IMPACT OF DRYING METHODS AND SOLVENT EXTRACTION ON THE ANTIBACTERIAL PROPERTIES OF POMEGRANATE (PUNICA GRANATUM L.)

  • ADITYA . National Institute of Food Technology Entrepreneurship and Management, Kundli 131028, Haryana, India.
Keywords: anti-microbial activity, drying, pomegranate peel, solvent extraction, ultrasonication

Abstract


The current study aims to study the effects of three drying methods (freeze, tray, sun) and five solvents (methanol, ethanol, water, acetone, hexane) on the antibacterial properties of the by-product (peel) of pomegranate fruits against four bacterial strains (Pseudomonas aeruginosa, Escherichia coli, Bifidobacterium bifidum and Enterococcus faecalis). The results demonstrated that these extracts had a substantial antibacterial impact against the tested bacterial species. All pomegranate peel extraction fractions, containing methanol, ethanol, water and acetone, inhibited the growth of several Gram-positive and Gram-negative bacteria. The combination of freeze-drying process and methanol as extractive solvent demonstrated significantly higher antimicrobial activity (p<0.05) in pomegranate peel powder against P. aeruginosa (24.16 mm), E. coli (24 mm) and E. faecalis (24 mm) at a concentration of 35 μL. Hexane was found unsuitable as an extraction solvent because it lacked antibacterial activity, while acetone, although it exhibited limited extraction efficiency for pomegranate peel, produced an extract with relatively better antibacterial activity. This study will help in achieving sustainability and a circular economy by utilizing pomegranate peel waste as a natural active agent for further applications in the food processing and packaging industry to develop value-added products and edible packaging for food preservation and efficient use of pomegranate peel as a natural antibacterial agent in pharmaceuticals, food preservation and biomedical applications.

References

Abraham, A.O., Abdulazeez, A.K., Seun, O.O., & Ogonna, D.W. (2019). Antimicrobial activity of N-hexane extract of Nigella sativa against some pathogenic bacteria. American Journal of Biomedical Science and Research, 6, 430–434.http://dx.doi.org/10.34297/AJBSR.2019.06.001077

Abuzaid, K., Shaltout, F., Salem, R., & El-Diasty, E. (2020). Assessment of pomegranate peel powder on microbial contamination of sausages. Benha Veterinary Medical Journal, 39(2), 34–39.

Aditya, Jarial, R.S., & Jarial, K. (2022). Laboratory screening of different nutrient media for mycelial growth and cultural characteristics of blue oyster mushroom [(Bull.: Fr.) Redhead] Hypsizygus ulmarius. Indian Journal of Ecology, 49(3), 826–830. https://doi.org/10.55362/IJE/2022/3602

Aditya, Jarial, R.S., & Jarial, K. (2023). Influence of physiological parameters on mycelial growth and cultural characteristics of blue oyster mushroom [Hypsizygus ulmarius (Bull.: Fr.) Redhead]. Indian Journal of Ecology, 50(1), 151–156. https://doi.org/10.55362/IJE/2023/3869

Aditya, Neeraj, & Bhatia, J.N. (2024). Escalating vitamin D2 content in fresh sporocarps of elm oyster mushroom Hypsizygus ulmarius (Bull.) Redhead (Agaricomycetes) using ultraviolet irradiation and assessment of its stability, antioxidant capacity, color and textural properties. ACS Food Science & Technology, 4(11), 2739–2751. https://doi.org/10.1021/acsfoodscitech.4c00701

Aditya, Neeraj, Bhatia, J.N., Jarial, R.S., & Jarial, K. (2025). Cultivation technology optimization and identification of secondary metabolites from elm oyster mushroom Hypsizygus ulmarius (Bull.) Redhead (Agaricomycetes) through GC-MS metabolomic profiling from India. Mycologia, 117(2), 1–27. https://doi.org/10.1080/00275514.2025.2452307

Alexandre, M.C.E., Silva, S., Santos, A.O.S., Silvestre, J.D.A., Duarte, F.M., Saraiva, A.J., & Pintado, M. (2019). Antimicrobial activity of pomegranate peel extracts performed by high pressure and enzymatic assisted extraction. Food Research International, 115, 167–176. https://doi.org/10.1016/j.foodres.2018.08.044

Alharbi, A.A., Alghamdi, A.M., Al-Goul, S.T., Allohibi, A., Baty, R., Qahl, S., & Beyari, E.A. (2024). Valorizing pomegranate wastes by producing functional silver nanoparticles with antioxidant, anticancer, antiviral, and antimicrobial activities and its potential in food preservation. Saudi Journal of Biological Sciences, 31, (1), 103880. https://doi.org/10.1016/j.sjbs.2023.103880

Balaban, M., Koc, C., Sar, T., & Akbas, M.Y. (2021). Antibiofilm effects of pomegranate peel extracts against B. cereus, B. subtilis, and E. faecalis. International Journal of Food Science and Technology, 56(10), 4915–4924. https://doi.org/10.1111/ijfs.15221

Bodana, V., Swer, T.L., Kumar, N., Singh, A., Samtiya, M., Sari, T.P., & Babar O.A. (2024). Development and characterization of pomegranate peel extract-functionalized jackfruit seed starch-based edible films and coatings for prolonging the shelf life of white grapes. International Journal of Biological Macromolecules, 254, 127234. https://doi.org/10.1016/j.ijbiomac.2023.127234

Cano-Lamadrid, M., Martínez-Zamora, L., Castillejo, N., & Artes-Hernandez, F. (2022). From Pomegranate byproducts waste to worth: A review of extraction techniques and potential applications for their revalorization. Foods, 11(17), 2596. https://doi.org/10.3390/foods11172596

CLSI. (2001). Clinical and laboratory standards institute performance standards for antimicrobial disk susceptibility tests. Approved Standards, Wayne, PA, CLSI. pp. 2–7.

Hayrapetyan, H., Hazeleger, W., & Beumer, R. (2012). Inhibition of Listeria monocytogenes by pomegranate (Punica granatum) peel extract in meat paté at different temperatures. Food Control, 23(1), 66–72. https://doi.org/10.1016/j.foodcont.2011.06.012

Ishangulyyev, R., Kim, S., & Lee, S.H. (2019). Understanding food loss and waste—Why are we losing and wasting food? Foods, 8(8), 297. https://doi.org/10.3390/foods8080297

Kaur, R., Kaushal, S., & Sharma, P. (2018). Antimicrobial and antioxidant potential of pomegranate (Punica granatum L.) peel. International Journal of Chemical Studies, 6(5), 3441–3449.

Kumar, N., Daniloski, D., D'Cunha, N.M., Naumovski, N., & Petkoska, A.T. (2022). Pomegranate peel extract–A natural bioactive addition to novel active edible packaging. Food Research International, 156, 111378. https://doi.org/10.1016/j.foodres.2022.111378

Kumar, N., & Neeraj (2018). Study on physico-chemical and antioxidant properties of pomegranate peel. Journal of Pharmacognosy and Phytochemistry, 7(3), 2141–2147.

Kumar, N., Neeraj, & Kaur, K. (2019). Evaluation of in-vitro antibacterial activity of pomegranate (Cv. Ganesh) Peel Extract. Think India Journal, 22(33), 115–126.

Kumar, N., Pratibha., Neeraj, Sami, R., Khojah, E., Aljahani, A.H., & Al-Mushhin, A.A. (2022). Effects of drying methods and solvent extraction on quantification of major bioactive compounds in pomegranate peel waste using HPLC. Scientific Reports, 12(1), 8000. https://doi.org/10.1038/s41598-022-11881-7

Kumar, N., Pratibha, Upadhyay, A., Trajkovska Petkoska, A., Gniewosz, M., & Kieliszek, M. (2023). Extending the shelf life of mango (Mangifera indica L.) fruits by using edible coating based on xanthan gum and pomegranate peel extract. Journal of Food Measurement and Characterization, 17(2), 1300–1308. https://doi.org/10.1007/s11694-022-01706-6

Lacivita, V., Incoronato, A., Conte, A., & Nobile, M. (2021). Pomegranate peel powder as a food preservative in fruit salad: a sustainable approach. Foods, 10(6), 1359. https://doi.org/10.3390/foods10061359

Man, G., Xu, L., Wang, Y., Liao, X., & Xu, Z. (2022). Profiling phenolic composition in pomegranate peel from nine selected cultivars using UHPLC-QTOF-MS and UPLC-QQQ-MS. Frontiers in Nutrition, 8, 807447. https://doi.org/10.3389/fnut.2021.807447

Marra, F., Petrovicova, B., Canino, F., Maffia, A., Mallamaci, C., & Muscolo, A. (2022). Pomegranate wastes are rich in bioactive compounds with potential benefit on human health. Molecules, 27(17), 5555. https://doi.org/10.3390/molecules27175555

Mirhaj, M., Varshosaz, J., Nasab, P.M., Al-Musawi, M.H., Almajidi, Y.Q., Shahriari-Khalaji, M., & Esfahani, S.N. (2024). A double-layer cellulose/pectin-soy protein isolate-pomegranate peel extract micro/nanofiber dressing for acceleration of wound healing. International Journal of Biological Macromolecules, 255, 128198. https://doi.org/10.1016/j.ijbiomac.2023.128198

Mphahlele, R.R., Fawole, O.A., Makunga, N.P., & Opara, U.L. (2016). Effect of drying on the bioactive compounds, antioxidant, antibacterial and antityrosinase activities of pomegranate peel. BMC Complementary and Alternative Medicine, 16(1), 1–12. https://doi.org/10.1186/s12906-016-1132-y

Nozohour, Y., Golmohammadi, R., Mirnejad, R., & Fartashvand, M. (2018). Antibacterial activity of pomegranate (Punica granatum L.) seed and peel alcoholic extracts on Staphylococcus aureus and Pseudomonas aeruginosa isolated from health centers. Applied Biotechnology Reports, 5(1), 32–36. https://doi.org/10.29252/jabr.01.01.06

Prasetyo, E.P., Saraswati, W., Goenharto, S., Wahjuningrum, D.A., Mooduto, L., Rosidin, R.F., & Tjendronegoro, E. (2021). White pomegranate (Punica granatum) peels extract bactericidal potency on Enterococcus faecalis. Conservative Dentistry and Endodontic Journal, 11(2), 1-10.

Rummun, N., Somanah, J., Ramsaha, S., Bahorun, T., & Neergheen, V. (2013). Bioactivity of non-edible parts of Punica granatum L.: A potential source of functional ingredients. International Journal of Food Science, 2013, 1–12. https://doi.org/10.1155/2013/602312

Shalaby, M., Dawood, D., Hefni, M., & Murad, B. (2019). Phytochemical constituents, antimicrobial and antitumor effects of pomegranate fruit (Punica granatum L). Journal of Food and Dairy Sciences, 10(10), 373–380. https://doi.org/10.21608/jfds.2019.60208

Singh, B., Singh, P.J., Kaur, A., & Singh, N. (2019). Antimicrobial potential of pomegranate peel: A review. International Journal of Food Science and Technology, 54, 959–965. https://doi.org/10.1111/ijfs.13964

Valero-Mendoza, A.G., Melendez-Renteria, N.P., Chavez-Gonzalez, M.L., Flores-Gallegos, A.C., Wong-Paz, J.E., Govea-Salas, M., & Ascacio-Valdes, J.A. (2023). The whole pomegranate (Punica granatum L.), biological properties and important findings: A review. Food Chemistry Advances, 2, 100153. https://doi.org/10.1016/j.focha.2022.100153

Viuda-Martos, M., Ruiz-Navajas, Y., Fernandez-Lopez, J., & Perez-Alvarez, J.A. (2008). Antibacterial activity of lemon (Citrus lemon L.), mandarin (Citrus reticulata L.), grapefruit (Citrus paradisi L.) and orange (Citrus sinensis L.) essential oils. Journal of Food Safety, 28, 567–576. https://doi.org/10.1111/j.1745-4565.2008.00131.x

Published
2026/02/25
Section
Original research paper