Optimization of Riau Local Lactic Acid Bacteria Concentration and Evaluation of Cell and Supernatant Antifungal Activity Against Aspergillus parasiticus

Musyirna Rahmah Nasution, Nesa Agistia, Dita Bina Julianti Habeahan, Saryono Saryono

Abstract


Lactic acid bacteria (LAB) are capable of producing bioactive metabolites that can inhibit the growth of molds, including Aspergillus parasiticus. However, the potential of local LAB strains from Riau as biocontrol agents has not been extensively explored. This study aimed to optimize the concentration of LAB isolated from Riau to obtain the best antifungal activity, evaluate the effectiveness of their supernatants against the growth of A. parasiticus, and assess their potential application in food commodities.The antifungal activity of cell suspensions was tested using the well-diffusion method with varying concentrations (OD). Cell-free supernatants were analyzed through dilution assays to determine the percentage of fungal inhibition. Application testing was conducted on corn kernels as a biocontrol model. The results showed that increasing LAB cell density correlated with a larger inhibition zone against the mold. The two best isolates, S28 and AERH7, at OD 0.8 and 48 hours of incubation, produced inhibition zones of 18.67 mm and 17.58 mm, respectively. The supernatants of both isolates also demonstrated strong activity, with inhibition percentages of 72.17% and 64.39%, confirming the role of LAB metabolites in antifungal activity. Application on corn kernels further showed a visible reduction in mold growth compared to the control.This study concludes that LAB strains from Riau possess significant potential as natural biocontrol agents against A. parasiticus. These findings provide practical benefits for developing microbial-based biopreservation strategies to enhance food safety and quality.

Keywords


Aspergillus inhibitors; Lactic acid bacteria; Antifungal metabolites; Bacterial supernatant; Food biopreservation

Full Text:

PDF

References


Abouloifa, H., Rokni, N., & Mourad, K. (2022). Antifungal activity of lactic acid bacteria: mechanisms and potential food applications. Food Microbiology, 105, 103879.

Damayanti, E., Shabrina, N., Prihantoro, F. A., & Shovitri, M. (2021). Antifungal activities of lactic acid bacteria and yeast isolated from various types of tempe. IOP Conference Series: Materials Science and Engineering, 1011, 012021.

Fugaban, J. I. I., Jung, E. S., Todorov, S. D., & Holzapfel, W. H. (2023). Evaluation of antifungal metabolites produced by lactic acid bacteria. Probiotics and Antimicrobial Proteins, 15(5), 1447–1463.

Giwa, A. S., Rahman, S. U., Irfan, M., & Ali, N. (2025). Biocontrol strategies with Bacillus and Lactobacillus: Toward sustainable management of fungal pathogens. Letters in Applied Microbiology, 78(12), ovaf129.

Hajimohammadi, S., Gharibi, S., Pourbarkhordar, V., Mousavi, S. R., & Salmani Izadi, H. (2022). Acute poisoning of copper sulfate: A case report and review literature. The Egyptian Journal of Internal Medicine, 34(1), 84.

Lamichhane, J. R., Osdaghi, E., Behlau, F., Köhl, J., Jones, J. B., & Aubertot, J. N. (2018). Thirteen decades of antimicrobial copper compounds applied in agriculture: A review. Agronomy for Sustainable Development, 38(3), 28.

Liu, J., Sui, Y., Wisniewski, M., Xie, Z., Liu, Y., You, Y., … & Wang, Q. (2018). The impact of the postharvest environment on the viability and virulence of decay fungi. Critical Reviews in Food Science and Nutrition, 58(10), 1681–1687.

Lovenia, N. (2023). Isolasi dan Identifikasi Bakteri Asam Laktat (BAL) dari Cangkuak Semaung (Pangium edule Reinw) sebagai Probiotik dan Agen Senyawa Bioaktif (Skripsi). Universitas Riau, Pekanbaru.

Mani?López, E., Arrioja?Bretón, D., & López?Malo, A. (2022). The impacts of antimicrobial and antifungal activity of cell?free supernatants from lactic acid bacteria in vitro and foods. Comprehensive Reviews in Food Science and Food Safety, 21(1), 604–641.

Matsue, M., Mori, Y., Nagase, S., Sugiyama, Y., Hirano, R., Ogai, K., … & Okamoto, S. (2019). Measuring the antimicrobial activity of lauric acid against various bacteria in human gut microbiota using a new method. Cell Transplantation, 28(12), 1528–1541.

Muhialdin, B. J., Algboory, H. L., Kadum, H., Mohammed, N. K., Saari, N., Hassan, Z., & Hussin, A. S. M. (2020). Antifungal peptides of Lactobacillus plantarum TE10 against A. flavus. Food Control, 109, 106898.

Nasution, M. R., Aulya, N., Dona, R., & Ningsih, Y. F. (2025). The isolation, characterization, and antifungal assay of lactic acid bacteria isolated from green glutinous rice tape against Aspergillus flavus. Medical Laboratory Technology Journal, 11(1), 82–95.

Pickova, D., Ostry, V., & Malir, F. (2021). A recent overview of producers and important dietary sources of aflatoxins. Toxins, 13(3), 186.

Pribadhi, A. N., Herlambang, P. M., & Purwaningrum, E. (2025). Antibacterial activity of bacteriocin from Pediococcus pentosaceus against Propionibacterium acnes: Molecular docking, in vitro, and 16S rRNA genetic identification. Biology, Medicine, & Natural Product Chemistry, 14(2), 943–949.

Pritom, M. H. (2022). In vitro characterization of gut stress tolerant potential probiotic Lactobacillus spp. isolated from traditional curds (Doctoral dissertation, Khulna University).

Rohman, N., & Alim, M. B. (2025). Isolation, identification, and evaluation of antimicrobial activity of the LAB from Bekasam: The traditional fermented fish in Indonesia. Biology, Medicine, & Natural Product Chemistry, 14(2), 897–903.

Saifur, M., Soltani, S., LaPointe, G., Karboune, S., & Fliss, I. (2025). Lactic acid bacteria: Beyond fermentation to bio-protection against fungal spoilage and mycotoxins in food systems. Frontiers in Microbiology, 16, 1580670.

Shehata, M. G., Badr, A. N., El Sohaimy, S. A., Asker, D., & Awad, T. S. (2019). Characterization of antifungal metabolites produced by novel lactic acid bacterium and their potential application as food biopreservatives. Annals of Agricultural Sciences, 64(1), 71–78.

Trinh, L. L., Le, K. N., Le Lam, H. A., & Nguyen, H. H. (2025). Cell-free supernatants from plant growth-promoting Bacillus albus strains control Aspergillus flavus disease in peanut and maize seedlings. Beni-Suef University Journal of Basic and Applied Sciences, 14(1), 4.




DOI: https://doi.org/10.14421/biomedich.2026.151.401-409

Refbacks

  • There are currently no refbacks.




Copyright (c) 2026 Musyirna Rahmah Nasution, Nesa Agistia, Dita Bina Julianti Habeahan, Saryono



Biology, Medicine, & Natural Product Chemistry
ISSN 2089-6514 (paper) - ISSN 2540-9328 (online)
Published by Sunan Kalijaga State Islamic University & Society for Indonesian Biodiversity.

CC BY NC
This work is licensed under a CC BY-NC