Vasileiou, M., Manos, N., Vasilopoulos, N., Douma, A., & Kavallieratou, E. (2024). Kalypso autonomous underwater vehicle: A 3D-printed underwater vehicle for inspection at fisheries. Journal of Mechanisms and Robotics, 16(4). https://doi.org/10.1115/1.4062355
Wenhao, C., Tao, Y., Yonghong, L., Riming, H., Bin, Y., Yu, D., & Wenxia, Y. (2012). The antifouling activities of Callyspongia sponge extracts. Acta Ecologica Sinica, 32(13), 4285–4290. https://doi.org/10. 5846 /stxb201106080767
DOI: http://dx.doi.org/10.15578/iaj.19.2.2024.147-156
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