Biological potential and physicochemical characteristics of three plants from the Rhodopes, Bulgaria
Albena Parzhanova

, Yulian Tumbarski, Ivan Ivanov, Ivelina Vasileva, Velichka Yanakieva, Dimitar Dimitrov, Mina Todorova, Aneliya Georgieva
Abstract: This study aims to investigate the biological potential and physicochemical characteristics of three plants from the Rhodope region, Bulgaria: blackberry (Rubus fruticosus) and aronia (Aronia melanocarpa) berries, and mint leaves (Mentha arvensis), which are known as aromatic and medicinal plants. The following physicochemical parameters were determined: moisture, ash, and dry matter. The berries contained a comparable amount of vitamin C (1551 mg/kg), which was about twice as high as the mint leaves (846 mg/kg). Aronia berries had the highest total carbohydrate content (18.26%), which was about twice as high as blackberry and mint leaves. The blackberry had the highest protein content (10.20%), followed by mint leaves (8.95%), and the aronia berries had the lowest content (6.46%). The content of total phenolics (TPC) and flavonoids (TFC) of methanolic extracts of mint leaves and both berries was measured. The highest TPC and TFC values were found in the mint leaf extract, 6.86 mg GAE/g dw and 2.17 mg GAE/g dw, respectively. High anthocyanin content was found in aronia and blackberry extracts with values of 180.52 mg cyd-3-glu/g dw and 190.45 mg cyd-3-glu/g dw, respectively. The antioxidant activity was also measured by two methods - radical-scavenging ability (DPPH) and ferric-reducing antioxidant power assay (FRAP). The results showed a high correlation between the DPPH and FRAP assays with TPC, with r² = 0.7793 and r² = 0.9894, respectively. Consequently, the TPC contributed to the antioxidant properties of the tested samples. The antimicrobial activity of the investigated methanolic extracts was determined. The results revealed the potential of the studied plant species for their application in pharmaceutical and functional food products.
Keywords: aronia and blackberry; DPPH and ABTS assay; mint leaves; total phenol and flavonoid content
Citation: Parzhanova, A., Tumbarski, Y., Ivanov, I., Vasileva, I., Yanakieva, V., Dimitrov, D., Todorova, M. & Georgieva, A. (2026). Biological potential and physicochemical characteristics of three plants from the Rhodopes, Bulgaria. Bulg. J. Agric. Sci., 32(1), 150–158
| References: (click to open/close) | Abeyrathne, E. D. N. S., Nam, K., Huang, X. & Ahn, D. U. (2022). Plant- and animal-based antioxidants structure, efficacy, mechanisms, and applications. Antioxidants, 11, 1025. Anwar, F., Alkharfy, K. M., Najeeb-ur-Rehman, Adam, E. H. K. & Gilani, A. U. H. (2017). Chemo-geographical variations in the composition of volatiles and the biological attributes of Mentha longifolia (L.) essential oils from Saudi Arabia. International Journal of Pharmacology, 13, 408 - 424. Anwar, F., Abbas, A., Mehmood, T., Gilani, A. H. & Rehman, N. U. (2019). Mentha: A genus rich in vital nutra‐pharmaceuticals—A review. Phytotherapy Research, 33(10), 2548 - 2570. Benvenuti, S., Pellati, F., Melegari, M. & Bertelli, D. (2004). Polyphenols, anthocyanins, ascorbic acid, and radical scavenging activity of Robus, Ribes and Aronia. Journal of Food Science, 69, 164 - 169. BSS 11812:1991. Ascorbic acid (vitamin C). BSS 15438:1982. (proteins). BSS 7169:1989. (carbohydrates). BSS ISO 928:2004. (ash content). BSS ISO 939:2021. (moisture content). Celenk, S., Tarimcilar, G., Bicakci, A., Kaynak, G. & Malyer, H. (2008). A palynological study of the genus Mentha L. (Lamiaceae). Botanical Journal of the Linnean Society, 157(1), 141 - 154. Cervenka, L. (2011). Moisture adsorption characteristics of black currant (Ribes nigrum L.), black elderberry (Sambucus nigra L.) and chokeberry (Aronia melanocarpa) samples at different temperatures. J. Food Process Engineering, 34, 1419 - 1434. Condé N. (2013). Nutrition Facts and analysis for blackberries. [Last accessed on Jul 10, 2024]. Nutritiondata.self.com Available from: http://nutritiondata.self.com/facts/fruits-and-fruit-juices/1848/2. Cujic, N., Šavikin, K., Janković, T., Pljevljakušić, D., Zdunić, G. & Ibrić, S. (2016). Optimization of polyphenols extraction from dried chokeberry using maceration as traditional technique. Food Chemistry, 194, 135 - 142. De-Montijo-Prieto, S., Razola-Díaz, M. D. C., Gómez-Caravaca, A. M., Guerra-Hernandez, E. J., Jiménez-Valera, M., Garcia-Villanova, B., Ruiz-Bravo, A. & Verardo, V. (2021). Essential oils from fruit and vegetables, aromatic herbs, and spices: composition, antioxidant, and antimicrobial activities. Biology (Basel), 10(11), 1091 (En). Delkov, N. (1984). Dendrology. Sofia, Zemizdat, 233 (Bg). Haddou, M., Taibi, M., Elbouzidi, A., Loukili, E. H., Yahyaoui, M. I., Ou-Yahia, D., Mehane, L., Addi, M., Asehraou, A., Chaabane, K., Bellaouchi, R. & El Guerrouj, B. (2023). Investigating the impact of irrigation water quality on secondary metabolites and chemical profile of mentha piperita essential oil: analytical profiling, characterization, and potential pharmacological applications. International Journal of Plant Biology, 14(3), 638 - 657. Hudec, J., Bakoš, D., Mravec, D., Kobida, L., Burdová, M., Turianica, I. & Hlušek, J. (2006). Content of phenolic compounds and free polyamines in black chokeberry (Aronia melanocarpa) after application of polyamine biosynthesis regulators. Journal of Agricultural and Food Chemistry, 54, 3625 - 3628. Irshad, S., Butt, M. & Younus, H. (2011). In-vitro antibacterial activity of two medicinal plants neem (Azadirachta indica) and peppermint. International Research Journal of Pharmacy, 1, 9 - 14. Ivanov, I. Vrancheva, R. Marchev, A. Petkova, N. Aneva, I. Denev, P. Georgiev, V. & Pavlov, A. (2014). Antioxidant activities and phenolic compounds in Bulgarian Fumaria species. International Journal of Current Microbiology and Applied Sciences, 3, 296. Jing, P., Bomser, J. A., Schwartz, S. J., He, J., Magnuson, B. & Giusti, M. M. (2008). Structure-function relationship of anthocyanins from various anthocyanin-rich extracts on the inhibition of colon cancer cell growth. Journal of Agricultural and Food Chemistry, 56, 9391 - 9398. Kulling, S. E. & Rawel, H. M. (2008). Chokeberry (Aronia melanocarpa). An overview of the characteristic components and potential health effects. Planta Medica, 74, 1625 - 1635. Lemmens, L., Van Buggenhout, S., Van Loey, A. M. & Hendrickx, M. E. (2010). Particle size reduction leading to cell wall rupture is more important for the β-carotene bioaccessibility of raw compared to thermally processed carrots. Journal of Agricultural and Food Chemistry, 58, 12769 - 12776. Manolov, S., Bojilov, D., Ivanov, I., Marc, G., Bataklieva, N., Oniga, S., Oniga, O. & Nedialkov, P. (2023). Synthesis, molecular docking, molecular dynamics studies, and in vitro biological evaluation of new biofunctional ketoprofen derivatives with different N-containing heterocycles. Processes, 11, 1837. Mayer-Miebach, E., Adamiuk, M. & Behsnilian, D. (2012). Stability of chokeberry bioactive polyphenols during juice processing and stabilization of a polyphenol-rich material from the by-product. Agriculture, 2(3), 244 - 258. McKay, D. L. & Blumberg, J. B. (2006). A review of the bioactivity and potential health benefits of peppermint tea (Mentha piperita L.). Phytotherapy Research, 20, 619 - 633. Memete, A. R., Sărac, I., Teusdea, A. C., Budău, R., Bei, M. & Vicas, S. I. (2023). Bioactive compounds and antioxidant capacity of several blackberry (Rubus spp.) fruit cultivars grown in Romania. Horticulturae, 9(5), 556. Merisko-Liversidge, E., Liversidge, G. G. & Cooper, E. R. (2003). Nanosizing: A formulation approach for poorly-water-soluble compounds. European Journal of Pharmaceutical Sciences, 18, 113 - 120. Milusheva, M., Gledacheva, V., Stefanova, I., Feizi-Dehnayebi, M., Mihaylova, R., Nedialkov, P., Cherneva, E., Tumbarski, Y., Tsoneva, S. & Todorova, M. (2023b). Synthesis, molecular docking, and biological evaluation of novel anthranilic acid hybrid and its diamides as antispasmodics. International Journal of Molecular Sciences, 24, 13855. Milusheva, M., Todorova, M., Gledacheva, V., Stefanova, I., Feizi-Dehnayebi, M., Pencheva, M., Nedialkov, P., Tumbarski, Y., Yanakieva, V. & Tsoneva, S. (2023a). Novel anthranilic acid hybrids—an alternative weapon against inflammatory diseases. Pharmaceuticals, 16, 1660. Ochmian, I., Grajkowski, J. & Smolik, M. (2012). Comparison of some morphological features, quality and chemical content of four cultivars of chokeberry fruits (Aronia melanocarpa). Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 40, 253 - 260. Orhan, İ. E., Özçelik, B., Kartal, M. & Kan, Y. (2012). Antimicrobial and antiviral effects of essential oils from selected Umbelliferae and Labiatae plants and individual essential oil components. Turkish Journal of Biology, 36, 239 - 246. Oszmianski, J. & Wojdylo, A. (2005). Aronia melanocarpa phenolics and their antioxidant activity. European Food Research and Technology, 221(6), 809 - 813. Oziembłowski, M., Trenka, M., Czaplicka, M., Maksimowski, D. & Nawirska-Olszańska, A. (2022). Selected properties of juices from black chokeberry (Aronia melanocarpa L.) fruits preserved using the PEF method. Applied Sciences, 12(14), 7008. Parada, J. & Aguilera, J. M. (2007). Food microstructure affects the bioavailability of several nutrients. J. Food Sci. 72, R21 - R32. Raudsepp, P., Anton, D., Roasto, M., Meremäe, K., Pedastsaar, P., Mäesaar, M., Raal, A., Laikoja, K. & Püssa, T. (2013). The antioxidative and antimicrobial properties of the blue honeysuckle (Lonicera caerulea L.), siberian rhubarb (Rheum rhaponticum L.) and some other plants, compared to ascorbic acid and sodium nitrite. Food Control, 31, 129 - 135. Rice-Evans, C. A., Miller, N. J. & Paganga, G. (1997). Antioxidant properties of phenolic compounds. Trends in Plant Science, 2, 152 - 159. Ross, C. F., Hoye, C. & Fernandez-Plotka, V. C. (2011). Influence of heating on the polyphenolic content and antioxidant activity of grape seed flour. Journal of Food Science, 76, C884 - C890. Saba, I. & Anwar, F. (2018). Effect of harvesting regions on physico-chemical and biological attributes of supercritical fluid-extracted spearmint (Mentha spicata L.) leaves essential oil. Journal of Essential Oil Bearing Plants, 21, 400 - 419. Sidor, A. & Gramza-Michałowska, A. (2019). Black chokeberry Aronia melanocarpa L. -a qualitative composition, phenolic profile, and antioxidant potential. Molecules, 24(20), 3710. Tafrihi, M., Imran, M., Tufail, T., Gondal, T. A., Caruso, G., Sharma, S., Sharma, R., Atanassova, M., Atanassov, L., Fokou, P. & Pezzani, R. (2021). The wonderful activities of the genus Mentha: Not only antioxidant properties. Molecules, 26(4), 1118. Tarko, T., Duda-Chodak, A., Sroka, P., Satora, P. & Michalik, J. (2009). Transformations of phenolic compounds in an in vitro model simulating the human alimentary tract. Food Technology and Biotechnology, 47, 456 - 463. Teleszko, M. & Wojdyło, A. (2015). Comparison of phenolic compounds and antioxidant potential between selected edible fruits and their leaves. Journal of Functional Foods, 14, 736 - 746. Tolic, M. T., Jurcevic, I. L., Krbavcic, I. P., Markovic, K. & Vahcic, N. (2015). Phenolic content, antioxidant capacity and quality of chokeberry (Aronia melanocarpa) products. Food Technology and Biotechnology, 53, 171 - 179. Tumbarski, Y., Deseva, I., Mihaylova, D., Stoyanova, M., Krastev, L., Nikolova, R., Yanakieva, V. & Ivanov, I. (2018). Isolation, characterization and amino acid composition of a bacteriocin produced by Bacillus methylotrophicus Strain BM47. Food Technology and Biotechnology, 56, 546 - 552. Trenka, M., Nawirska-Olszańska, A. & Oziembłowski, M. (2020). Analysis of selected properties of fruits of black chokeberry (Aronia melanocarpa L.) from organic and conventional cultivation. Applied Sciences, 10(24), 9096. USDA NRCS (n.d.). "Photinia floribunda" (2009). The PLANTS Database (plants.usda.gov). Greensboro, North Carolina: National Plant Data Team. Valcheva-Kuzmanova, S. V. & Belcheva, A. (2006). Current knowledge of Aronia melanocarpa as a medicinal plant. Folia medica, 48(2), 11 - 17. Venkatachalam, S. K., Vellingri, A. & Selvaraj, V. (2020). Low-temperature drying characteristics of mint leaves in a continuous-dehumidified air drying system. Journal of Food Process Engineering, 43, e13384. Verlag, H. (2004). Indian medicinal plants; an illustrated dictionary. In: Khare CP, editor. Encyclopedia of Indian Medicinal Chemistry, 2, 560. New York City: Springer Publisher. Wangensteen, H., Bräunlich, M., Nikolic, V., Malterud, K. E., Slimestad, R. & Barsett, H. (2014). Anthocyanins, proanthocyanidins and total phenolics in four cultivars of Aronia: Antioxidant and enzyme inhibitory effects. Journal of Functional Foods, 7, 746 - 752. ́ Ye, L., El-Mesery, H. S., Ashfaq, M. M., Shi, Y., Zicheng, H. & Alshaer, W. (2021). Analysis of energy and specific energy requirements in various drying processes of mint leaves. Case Studies in Thermal Engineering, 26, 10113. Zieniewska, I., Zalewska, A., Żendzian-Piotrowska, M., Ładny, J. R. & Maciejczyk, M. (2020). Antioxidant and antiglycation properties of seventeen fruit teas obtained from one manufacturer. Applied Sciences, 10(15), 5195. |
|
| Date published: 2026-02-25
Download full text