Open Access
Issue |
BIO Web Conf.
Volume 172, 2025
International Conference on Nurturing Innovative Technological Trends in Engineering – BIOscience (NITTE-BIO 2025)
|
|
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Article Number | 04007 | |
Number of page(s) | 13 | |
Section | Pharmaceutical Biotechnology | |
DOI | https://doi.org/10.1051/bioconf/202517204007 | |
Published online | 10 April 2025 |
- Tran, T., et al., Integrated assessment of salinity intrusion and water scarcity in Ben Tre, Mekong Delta: implications for sustainable livelihoods and adaptive water management. Environment, Development and Sustainability, 2024: p. 1-30. [Google Scholar]
- Hong, L.T.A.K., Nguyen Thi Thanh, N.C. Hiep, and T. Tran, Isolation and characterization of indigenous microorganisms for antagonizing Fusarium incarnatum and preventing swollen swim bladder disease in Pangasius hypophthalmus. Materials Today: Proceedings, 2023. [Google Scholar]
- Nguyen, T.A.T., et al., Balancing the aquatic export supply chain strategy-A case study of the Vietnam pangasius industry. Aquaculture, 2023. 566: p. 739139. [CrossRef] [Google Scholar]
- Ina‐Salwany, M., et al., Vibriosis in fish: a review on disease development and prevention. Journal of aquatic animal health, 2019. 31(1): p. 3-22. [CrossRef] [PubMed] [Google Scholar]
- Rajme-Manzur, D., et al., Granulomatous bacterial diseases in fish: An overview of the host’s immune response. Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology, 2021. 261: p. 111058. [CrossRef] [Google Scholar]
- Tsai, Y.-H., et al., Necrotizing soft-tissue infections and sepsis caused by Vibrio vulnificus compared with those caused by Aeromonas species. JBJS, 2007. 89(3): p. 631-636. [CrossRef] [PubMed] [Google Scholar]
- Nahar, S., et al., Isolation, identification, and characterization of Aeromonas hydrophila from juvenile farmed pangasius (Pangasianodon hypophthalmus). International Journal of Fisheries and Aquatic Studies, 2016. 4(4): p. 52-60. [Google Scholar]
- Cascarano, M.C., et al., Mediterranean aquaculture in a changing climate: Temperature effects on pathogens and diseases of three farmed fish species. Pathogens, 2021. 10(9): p. 1205. [CrossRef] [Google Scholar]
- Chiew, I.K.M., A.M. Salter, and Y.S. Lim, The significance of major viral and bacterial diseases in Malaysian aquaculture industry. Pertanika Journal of Tropical Agricultural Science, 2019. 42(3). [Google Scholar]
- Varalakshmi, B., et al., Bacterial Fish Diseases and Treatment, in Aquaculture Science and Engineering. 2022, Springer. p. 517-572. [CrossRef] [Google Scholar]
- Soto, E., et al., Diagnosis of fish diseases, in Fish diseases and medicine. 2019, CRC Press. p. 46-88. [CrossRef] [Google Scholar]
- Muteeb, G., et al., Origin of antibiotics and antibiotic resistance, and their impacts on drug development: A narrative review. Pharmaceuticals, 2023. 16(11): p. 1615. [CrossRef] [Google Scholar]
- Tuyet, L.T.B., et al., Occurrence of antimicrobials in animal manure‐amended soils around the breeding farms: The case of the Saigon River (southern Vietnam). Environmental Quality Management, 2023. 33(1): p. 341-348. [CrossRef] [Google Scholar]
- Thi, Q.V.C., N.B. Trung, and T.T. Dung, Antimicrobial resistance and the prevalence of integron in Aeromonas hydrophila from hemorrhagic diseased Pangasius catfish of the Mekong Delta. Veterinary Integrative Sciences, 2023. 21(2): p. 333-347. [CrossRef] [Google Scholar]
- Serwecińska, L., Antimicrobials and antibiotic-resistant bacteria: a risk to the environment and to public health. Water, 2020. 12(12): p. 3313. [CrossRef] [Google Scholar]
- Thankappan, B., et al., Characterization of Bacillus spp. from the gastrointestinal tract of Labeo rohita—towards to identify novel probiotics against fish pathogens. Applied biochemistry and biotechnology, 2015. 175: p. 340-353. [CrossRef] [PubMed] [Google Scholar]
- Van, D.T. and T. Tran, Study on the treatment of root rot caused by Fusarium sp. on coffee trees by the antagonistic activity of microorganisms isolated in coffee-growing soil in Kon Tum Province, Vietnam. Materials Today: Proceedings, 2023. [Google Scholar]
- Giang, L., et al. Terminalia catappa leaf solution: an eco-friendly approach to managing color, algae, and microbial activity in aquaculture systems. in IOP Conference Series: Earth and Environmental Science. 2023. IOP Publishing. [Google Scholar]
- Tran, T., et al., Promoting sustainable shrimp farming: balancing environmental goals, awareness, and socio-cultural factors in the Mekong Delta aquaculture. Aquaculture International, 2025. 33(1): p. 119. [CrossRef] [Google Scholar]
- Marbun, E.D. and S. Supartiningsih, The Utilization of Kepok Banana Fruit (Musa Paradisiaca, L.,) As An Alternative Media NA (Nutrient Agar) for the Growth Of Bacteria and Mushrooms. Asian Journal of Pharmaceutical Research and Development, 2021. 9(1): p. 12-19. [CrossRef] [Google Scholar]
- Sezonov, G., D. Joseleau-Petit, and R. d’Ari, Escherichia coli physiology in Luria-Bertani broth. Journal of bacteriology, 2007. 189(23): p. 8746-8749. [CrossRef] [PubMed] [Google Scholar]
- Tran, T., et al. Preliminary study to investigate cellulose biodegradability of Bacillus-Aspergillus and Neurospora Crassa on cassava peels (Manihot Esculenta). in IOP Conference Series: Materials Science and Engineering. 2020. IOP Publishing. [Google Scholar]
- Váradi, L., et al., Methods for the detection and identification of pathogenic bacteria: past, present, and future. Chemical Society Reviews, 2017. 46(16): p. 4818-4832. [CrossRef] [PubMed] [Google Scholar]
- Kivanc, S.A., et al., Bacillus Spp. isolated from the conjunctiva and their potential antimicrobial activity against other eye pathogens. African Health Sciences, 2014. 14(2): p. 364-371. [CrossRef] [PubMed] [Google Scholar]
- Boyanova, L., et al., Activity of Bulgarian propolis against 94 Helicobacter pylori strains in vitro by agar-well diffusion, agar dilution and disc diffusion methods. Journal of medical microbiology, 2005. 54(5): p. 481-483. [CrossRef] [PubMed] [Google Scholar]
- Lascols, C., et al., In vitro antibacterial activity of doripenem against clinical isolates from French teaching hospitals: proposition of zone diameter breakpoints. European journal of clinical microbiology & infectious diseases, 2011. 30: p. 475-482. [CrossRef] [PubMed] [Google Scholar]
- Sumathi, V. and D. Reetha, Screening of lactic acid bacteria for their antimicrobial activity against pathogenic bacteria. International Journal of Pharmaceutical and Biological Archives, 2012. 3(4): p. 802-808. [Google Scholar]
- Li, F., et al., Aeromonas hydrophila and Aeromonas veronii cause motile Aeromonas septicaemia in the cultured Chinese sucker, Myxocyprinus asiaticus. Aquaculture Research, 2019. 50(5): p. 1515-1526. [CrossRef] [Google Scholar]
- Laith, A. and M. Najiah, Aeromonas hydrophila: antimicrobial susceptibility and histopathology of isolates from diseased catfish, Clarias gariepinus (Burchell). 2014. [Google Scholar]
- Omeje, V.O. and O.D. Kolndadacha, Motile aeromonas septicaemia infection in African catfish (Clarias gariepinus, Burchell, 1822): A review. CABI Reviews, 2024. 19(1). [Google Scholar]
- Haque, A., et al., Molecular characterization, antibiotic resistant pattern and biofilm forming potentiality of bacterial community associated with Ompok pabda fish farming in southwestern Bangladesh. Microbial Pathogenesis, 2024. 194: p. 106818. [CrossRef] [Google Scholar]
- Preena, P., et al., Diversity of antimicrobial‐resistant pathogens from a freshwater ornamental fish farm. Letters in applied microbiology, 2020. 71(1): p. 108-116. [CrossRef] [PubMed] [Google Scholar]
- Obidi, O., S. Soyinka, and T. Kamoru, Morphological, Biochemical and Molecular Characterisations of Bacteria Isolated from Water and Submerged Painted Boat Hulls in Badagry Lagoon, Lagos State, Nigeria. Journal of Applied Sciences and Environmental Management, 2023. 27(7): p. 1579-1589. [Google Scholar]
- Rabbee, M.F., et al., Bacillus velezensis: a valuable member of bioactive molecules within plant microbiomes. Molecules, 2019. 24(6): p. 1046. [CrossRef] [Google Scholar]
- Errington, J. and L.T.v.d. Aart, Microbe Profile: Bacillus subtilis: model organism for cellular development, and industrial workhorse. Microbiology, 2020. 166(5): p. 425-427. [CrossRef] [PubMed] [Google Scholar]
- Thurlow, C.M., et al., Bacillus velezensis AP193 exerts probiotic effects in channel catfish (Ictalurus punctatus) and reduces aquaculture pond eutrophication. Aquaculture, 2019. 503: p. 347-356. [CrossRef] [Google Scholar]
- Newaj‐Fyzul, A., et al., Bacillus subtilis AB1 controls Aeromonas infection in rainbow trout (Oncorhynchus mykiss, Walbaum). Journal of applied microbiology, 2007. 103(5): p. 1699-1706. [CrossRef] [Google Scholar]
- Ran, C., et al., Identification of Bacillus strains for biological control of catfish pathogens. 2012. [Google Scholar]
- Tan, L.V., T. Tran, and V.D. Thi, Biosynthesis of silver nanoparticles from Bacillus licheniformis TT01 isolated from quail manure collected in Vietnam. Processes, 2021. 9(4): p. 584. [CrossRef] [Google Scholar]
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