Isolation, Screening, and Optimization of Amylase-Producing Endophytic Bacteria from Rhizophora apiculata
DOI:
https://doi.org/10.35799/jbl.v15i1.63548Keywords:
Endophytic bacteria, amylase, starch, pH, temperatureAbstract
High amylase enzyme production requires optimal supporting factors for enzyme production. The purpose of this study was to determine the optimum conditions for endophytic bacterial fermentation, including substrate concentration, pH, and fermentation temperature, for the production of amylase from endophytic bacteria of mangrove plants Rhizophora apiculata. Analysis of amylase enzyme activity was carried out using the 3,5-dinitrosalicylic acid (DNS) assay. The results obtained from this research were from a total of 18 endophytic bacteria R. apiculata that were successfully isolated, 6 bacterial isolates were obtained which showed the ability to produce extracellular amylase. The potential of bacteria for amylase production grown on 0.5% starch media was determined based on the ratio between the diameter of the halo zone and the diameter of the bacterial colony. Three isolates were selected, EB.5, EB.10, and EB.12 for further optimization of the fermentation conditions for amylase production. Based on the results obtained, it was shown that the fermentation conditions for amylase enzyme from the three isolates of endophytic bacteria were optimum in media with a concentration of 1.5% starch, in media with a pH of 6, and optimum in the temperature range of 30oC.
References
Castro, R. A., Quecine, M. C., Lacava, P. T., Batista, B. D., Luvizotto, D. M., Marcon, J., Ferreira, A., Melo, I. S., & Azevedo, J. L. (2014). Isolation and enzyme bioprospection of endophytic bacteria associated with plants of Brazilian mangrove ecosystem. SpringerPlus, 3(1), 1–9. https://doi.org/10.1186/2193-1801-3-382.
Deivanai, S., Bindusara, A. S., Prabhakaran, G., & Bhore, S. J. (2014). Culturable bacterial endophytes isolated from Mangrove tree (Rhizophora apiculata Blume) enhance seedling growth in Rice. Journal of Natural Science, Biology and Medicine, 5(2), 437–444. https://doi.org/10.4103/0976-9668.136233.
Elmansy, E. A., Asker, M. S., El-kady, E. M., Hassanein, S. M., & El-beih, F. M. (2018). Production and optimization of α-amylase from thermo-halophilic bacteria isolated from different local marine environments. Bulletin of the National Research Centre, 42(31). https://doi.org/10.1186/s42269-018-0033-2.
Hankin, L., & Anagnostakis, S. L. (1975). The use of solid media for detection of enzyme production by fungi. Mycologia, 67, 597–607. https://doi.org/10.1080/00275514.1975.12019782.
Khan, A. L., Shahzad, R., Al-Harrasi, A., & Lee, I.-J. (2017). Endophytic Microbes: A Resource for Producing Extracellular Enzymes. November, 95–110. https://doi.org/10.1007/978-3-319-66544-3_5.
Maulani, B. I. G., Rasmi, D. A. C., & Zulkifli, L. (2019). Isolation and characterization of endophytic bacteria from mangrove Rhizophora mucronata Lam. and antibacterial activity test against some pathogenic bacteria. Journal of Physics: Conference Series, 1402(3), 8–15. https://doi.org/10.1088/1742-6596/1402/3/033038.
Morales-Covarrubias, M. S., García-Aguilar, N., & Puello-Cruz, A. C. (2019). Biopotentials of Mangroves. International Journal of Agriculture Environment and Bioresearch, 04(05), 264–281. https://doi.org/10.35410/ijaeb.2019.4445.
Miller, G. L. (1959). Use of dinitrosalicylic acid reagent for determination of reducing sugar. Analytical Chemistry, 31, 426–428. https://doi.org/10.1021/ac60147a030.
Park, S. H., Na, Y., Kim, J., Kang, S. D., & Park, K. H. (2018). Properties and applications of starch modifying enzymes for use in the baking industry. Food Science and Biotechnology, 27(2), 299–312. https://doi.org/10.1007/s10068-017-0261-5.
Prihanto, A. A., Fatchiyah, A., Kartikaningsih, H., & Pradarameswari, K. A. (2018). Identifikasi Bakteri Endofit Mangrove Api-Api Putih (Avicennia marina) Penghasil Enzim L-asparaginase. Jurnal Ilmiah Perikanan Dan Kelautan, 10(2), 84. https://doi.org/10.20473/jipk.v10i2.10467.
Rana, N., Walia, A., & Gaur, A. (2013). Α-Amylases From Microbial Sources and Its Potential Applications in Various Industries. National Academy Science Letters, 36(1), 9–17. https://doi.org/10.1007/s40009-012-0104-0.
Rori, C. A., Kandou, F. E. F., & Tangapo, A. M. (2020). Aktivitas Enzim Ekstraseluler dari Bakteri Endofit Tumbuhan Mangrove Avicennia marina. Jurnal Bios Logos, 10(2): 48-55.
https://doi.org/10.35799/jbl.11.2.2020.28338.
Saini, R., Singh Saini, H., Dahiya, A., & Harnek Singh Saini, C. (2017). Amylases: Characteristics and industrial applications. Journal of Pharmacognosy and Phytochemistry, 6(4), 1865–1871.
https://www.phytojournal.com/archives/2017/vol6issue4/PartAA/6-4-407-141.pdf.
Vishnu, T. S., Soniyamby, A. R., Praveesh, B. V., & Hema, T. A. (2014). Production and optimization of extracellular amylase from soil receiving kitchen waste isolate Bacillus sp. VS 04. World Applied Sciences Journal, 29(7), 961–967. https://doi.org/10.5829/idosi.wasj.2014.29.07.8220.
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Copyright (c) 2025 Agustina Monalisa Tangapo, Susan Marlein Mambu, Pience Veralyn Maabuat, Dwina Kristianti, Williando Ering, Lalu Wahyudi

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