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Diplotaxis tenuifolia'nın farklı ekstraktlarının enzim, insektisit, antibakteriyel aktivitelerinin karşılaştırmalı olarak belirlenmesi ve kimyasal bileşen analizi

Year 2025, Volume: 65 Issue: 2, 21 - 31, 30.06.2025
https://doi.org/10.16955/bitkorb.1599639

Abstract

Bu çalışma, Çankırı’nın jips bakımından zengin topraklarında yetiştirilen Diplotaxis tenuifolia bitkisinin çiçek (DTF) ve yaprak (DTL) organlarından; etil asetat, aseton ve n-bütanol gibi farklı çözücüler kullanılarak elde edilen ekstraktların insektisit, enzimatik ve antimikrobiyal aktiviteleri ile fitokimyasal profillerini değerlendirmeyi amaçlamıştır. LC-MS/MS analizi sonucunda, DTF-EA (çiçek etil asetat), DTF-Ace (çiçek aseton), DTL-EA (yaprak etil asetat) ve DTL-Ace (yaprak aseton) ekstraktlarında vanilik asit; DTL-nBu (yaprak n-bütanol) ekstraktında narengin; DTF-nBu (çiçek n-bütanol) ekstraktında ise hesperidin başlıca bileşikler olarak belirlenmiştir. DTF-EA ekstraktı, Sitophilus granarius ve Rhizopertha dominica üzerinde sırasıyla %90 ve %83.3 mortaliteye ulaşarak yüksek insektisit etki göstermiş; DTF-Ace ekstraktı da bu türlere karşı %86.6 ve %66 oranında toksisite sergilemiştir. Enzim inhibisyon testlerinde, DTF-EA ekstraktı ksantin oksidaz (IC50: 27.83 µg/ml) ve tirozinaz (IC50: 58.25 µg/ml) enzimlerine karşı güçlü inhibitör etkiler göstererek akarbos gibi standart inhibitörlerin aktivitesini aşmıştır. Antibakteriyel deneylerde ise DTF-EA ekstraktı, Pseudomonas aeruginosa, Listeria monocytogenes, Bacillus cereus ve Salmonella enterica türlerine karşı sırasıyla 16.5; 15.5; 12.9 ve 12.4 mm’lik inhibisyon zonları oluşturarak geniş spektrumlu aktivite ortaya koymuştur. DTL-EA ekstraktı Escherichia coli’ye karşı 13.1 mm; DTL-Ace ekstraktı ise Pseudomonas fluorescens’e karşı 13.3 mm’lik en yüksek inhibisyon alanına ulaşmıştır. Bu bulgular, D. tenuifolia ekstraktlarının kayda değer antibakteriyel, böcek öldürücü ve enzim inhibitör aktivitelere sahip olduğunu göstermekte ve doğal terapötik ajanlar ve çevre dostu haşere kontrolü ve mikrobiyal yönetim alternatifleri olarak potansiyellerini vurgulamaktadır.

References

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  • Akman T.Ç., Şimşek S., Akşit Z., Akşit H., Aydin A., Tüfekçi A.R., Yilmaz M.A., 2024. Liquid chromatography–tandem mass spectrometry profile and antioxidant, antimicrobial, antiproliferative, and enzyme activities of Thymus pectinatus and Thymus convolutus: in vitro and in silico approach. Journal of the Science of Food and Agriculture, 104 (7), 4039-4049.
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  • Jdir H., Kolsi R.B.A., Zouari S., Hamden K., Zouari N., Fakhfakh N., 2017. The cruciferous Diplotaxis simplex: phytochemistry analysis and its protective effect on liver and kidney toxicities, and lipid profile disorders in alloxan-induced diabetic rats. Lipids in Health and Disease, 16, 1-9.
  • Karakoç Ö.C., Tüfekçi A.R., Demirtaş İ., İpek A., 2013. Salvia tchihatcheffii ve Salvia cryptantha uçucu yağlarının ve ekstraktlarının iki önemli depo zararlısı üzerindeki insektisidal aktiviteleri. Tarım Bilimleri Araştırma Dergisi, 6 (1), 155-158.
  • Kirkegaard J.A., Sarwar M., Wong P.T.W., Mead A., Howe G., Newell M., 2000. Field studies on the biofumigation of take-all by Brassica break crops. Australian Journal of Agricultural Research, 51 (4), 445-456.
  • Leporatti M.L., Corradi L., 2001. Ethnopharmacobotanical remarks on the province of Chieti town (Abruzzo, Central Italy). Journal of Ethnopharmacology, 74 (1), 17-40.
  • Loizzo M.R., Napolitano A., Bruno M., Geraci A., Schicchi R., Leporini M., Piacente S., 2021. LC-ESI/HRMS analysis of glucosinolates, oxylipins and phenols in Italian rocket salad (Diplotaxis erucoides subsp. erucoides (L.) DC.) and evaluation of its healthy potential. Journal of the Science of Food and Agriculture, 101 (14), 5872-5879.
  • London S.J,. Smart J., Daly A.K., 2000. Lung cancer risk in relation to genetic polymorphisms of microsomal epoxide hydrolase among African–Americans and Caucasians in Los Angeles County. Lung Cancer, 28 (2), 147–155.
  • Mannozzi C., Fauster T., Haas K., Tylewicz U., Romani S., Dalla Rosa M., Jaeger H., 2018. Role of thermal and electric field effects during the pre-treatment of fruit and vegetable mash by pulsed electric fields (PEF) and ohmic heating (OH). Innovative Food Science & Emerging Technologies, 48, 131-137.
  • Martínez-Sánchez A., Llorach R., Gil M.I., Ferreres F., 2007. Identification of new flavonoid glycosides and flavonoid profiles to characterize rocket leafy salads (Eruca vesicaria and Diplotaxis tenuifolia). Journal of Agricultural and Food Chemistry, 55 (4), 1356-1363.
  • Mohammad M.K., Almasri I.M., Tawaha K., Issa A., Al-Nadaf A., Hudaib M., Al-Khatib H.S., Abu-Gharbieh E., Bustanji Y., 2010. Antioxidant, antihyperuricemic and xanthine oxidase inhibitory activities of Hyoscyamus reticulatus. Pharmaceutical Biology, 48 (12), 1376-1383.
  • Normen L., Johnsson M., Andersson H., Van Gameren Y., Dutta P., 1999. Plant sterols in vegetables and fruits commonly consumed in Sweden. European Journal of Nutrition, 38, 84–89.
  • Oke Altuntas F., Demirtas İ., Tufekci A.R., Koldas S., Behcet L., Gul F., Gecibesler İ.H., 2015. Isolation of active components from the essential oil of Satureja boissieri and determination of their antimicrobial and anti-cancer properties. 11th International Symposium on Pharmaceutical Sciences (ISOPS-11), June 09-12, 2015, Book of Abstracts, Ankara University, faculty of Pharmacy, Publication No: 112, Ankara, Turkey, 403 p.
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Comparative determination of enzyme, insecticide, antibacterial activities of different extracts of Diplotaxis tenuifolia and chemical components analysis

Year 2025, Volume: 65 Issue: 2, 21 - 31, 30.06.2025
https://doi.org/10.16955/bitkorb.1599639

Abstract

This study aimed to evaluate the insecticidal, enzymatic, antimicrobial activities, and phytochemical composition of extracts derived from the flowers and leaves of Diplotaxis tenuifolia (DTF and DTL) grown in gypsum-rich soils of Çankırı, utilizing various solvents. LC-MS/MS analysis identified vanillic acid as the major component in the Diplotaxis tenuifolia flower ethyl acetate (DTF-EA), Diplotaxis tenuifolia flower acetone (DTF-Ace), Diplotaxis tenuifolia leaf (DTL-EA), and Diplotaxis tenuifolia leaf acetone (DTL-Ace) extracts, naringin in Diplotaxis tenuifolia leaf n-butanol (DTL-nBu), and hesperidin in Diplotaxis tenuifolia flower n-butanol (DTF-nBu). The DTF-EA extract showed high efficacy in insecticidal assays against Sitophilus granarius and Rhizopertha dominica, achieving 90% and 83.3% mortality, respectively. Similarly, the DTF-Ace extract exhibited 86.6% and 66% mortality against S. granarius and R. dominica, respectively. Enzyme inhibition assays revealed that the DTF-EA extract exhibited potent inhibitory effects against xanthine oxidase (IC50: 27.83 µg/ml) and tyrosinase (IC50: 58.25 µg/ml), surpassing standard inhibitors such as acarbose. In antimicrobial assays, the DTF-EA extract demonstrated broad-spectrum antibacterial activity, exhibiting inhibition zones of 16.5, 15.5, 12.9, and 12.4 mm against Pseudomonas aeruginosa, Listeria monocytogenes, Bacillus cereus, and Salmonella enterica, respectively. The DTL-EA extract displayed significant activity against Escherichia coli (13.1 mm), while the DTL-Ace extract was most effective against Pseudomonas fluorescens (13.3 mm). These findings suggest that D. tenuifolia extracts possess notable antibacterial, insecticidal, and enzyme inhibitory activities, highlighting their potential as natural therapeutic agents and eco-friendly pest control and microbial management alternatives.

Thanks

Author is thankful to Şevki Adem, Ömer Cem Karakoç and Hüseyin Akşit for their help in conducting the study.

References

  • Abay G., Altun M., Koldas S., Tufekci A.R, Demirtas I., 2015. Determination of antiproliferative activities of volatile contents and HPLC profiles of Dicranum scoparium (Dicranaceae, Bryophyta). Combinatorial Chemistry & High Throughput Screening, 18 (5), 453-463.
  • Akman T.Ç., Şimşek S., Akşit Z., Akşit H., Aydin A., Tüfekçi A.R., Yilmaz M.A., 2024. Liquid chromatography–tandem mass spectrometry profile and antioxidant, antimicrobial, antiproliferative, and enzyme activities of Thymus pectinatus and Thymus convolutus: in vitro and in silico approach. Journal of the Science of Food and Agriculture, 104 (7), 4039-4049.
  • Aydın S., 2020. Bazı bitkisel kökenli uçucu yağların Alman hamam böceği (Blattella germanica (L.)) erginlerine karşı toksisitesi. Kahramanmaraş Sütçü İmam Üniversitesi, Fen Bilimleri Enstitüsü, Basılmamış Doktora Tezi, 85 s, Kahramanmaraş.
  • Badalamenti N., Napolitano A., Bruno M., Pino R., Tundis R., Ilardi V., Piacente S., 2024. Chemical profile and healthy properties of Sicilian Diplotaxis harra subsp. crassifolia (Raf.) Maire. Molecules, 29 (11), 2450.
  • Bahloul N., Bellili S., Aazza S., Chérif A., Faleiro M.L., Antunes M.D., Mnif W., 2016. Aqueous extracts from tunisian Diplotaxis: phenol content, antioxidant and anti-acetylcholinesterase activities, and impact of exposure to simulated gastrointestinal fluids. Antioxidants, 5 (2), 1-15.
  • Bennett R.N., Rosa E.A., Mellon F.A., Kroon P.A., 2006. Ontogenic profiling of glucosinolates, flavonoids, and other secondary metabolites in Eruca sativa (salad rocket), Diplotaxis erucoides (wall rocket), Diplotaxis tenuifolia (wild rocket), and Bunias orientalis (Turkish rocket). Journal of Agricultural and Food Chemistry, 54 (11), 4005-4015.
  • Ben Salah N., Casabianca H., Ben Jannet H., Chenavas S., Sanglar C., Fildier A., Bouzouita N., 2015. Phytochemical and biological investigation of two Diplotaxis species growing in Tunisia: D. virgata & D. erucoides. Molecules, 20 (10), 18128-18143.
  • Bustanji Y., Hudaib M., Tawaha K., Mohammad M., Almasri I., Hamed S., Oran S., 2011. In vitro xanthine oxidase inhibition by selected Jordanian medicinal plants. Jordan Journal of Pharmaceutical Sciences, 4 (1), 49-56.
  • Chun J.H., Kim S., Arasu M.V., Al-Dhabi N.A., Chung D.Y., Kim S.J., 2017. Combined effect of nitrogen, phosphorus and potassium fertilizers on the contents of glucosinolates in rocket salad (Eruca sativa Mill.). Saudi Journal of Biological Sciences, 24 (2), 436-443.
  • Conforti F., Perri V., Menichini F., Marrelli M., Uzunov D., Statti G.A., Menichini F., 2012. Wild Mediterranean dietary plants as inhibitors of pancreatic lipase. Phytotherapy Research, 26 (4), 600-604.
  • Falleh H., Msilini N., Oueslati S., Ksouri R., Magne C., Lachaâl M., Karray-Bouraoui N., 2013. Diplotaxis harra and Diplotaxis simplex organs: assessment of phenolics and biological activities before and after fractionation. Industrial Crops and Products, 45, 141-147.
  • Giovannucci E., Rimm E.B., Liu Y., Stampfer M.J., Willett W.C., 2003. A prospective study of cruciferous vegetables and prostate cancer. Cancer Epidemiology, Biomarkers & Prevention, 12 (12),1403–1409.
  • Giovenzana V., Beghi R., Buratti S., Civelli R., Guidetti R., 2014, Monitoring of fresh-cut Valerianella locusta Laterr. shelf life by electronic nose and VIS–NIR spectroscopy. Talanta, 120, 368-375.
  • Gözcü S., Akşit Z., 2023. Chemical composition and antibacterial activity of three volatile oils extracted from Nigella sativa L. seeds. Black Sea Journal of Health Science, 6 (4), 662-666.
  • Gözcü S., Akşit Z., Şimşek S., Kandemir A., Aydın A., Yılmaz M.A., Akşit H., 2024. Phytochemical analysis and biological evaluation of Ferulago setifolia K. Koch. Journal of the Science of Food and Agriculture, 104 (3), 1382-1390.
  • Guarrera P.M., 2003. Food medicine and minor nourishment in the folk traditions of central Italy (Marche, Abruzzo and Latium).Fitoterapia, 74 (6), 515-544.
  • Güneş G.M., 2014. Ankara etrafından toplanan bazı bitki ekstrelerinin total antioksidan kapasiteleri ve antioksidan enzim aktiviteleri üzerine etkileri, Yüksek Lisan Tezi, Ankara Universitesi, Türkiye.
  • Hichri F., Omri Hichri A., Maha M., Saad A., Flamini G., Ben Jannet, H., 2019. Chemical composition, antibacterial, antioxidant and in vitro antidiabetic activities of essential oils from Eruca vesicaria. Chemistry & Biodiversity, 16 (8), e1900183.
  • Jdir H., Kolsi R.B.A., Zouari S., Hamden K., Zouari N., Fakhfakh N., 2017. The cruciferous Diplotaxis simplex: phytochemistry analysis and its protective effect on liver and kidney toxicities, and lipid profile disorders in alloxan-induced diabetic rats. Lipids in Health and Disease, 16, 1-9.
  • Karakoç Ö.C., Tüfekçi A.R., Demirtaş İ., İpek A., 2013. Salvia tchihatcheffii ve Salvia cryptantha uçucu yağlarının ve ekstraktlarının iki önemli depo zararlısı üzerindeki insektisidal aktiviteleri. Tarım Bilimleri Araştırma Dergisi, 6 (1), 155-158.
  • Kirkegaard J.A., Sarwar M., Wong P.T.W., Mead A., Howe G., Newell M., 2000. Field studies on the biofumigation of take-all by Brassica break crops. Australian Journal of Agricultural Research, 51 (4), 445-456.
  • Leporatti M.L., Corradi L., 2001. Ethnopharmacobotanical remarks on the province of Chieti town (Abruzzo, Central Italy). Journal of Ethnopharmacology, 74 (1), 17-40.
  • Loizzo M.R., Napolitano A., Bruno M., Geraci A., Schicchi R., Leporini M., Piacente S., 2021. LC-ESI/HRMS analysis of glucosinolates, oxylipins and phenols in Italian rocket salad (Diplotaxis erucoides subsp. erucoides (L.) DC.) and evaluation of its healthy potential. Journal of the Science of Food and Agriculture, 101 (14), 5872-5879.
  • London S.J,. Smart J., Daly A.K., 2000. Lung cancer risk in relation to genetic polymorphisms of microsomal epoxide hydrolase among African–Americans and Caucasians in Los Angeles County. Lung Cancer, 28 (2), 147–155.
  • Mannozzi C., Fauster T., Haas K., Tylewicz U., Romani S., Dalla Rosa M., Jaeger H., 2018. Role of thermal and electric field effects during the pre-treatment of fruit and vegetable mash by pulsed electric fields (PEF) and ohmic heating (OH). Innovative Food Science & Emerging Technologies, 48, 131-137.
  • Martínez-Sánchez A., Llorach R., Gil M.I., Ferreres F., 2007. Identification of new flavonoid glycosides and flavonoid profiles to characterize rocket leafy salads (Eruca vesicaria and Diplotaxis tenuifolia). Journal of Agricultural and Food Chemistry, 55 (4), 1356-1363.
  • Mohammad M.K., Almasri I.M., Tawaha K., Issa A., Al-Nadaf A., Hudaib M., Al-Khatib H.S., Abu-Gharbieh E., Bustanji Y., 2010. Antioxidant, antihyperuricemic and xanthine oxidase inhibitory activities of Hyoscyamus reticulatus. Pharmaceutical Biology, 48 (12), 1376-1383.
  • Normen L., Johnsson M., Andersson H., Van Gameren Y., Dutta P., 1999. Plant sterols in vegetables and fruits commonly consumed in Sweden. European Journal of Nutrition, 38, 84–89.
  • Oke Altuntas F., Demirtas İ., Tufekci A.R., Koldas S., Behcet L., Gul F., Gecibesler İ.H., 2015. Isolation of active components from the essential oil of Satureja boissieri and determination of their antimicrobial and anti-cancer properties. 11th International Symposium on Pharmaceutical Sciences (ISOPS-11), June 09-12, 2015, Book of Abstracts, Ankara University, faculty of Pharmacy, Publication No: 112, Ankara, Turkey, 403 p.
  • Ozturk M., Sakcali S., Çelik A., 2013. A biomonitor of heavy metals on ruderal habitats in Turkey-Diplotaxis tenuifolia (L.) DC. Sains Malaysiana, 42 (10), 1371-1376.
  • Pieroni A., Quave C.L., Santoro R.F., 2004. Folk pharmaceutical knowledge in the territory of the Dolomiti Lucane, inland southern Italy. Journal of Ethnopharmacology, 95 (2-3), 373-384.
  • Pignone D., Martínez-Laborde J.B., 2010. Diplotaxis. In wild crop relatives: genomic and breeding resources: oilseeds. Kole, C., (Ed.). Berlin, Heidelberg: Springer Berlin Heidelberg, pp. 137-147.
  • Radziejewska-Kubzdela E., Olejnik A., 2016. Effects of pretreatment and modified atmosphere packaging on glucosinolate levels in coleslaw mix. LWT-Food Science and Technology, 70 (8), 192–198.
  • Ressurreiçao S., Salgueiro L., Figueirinha A., 2024. Diplotaxis genus: a promising source of compounds with nutritional and biological properties. Molecules, 29 (11), 2612.
  • Sapone A., Affatato A., Canistro D., Pozzetti L., Broccoli M., Barillari J., Iori R,, Paolini M., 2007. Cruciferous vegetables and lung cancer. Mutation Research, 635 (2-3), 146–148.
  • Sarikurkcu C., Kirkan B., Ozer M.S., Ceylan O., Atilgan N., Cengiz M., Tepe B., 2018. Chemical characterization and biological activity of Onosma gigantea extracts. Industrial Crops Products, 115, 323-329.
  • Selma M.V., Martínez-Sánchez A., Allende A., Ros M., Hernandez M.T., Gil M.I., 2010. Impact of organic soil amendments on phytochemicals and microbial quality of rocket leaves (Eruca sativa). Journal of Agricultural and Food Chemistry, 58 (14), 8331-8337.
  • Tüfekçi A.R., 2022. The insecticidal and AChE inhibitory activities of Diplotaxis tenuifolia essential oils and their determination of chemical contents. The 1st International Karatekin Science And Technology Conference, 1-3 September 2022, Çankırı, Türkiye.
  • Tüfekçi A.R., Akşit H., Şimşek S., Karakoç Ö.C., Adem Ş., Hameed Z.A., Atalar M.N., Topkara A.R., 2023. Evaluation of insecticidal and enzyme activity potentials of essential oils and extracts of Chenopodium botrys against storage products pests. Bulletin of Biotechnology, 4 (1), 7-12.
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There are 45 citations in total.

Details

Primary Language English
Subjects Plant Protection (Other)
Journal Section Research Article
Authors

Ali Rıza Tüfekçi 0000-0002-2951-3657

Early Pub Date June 13, 2025
Publication Date June 30, 2025
Submission Date December 11, 2024
Acceptance Date February 25, 2025
Published in Issue Year 2025 Volume: 65 Issue: 2

Cite

APA Tüfekçi, A. R. (2025). Comparative determination of enzyme, insecticide, antibacterial activities of different extracts of Diplotaxis tenuifolia and chemical components analysis. Plant Protection Bulletin, 65(2), 21-31. https://doi.org/10.16955/bitkorb.1599639
AMA Tüfekçi AR. Comparative determination of enzyme, insecticide, antibacterial activities of different extracts of Diplotaxis tenuifolia and chemical components analysis. Plant Protection Bulletin. June 2025;65(2):21-31. doi:10.16955/bitkorb.1599639
Chicago Tüfekçi, Ali Rıza. “Comparative Determination of Enzyme, Insecticide, Antibacterial Activities of Different Extracts of Diplotaxis Tenuifolia and Chemical Components Analysis”. Plant Protection Bulletin 65, no. 2 (June 2025): 21-31. https://doi.org/10.16955/bitkorb.1599639.
EndNote Tüfekçi AR (June 1, 2025) Comparative determination of enzyme, insecticide, antibacterial activities of different extracts of Diplotaxis tenuifolia and chemical components analysis. Plant Protection Bulletin 65 2 21–31.
IEEE A. R. Tüfekçi, “Comparative determination of enzyme, insecticide, antibacterial activities of different extracts of Diplotaxis tenuifolia and chemical components analysis”, Plant Protection Bulletin, vol. 65, no. 2, pp. 21–31, 2025, doi: 10.16955/bitkorb.1599639.
ISNAD Tüfekçi, Ali Rıza. “Comparative Determination of Enzyme, Insecticide, Antibacterial Activities of Different Extracts of Diplotaxis Tenuifolia and Chemical Components Analysis”. Plant Protection Bulletin 65/2 (June 2025), 21-31. https://doi.org/10.16955/bitkorb.1599639.
JAMA Tüfekçi AR. Comparative determination of enzyme, insecticide, antibacterial activities of different extracts of Diplotaxis tenuifolia and chemical components analysis. Plant Protection Bulletin. 2025;65:21–31.
MLA Tüfekçi, Ali Rıza. “Comparative Determination of Enzyme, Insecticide, Antibacterial Activities of Different Extracts of Diplotaxis Tenuifolia and Chemical Components Analysis”. Plant Protection Bulletin, vol. 65, no. 2, 2025, pp. 21-31, doi:10.16955/bitkorb.1599639.
Vancouver Tüfekçi AR. Comparative determination of enzyme, insecticide, antibacterial activities of different extracts of Diplotaxis tenuifolia and chemical components analysis. Plant Protection Bulletin. 2025;65(2):21-3.

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