Araştırma Makalesi
BibTex RIS Kaynak Göster

The Effect of Viburnum opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea mays L.) Under Salt Stress Conditions

Yıl 2024, Cilt: 12 Sayı: 2, 126 - 133, 30.12.2024
https://doi.org/10.18586/msufbd.1574406

Öz

Guelder rose (Viburnum opulus L.) is recognized as a valuable medicinal and nutritional plant. Traditionally, Viburnum opulus (VO) has been used to treat various health conditions, including coughs, colds, tuberculosis, rheumatic pain, ulcers, gastrointestinal disorders, and renal issues. The beneficial health effects of Viburnum opulus are largely attributed to its antioxidant properties, which have been demonstrated in both in vitro and in vivo studies. However, no research has investigated its specific effects on seed germination, yet. Salt stress is a significant environmental factor that negatively affects plant growth and development. In this study, the effects of Viburnum opulus fruit extract (VO FE) at four different concentrations (125, 250, 500, and 1000 µg/ml) on maize (Zea mays L.) seed germination and seedling growth under 300 mM NaCl (severe salt stress) were investigated. Germination percentage (GP), germination rate index (GRI), germination energy (GE), mean germination time (MGT), seed vigor (SV), shoot weight (SW), shoot length (SL), root weight (RW), root length (RL), and hypocotyl length (HL) were measured to evaluate the effects of VO FE on maize performance. The results revealed that under salt stress conditions, treatments of 500 and 1000 VO FE µg/ml had an adverse effect on germination and growth, while 125 µg/ml VO FE treatment showed no statistically significant improvement compared to salt stress alone. However, the 250 µg/ml VO FE treatment significantly improved germination and growth parameters restricted by salt stress. The 250 µg/ml VO FE treatment increased GP, GRI, GE, and SV by 19.6%, 31.27%, 15.28%, and 32.8%, respectively, while MGT decreased by 7.24% under salt stress. Regarding growth parameters, SFW and SL were increased by 5.69% and 87.5%, respectively, and RFW and RL were increased by 15.5% and 37.4%, respectively. Additionally, HL increased by 18.46% with the treatment of 250 µg/ml VO FE. Based on these findings, this study demonstrates that pretreatment with 250 µg/ml Viburnum opulus fruit extract significantly enhanced seed germination and plant growth in maize and improved tolerance to salt stress, making it a promising approach for mitigating the effects of salinity on crop performance.

Kaynakça

  • [1] Bliss R., Platt-Aloia K., Thomson W. Effects of salt on cell membranes of germinating seeds, California Agriculture. 38 24-25, 1984.
  • [2] Naseer S., Nisar A., Ashraf M. Effect of salt stress on germination and seedling growth of barley (Hordeum vulgare L.), Pakistan Journal of Biological Sciences. 4 359-360, 2001.
  • [3] Demir I., Okcu G. Aerated hydration treatment for improved germination and seedling growth in aubergine (Solanum melongena) and pepper (Capsicum annum), Annals of Applied Biology. 144 121-123, 2004.
  • [4] Machado R.M.A., Serralheiro R.P. Soil salinity: effect on vegetable crop growth. Management practices to prevent and mitigate soil salinization, Horticulturae. 3 30, 2017.
  • [5] Liu J., Li L., Yuan F., Chen M. Exogenous salicylic acid improves the germination of Limonium bicolor seeds under salt stress, Plant Signaling & Behavior. 14 e1644595, 2019.
  • [6] Chen L., Lu B., Liu L., Duan W., Jiang D., Li J., Bai Z. Melatonin promotes seed germination under salt stress by regulating ABA and GA3 in cotton (Gossypium hirsutum L.), Plant Physiology and Biochemistry. 162 506-516, 2021.
  • [7] Alonso-Ramírez A., Rodríguez D., Reyes D., Jiménez J.A., Nicolás G., López-Climent M., Gómez-Cadenas A., Nicolás C. Evidence for a role of gibberellins in salicylic acid-modulated early plant responses to abiotic stress in Arabidopsis seeds, Plant Physiology. 150 1335-1344, 2009.
  • [8] Farhangi-Abriz S., Ghassemi-Golezani K. How can salicylic acid and jasmonic acid mitigate salt toxicity in soybean plants?, Ecotoxicology and environmental safety. 147 1010-1016, 2018.
  • [9] Ebrahimi M., Ehsanzadeh P., Vafadar F. Exogenously applied melatonin and calcium alleviate salt injuries to growth, physiological, and biochemical attributes of Borago officinalis, Journal of Plant Growth Regulation. 42 6853-6869, 2023.
  • [10] Kim S.G., Park C.M. Gibberellic acid-mediated salt signaling in seed germination, Plant Signal Behav. 3 877-9, 2008.
  • [11] Qiu Z., Guo J., Zhu A., Zhang L., Zhang M. Exogenous jasmonic acid can enhance tolerance of wheat seedlings to salt stress, Ecotoxicology and environmental safety. 104 202-208, 2014.
  • [12] Ali Q., Daud M., Haider M.Z., Ali S., Rizwan M., Aslam N., Noman A., Iqbal N., Shahzad F., Deeba F., Ali I., Zhu S.J. Seed priming by sodium nitroprusside improves salt tolerance in wheat (Triticum aestivum L.) by enhancing physiological and biochemical parameters, Plant physiology and biochemistry. 119 50-58, 2017.
  • [13] Rop O., Reznicek V., Valsikova M., Jurikova T., Mlcek J., Kramarova D. Antioxidant properties of European cranberrybush fruit (Viburnum opulus var. edule), Molecules. 15 4467-4477, 2010.
  • [14] Konarska A., Domaciuk M. Differences in the fruit structure and the location and content of bioactive substances in Viburnum opulus and Viburnum lantana fruits, Protoplasma. 255 25-41, 2018.
  • [15] Velioglu, Y.S, Ekici L., Poyrazoglu E.S. Phenolic composition of European cranberrybush (Viburnum opulus L.) berries and astringency removal of its commercial juice, International journal of food science & technology. 41 1011-1015, 2006.
  • [16] Akbulut M., Calisir S., Marakoglu T., Coklar H. Chemical and technological properties of European cranberrybush (Viburnum opulus L.) fruits, Asian Journal of Chemistry. 20 1875, 2008.
  • [17] Soylak A., Elci L., Saracoglu S., Divrikli U. Chemical analysis of fruit juice of European cranberrybush (Viburnum opulus) from Kayseri-Turkey. Asian Journal of Chemistry. 14 135-138, 2002.
  • [18] Al Ö., Ülger H., Eetekin T., Nisari M., Susar H., Ceylan D., Karatoprak G.Ş. The effect of gilaburu (Viburnum opulus) juice on Ehrlich ascites tumor (EAT) cell culture, In Proceedings. 1 1051, 2017.
  • [19] Ilhan M., Ergene B., Süntar I., Özbilgin S., Çitolu G.S., Demirel M.A., Keles H., Altun L., Akkol E.K. Preclinical evaluation of antiurolithiatic activity of Viburnum opulus L. on sodium oxalate‐induced urolithiasis rat model, Evidence‐Based Complementary and Alternative Medicine. 1 578103, 2014.
  • [20] Erdem G., Kesik V., Honca T., Ozcan A., Uguz S., Akgul E.O., Aykutlug O., Alp B.F., Korkmazer N., Saldir M. Antinephrolithiatic activity of Persea americana (avocado) and Viburnum opulus (guelder rose) against ethylene glycol-induced nephrolithiasis in rats, African Journal of Traditional, Complementary and Alternative Medicines. 13 110-119, 2016.
  • [21] Altun M., Saltan Çitoğlu G., Sever Yılmaz B., Özbek H. Antinociceptive and anti-inflammatory activities of Viburnum opulus, Pharm Biol. 47 653–8, 2009.
  • [22] Bujor A., Miron A., Luca S.V., Skalicka-Wozniak K., Silion M., Ancuceanu R., Dinu M., Girard C., Demougeot C., Totoson P. Metabolite profiling, arginase inhibition and vasorelaxant activity of Cornus mas, Sorbus aucuparia and Viburnum opulus fruit extracts, Food and Chemical Toxicology. 133 1-2, 2019.
  • [23] Sagdic O., Aksoy A., Ozkan, G. Evaluation of the antibacterial and antioxidant potentials of cranberry (gilaburu, Viburnum opulus L.) fruit extract, Acta Alimentaria. 35 487-492, 2006.
  • [24] Zaklos-Szyda M., Majewska I., Redzynia M., Koziolkiewicz M. Antidiabetic effect of polyphenolic extracts from selected edible plants as α-amylase, α-glucosidase and PTP1B inhibitors, and β pancreatic cells cytoprotective agents-a comparative study, Current topics in medicinal chemistry. 15 2431-2444, 2015.
  • [25] Podsędek A., Zakłos-Szyda M., Polka D., Sosnowska D. Effects of Viburnum opulus fruit extracts on adipogenesis of 3T3-L1 cells and lipase activity, Journal of Functional Foods. 73 104111, 2020.
  • [26] Kalinkevich K., Karandashov V.E., Ptitsyn L.R. In vitro study of the anti-inflammatory activity of some medicinal and edible plants growing in Russia, Russian Journal of Bioorganic Chemistry. 40 752-761, 2014.
  • [27] Chojnacka K., Owczarek K., Fichna J., Sosnowska D., Lewandowska U. Wpływ ekstraktów zlisci kaliny koralowej (Viburnum opulus L.) na wzrost ludzkich komórek jelita, Post Fitoter. 20 10-17, 2019.
  • [28] Perova I.B., Zhogova A.A., Cherkashin A.V., Éller K.I., Ramenskaya G.V., Samylina I.A. Biologically active substances from European guelder berry fruits, Pharmaceutical Chemistry Journal. 48 332-339, 2014.
  • [29] Česonienė L., Daubaras R., Venclovienė J., Viškelis P. Biochemical and agro-biological diversity of Viburnum opulus genotypes, Open Life Sciences. 5 864-871, 2010.
  • [30] Çemtekin B., Kilinç E., Karabacak L., Dağtekin T. An evaluation of guelder rose (Viburnum opulus L.) and hawthorn (Crataegus monogyna) concentrates as alternative antioxidant sources to BHT and nitrite in poultry meat model system. Scientific Papers, Series D. Animal Science. 62 2019.
  • [31] Inceer H., Cuce M., Imamoglu K.V., Ergin T., Ucler A.O. In vitro propagation and cytogenetic stability of Tripleurospermum insularum (Asteraceae)–a critically endangered insular endemic species from Turkey, Plant Biosystems-An International Journal Dealing with all Aspects of Plant Biology. 156 1213-1221, 2022.
  • [32] Ranal M.A., Santana D.G.D. How and why to measure the germination process?, Brazilian Journal of Botany. 29 1-11, 2006.
  • [33] Esechie H.A. Interaction of Salinity and Temperature on the Germination of Sorghum, Journal of Agronomy and Crop Science. 172 194-199, 1994.
  • [34] ISTA (2004): International rules for seed testing. Edition 2004. The International Seed Testing Association. Bassersdorf, Switzerland.
  • [35] Mauromicale G., Licandro P. Salinity and temperature effects on germination, emergence and seedling growth of globe artichoke, Agronomie. 22 443-450, 2002.
  • [36] Kharb R.P.S., Lather B.P.S., Deswal D.P. Prediction of field emergence through heritability and genetic advance of vigour parameters, Seed Sci. Technol. 22 461-466, 1994.
  • [37] Finch‐Savage W.E., Leubner‐Metzger G. Seed dormancy and the control of germination, New phytologist. 171 501-523, 2006.
  • [38] Khaeim H., Kende Z., Jolánkai M., Kovács G., Gyuricza C., Tarnawa Á. Impact of Temperature and Water on Seed Germination and Seedling Growth of Maize (Zea mays L.), Agronomy. 12 397, 2022.
  • [39] Lei X., Wan C., Tao J., Leng J., Wu Y., Wang J., Wang P., Yang Q., Feng B., Gao J. Effects of soaking seeds with MT and EBR on germination and seedling growth in buckwheat under salt stress, Acta Agronomica Sinica. 1210-1221, 2022.
  • [40] Fuller M.P., Hamza J.H., Rihan, H.Z., Al-Issawi M. Germination of primed seed under NaCl stress in wheat, International Scholarly Research Notices. 167804, 2012.
  • [41] Rady M., Hemida K. Sequenced application of ascorbate-proline-glutathione improves salt tolerance in maize seedlings, Ecotoxicology and environmental safety. 133 252-9, 2016.
  • [42] Hossain M.M., Ferdush J., Akter K., Talukder F.U., Asaduzzaman M., Imran S. Citric acid and hydro-priming and exogenous application alleviate salt-ınhibited seed germination and seedling growth of chilli (Capsicum annuum L.), Journal of Agriculture and Crops. 9 495-502, 2023.
  • [43] Hua-long L., Hanjing S., Jingguo W., Yang L., Detang Z., Hongwei Z. Effect of seed soaking with exogenous proline on seed germination of rice under salt stress, Journal of Northeast Agricultural University. 21 1-6, 2014.
  • [44] Soltani E., Ghaderi-Far F., Baskin C.C., Baskin J.M. Problems with using mean germination time to calculate rate of seed germination, Australian Journal of Botany. 63 631-635, 2015.
  • [45] Matthews S., Khajeh Hosseini M. Mean germination time as an indicator of emergence performance in soil of seed lots of maize (Zea mays), Seed Science and Technology. 34 339-347, 2006.
  • [46] Reed R.C., Bradford K.J., Khanday I. Seed germination and vigor: ensuring crop sustainability in a changing climate, Heredity. 128 450-459, 2022.
  • [47] Sheidaei S., Abad H., Hamidi A., Mohammadi G., Moghaddam A. Relationship between laboratory indices of soybean seed vigor with field emergence and yield, International Journal of Biosciences. 5 281-287, 2014.
  • [48] Aghaei K., Ehsanpour A., Shah A., Komatsu S. Proteome analysis of soybean hypocotyl and root under salt stress, Amino Acids. 36 91-98, 2009.
  • [49] Khodashenas M., Nasibi F., Gangooei F., Rahneshan Z. Physiological and antioxidative responses of a halophytic grass Leptochloa fusca L. Kunth (Kallar grass) to salinity, Journal of Plant Process and Function. 8 71-78, 2020.
  • [50] Sheyhakinia S., Bamary Z., Einali A., Valizadeh J. The induction of salt stress tolerance by jasmonic acid treatment in roselle (Hibiscus sabdariffa L.) seedlings through enhancing antioxidant enzymes activity and metabolic changes, Biologia. 75 681-692, 2020.

Tuz stresi altında Mısır (Zea mays L.) Tohumlarına Viburnum opulus L. Meyve Ekstraktının Ön Uygulamasının Tohum Çimlenmesi ve Fide Büyümesi Üzerine Etkisi

Yıl 2024, Cilt: 12 Sayı: 2, 126 - 133, 30.12.2024
https://doi.org/10.18586/msufbd.1574406

Öz

Gilaburu (Viburnum opulus L.), değerli bir tıbbi ve besleyici bitki olarak bilinmektedir. Geleneksel olarak Viburnum opulus (VO), öksürük, soğuk algınlığı, verem, romatizmal ağrı, ülserler, gastrointestinal ve böbrek sorunları gibi çeşitli sağlık durumlarının tedavisinde kullanılmıştır. Viburnum opulus' un sağlık üzerindeki olumlu etkileri büyük ölçüde antioksidan aktivitesine atfedilmekte olup, bu etki hem in vitro hem de in vivo çalışmalarda kanıtlanmıştır. Ancak, VO' nun tohum çimlenmesi üzerindeki spesifik etkilerini araştıran bir çalışma henüz yapılmamıştır. Tuz stresi, bitki büyümesi ve gelişimi üzerinde olumsuz etkisi olan önemli bir çevresel faktördür. Bu çalışmada, Viburnum opulus meyve ekstraktının (VO ME) dört farklı konsantrasyonunun (125, 250, 500 ve 1000 µg/ml) 300 mM NaCl (şiddetli koşullar) altındaki mısır tohumlarının çimlenmesi ve fide büyümesi üzerindeki etkileri araştırılmıştır. Viburnum opulus meyve ekstraktının mısır (Zea mays L.) üzerindeki etkilerini belirlemek amacıyla çimlenme yüzdesi (ÇY), çimlenme hızı indeksi (ÇHİ), çimlenme enerjisi (ÇE), ortalama çimlenme süresi (OÇS), tohum canlılığı (TC) ile sürgün ağırlığı (SA), sürgün uzunluğu (SU), kök ağırlığı (KA), kök uzunluğu (KU) ve hipokotil uzunluğu (HU) ölçülmüştür. Sonuçlar, tuz stresi koşullarında, 500 ve 1000 µg/ml VO ME uygulamalarının çimlenme ve büyüme üzerine daha fazla olumsuz bir etkiye sahip olduğu, 125 µg/ml VO FE uygulamasının ise tuz koşullarına göre istatistiksel olarak anlamlı bir fark yaratmadığı belirlendi. Ancak, 250 µg/ml VO ME uygulaması, tuz stresi koşuluyla sınırlanan çimlenme büyüme koşullarını iyileştirmiştir. Örneğin, tuz stresi koşulu altında, 250 µg/ml VO ME konsantrasyonu, ÇY, ÇHİ, ÇE ve VI değerlerini sırasıyla %19.6, %31.27, %15.28 ve %32.8 artırırken, OÇS değerini %7.24 azaltmıştır. Büyüme koşullarından, sürgün taze ağırlığı ve sürgün boyu uzunluğu 250 µg/ml VO ME ile sırasıyla %5.69 ve %87.5 oranında, kök taze ağırlığı ve kök uzunluğu ise %15.5 ile %37.4 oranında arttırmıştır. Hipokotil uzunluğu ise 250 µg/ml VO ME uygulamasıyla birlikte %18.46 oranında artmıştır. Bulgular ışığında, bu çalışma farklı Vibirnum opulus meyve ekstreleri arasından, mısır tohumlarına 250 µg/ml VO ME ile yapılan ön muamelenin tohum çimlenmesini ve bitki büyümesini önemli derecede teşvik ettiği ve tuz stresi cevapta tolerans sağlayabileceğini göstermiştir.

Kaynakça

  • [1] Bliss R., Platt-Aloia K., Thomson W. Effects of salt on cell membranes of germinating seeds, California Agriculture. 38 24-25, 1984.
  • [2] Naseer S., Nisar A., Ashraf M. Effect of salt stress on germination and seedling growth of barley (Hordeum vulgare L.), Pakistan Journal of Biological Sciences. 4 359-360, 2001.
  • [3] Demir I., Okcu G. Aerated hydration treatment for improved germination and seedling growth in aubergine (Solanum melongena) and pepper (Capsicum annum), Annals of Applied Biology. 144 121-123, 2004.
  • [4] Machado R.M.A., Serralheiro R.P. Soil salinity: effect on vegetable crop growth. Management practices to prevent and mitigate soil salinization, Horticulturae. 3 30, 2017.
  • [5] Liu J., Li L., Yuan F., Chen M. Exogenous salicylic acid improves the germination of Limonium bicolor seeds under salt stress, Plant Signaling & Behavior. 14 e1644595, 2019.
  • [6] Chen L., Lu B., Liu L., Duan W., Jiang D., Li J., Bai Z. Melatonin promotes seed germination under salt stress by regulating ABA and GA3 in cotton (Gossypium hirsutum L.), Plant Physiology and Biochemistry. 162 506-516, 2021.
  • [7] Alonso-Ramírez A., Rodríguez D., Reyes D., Jiménez J.A., Nicolás G., López-Climent M., Gómez-Cadenas A., Nicolás C. Evidence for a role of gibberellins in salicylic acid-modulated early plant responses to abiotic stress in Arabidopsis seeds, Plant Physiology. 150 1335-1344, 2009.
  • [8] Farhangi-Abriz S., Ghassemi-Golezani K. How can salicylic acid and jasmonic acid mitigate salt toxicity in soybean plants?, Ecotoxicology and environmental safety. 147 1010-1016, 2018.
  • [9] Ebrahimi M., Ehsanzadeh P., Vafadar F. Exogenously applied melatonin and calcium alleviate salt injuries to growth, physiological, and biochemical attributes of Borago officinalis, Journal of Plant Growth Regulation. 42 6853-6869, 2023.
  • [10] Kim S.G., Park C.M. Gibberellic acid-mediated salt signaling in seed germination, Plant Signal Behav. 3 877-9, 2008.
  • [11] Qiu Z., Guo J., Zhu A., Zhang L., Zhang M. Exogenous jasmonic acid can enhance tolerance of wheat seedlings to salt stress, Ecotoxicology and environmental safety. 104 202-208, 2014.
  • [12] Ali Q., Daud M., Haider M.Z., Ali S., Rizwan M., Aslam N., Noman A., Iqbal N., Shahzad F., Deeba F., Ali I., Zhu S.J. Seed priming by sodium nitroprusside improves salt tolerance in wheat (Triticum aestivum L.) by enhancing physiological and biochemical parameters, Plant physiology and biochemistry. 119 50-58, 2017.
  • [13] Rop O., Reznicek V., Valsikova M., Jurikova T., Mlcek J., Kramarova D. Antioxidant properties of European cranberrybush fruit (Viburnum opulus var. edule), Molecules. 15 4467-4477, 2010.
  • [14] Konarska A., Domaciuk M. Differences in the fruit structure and the location and content of bioactive substances in Viburnum opulus and Viburnum lantana fruits, Protoplasma. 255 25-41, 2018.
  • [15] Velioglu, Y.S, Ekici L., Poyrazoglu E.S. Phenolic composition of European cranberrybush (Viburnum opulus L.) berries and astringency removal of its commercial juice, International journal of food science & technology. 41 1011-1015, 2006.
  • [16] Akbulut M., Calisir S., Marakoglu T., Coklar H. Chemical and technological properties of European cranberrybush (Viburnum opulus L.) fruits, Asian Journal of Chemistry. 20 1875, 2008.
  • [17] Soylak A., Elci L., Saracoglu S., Divrikli U. Chemical analysis of fruit juice of European cranberrybush (Viburnum opulus) from Kayseri-Turkey. Asian Journal of Chemistry. 14 135-138, 2002.
  • [18] Al Ö., Ülger H., Eetekin T., Nisari M., Susar H., Ceylan D., Karatoprak G.Ş. The effect of gilaburu (Viburnum opulus) juice on Ehrlich ascites tumor (EAT) cell culture, In Proceedings. 1 1051, 2017.
  • [19] Ilhan M., Ergene B., Süntar I., Özbilgin S., Çitolu G.S., Demirel M.A., Keles H., Altun L., Akkol E.K. Preclinical evaluation of antiurolithiatic activity of Viburnum opulus L. on sodium oxalate‐induced urolithiasis rat model, Evidence‐Based Complementary and Alternative Medicine. 1 578103, 2014.
  • [20] Erdem G., Kesik V., Honca T., Ozcan A., Uguz S., Akgul E.O., Aykutlug O., Alp B.F., Korkmazer N., Saldir M. Antinephrolithiatic activity of Persea americana (avocado) and Viburnum opulus (guelder rose) against ethylene glycol-induced nephrolithiasis in rats, African Journal of Traditional, Complementary and Alternative Medicines. 13 110-119, 2016.
  • [21] Altun M., Saltan Çitoğlu G., Sever Yılmaz B., Özbek H. Antinociceptive and anti-inflammatory activities of Viburnum opulus, Pharm Biol. 47 653–8, 2009.
  • [22] Bujor A., Miron A., Luca S.V., Skalicka-Wozniak K., Silion M., Ancuceanu R., Dinu M., Girard C., Demougeot C., Totoson P. Metabolite profiling, arginase inhibition and vasorelaxant activity of Cornus mas, Sorbus aucuparia and Viburnum opulus fruit extracts, Food and Chemical Toxicology. 133 1-2, 2019.
  • [23] Sagdic O., Aksoy A., Ozkan, G. Evaluation of the antibacterial and antioxidant potentials of cranberry (gilaburu, Viburnum opulus L.) fruit extract, Acta Alimentaria. 35 487-492, 2006.
  • [24] Zaklos-Szyda M., Majewska I., Redzynia M., Koziolkiewicz M. Antidiabetic effect of polyphenolic extracts from selected edible plants as α-amylase, α-glucosidase and PTP1B inhibitors, and β pancreatic cells cytoprotective agents-a comparative study, Current topics in medicinal chemistry. 15 2431-2444, 2015.
  • [25] Podsędek A., Zakłos-Szyda M., Polka D., Sosnowska D. Effects of Viburnum opulus fruit extracts on adipogenesis of 3T3-L1 cells and lipase activity, Journal of Functional Foods. 73 104111, 2020.
  • [26] Kalinkevich K., Karandashov V.E., Ptitsyn L.R. In vitro study of the anti-inflammatory activity of some medicinal and edible plants growing in Russia, Russian Journal of Bioorganic Chemistry. 40 752-761, 2014.
  • [27] Chojnacka K., Owczarek K., Fichna J., Sosnowska D., Lewandowska U. Wpływ ekstraktów zlisci kaliny koralowej (Viburnum opulus L.) na wzrost ludzkich komórek jelita, Post Fitoter. 20 10-17, 2019.
  • [28] Perova I.B., Zhogova A.A., Cherkashin A.V., Éller K.I., Ramenskaya G.V., Samylina I.A. Biologically active substances from European guelder berry fruits, Pharmaceutical Chemistry Journal. 48 332-339, 2014.
  • [29] Česonienė L., Daubaras R., Venclovienė J., Viškelis P. Biochemical and agro-biological diversity of Viburnum opulus genotypes, Open Life Sciences. 5 864-871, 2010.
  • [30] Çemtekin B., Kilinç E., Karabacak L., Dağtekin T. An evaluation of guelder rose (Viburnum opulus L.) and hawthorn (Crataegus monogyna) concentrates as alternative antioxidant sources to BHT and nitrite in poultry meat model system. Scientific Papers, Series D. Animal Science. 62 2019.
  • [31] Inceer H., Cuce M., Imamoglu K.V., Ergin T., Ucler A.O. In vitro propagation and cytogenetic stability of Tripleurospermum insularum (Asteraceae)–a critically endangered insular endemic species from Turkey, Plant Biosystems-An International Journal Dealing with all Aspects of Plant Biology. 156 1213-1221, 2022.
  • [32] Ranal M.A., Santana D.G.D. How and why to measure the germination process?, Brazilian Journal of Botany. 29 1-11, 2006.
  • [33] Esechie H.A. Interaction of Salinity and Temperature on the Germination of Sorghum, Journal of Agronomy and Crop Science. 172 194-199, 1994.
  • [34] ISTA (2004): International rules for seed testing. Edition 2004. The International Seed Testing Association. Bassersdorf, Switzerland.
  • [35] Mauromicale G., Licandro P. Salinity and temperature effects on germination, emergence and seedling growth of globe artichoke, Agronomie. 22 443-450, 2002.
  • [36] Kharb R.P.S., Lather B.P.S., Deswal D.P. Prediction of field emergence through heritability and genetic advance of vigour parameters, Seed Sci. Technol. 22 461-466, 1994.
  • [37] Finch‐Savage W.E., Leubner‐Metzger G. Seed dormancy and the control of germination, New phytologist. 171 501-523, 2006.
  • [38] Khaeim H., Kende Z., Jolánkai M., Kovács G., Gyuricza C., Tarnawa Á. Impact of Temperature and Water on Seed Germination and Seedling Growth of Maize (Zea mays L.), Agronomy. 12 397, 2022.
  • [39] Lei X., Wan C., Tao J., Leng J., Wu Y., Wang J., Wang P., Yang Q., Feng B., Gao J. Effects of soaking seeds with MT and EBR on germination and seedling growth in buckwheat under salt stress, Acta Agronomica Sinica. 1210-1221, 2022.
  • [40] Fuller M.P., Hamza J.H., Rihan, H.Z., Al-Issawi M. Germination of primed seed under NaCl stress in wheat, International Scholarly Research Notices. 167804, 2012.
  • [41] Rady M., Hemida K. Sequenced application of ascorbate-proline-glutathione improves salt tolerance in maize seedlings, Ecotoxicology and environmental safety. 133 252-9, 2016.
  • [42] Hossain M.M., Ferdush J., Akter K., Talukder F.U., Asaduzzaman M., Imran S. Citric acid and hydro-priming and exogenous application alleviate salt-ınhibited seed germination and seedling growth of chilli (Capsicum annuum L.), Journal of Agriculture and Crops. 9 495-502, 2023.
  • [43] Hua-long L., Hanjing S., Jingguo W., Yang L., Detang Z., Hongwei Z. Effect of seed soaking with exogenous proline on seed germination of rice under salt stress, Journal of Northeast Agricultural University. 21 1-6, 2014.
  • [44] Soltani E., Ghaderi-Far F., Baskin C.C., Baskin J.M. Problems with using mean germination time to calculate rate of seed germination, Australian Journal of Botany. 63 631-635, 2015.
  • [45] Matthews S., Khajeh Hosseini M. Mean germination time as an indicator of emergence performance in soil of seed lots of maize (Zea mays), Seed Science and Technology. 34 339-347, 2006.
  • [46] Reed R.C., Bradford K.J., Khanday I. Seed germination and vigor: ensuring crop sustainability in a changing climate, Heredity. 128 450-459, 2022.
  • [47] Sheidaei S., Abad H., Hamidi A., Mohammadi G., Moghaddam A. Relationship between laboratory indices of soybean seed vigor with field emergence and yield, International Journal of Biosciences. 5 281-287, 2014.
  • [48] Aghaei K., Ehsanpour A., Shah A., Komatsu S. Proteome analysis of soybean hypocotyl and root under salt stress, Amino Acids. 36 91-98, 2009.
  • [49] Khodashenas M., Nasibi F., Gangooei F., Rahneshan Z. Physiological and antioxidative responses of a halophytic grass Leptochloa fusca L. Kunth (Kallar grass) to salinity, Journal of Plant Process and Function. 8 71-78, 2020.
  • [50] Sheyhakinia S., Bamary Z., Einali A., Valizadeh J. The induction of salt stress tolerance by jasmonic acid treatment in roselle (Hibiscus sabdariffa L.) seedlings through enhancing antioxidant enzymes activity and metabolic changes, Biologia. 75 681-692, 2020.
Toplam 50 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Bitki Fizyolojisi
Bölüm Araştırma Makalesi
Yazarlar

Cansu Altuntaş 0000-0002-1363-6142

Erken Görünüm Tarihi 21 Aralık 2024
Yayımlanma Tarihi 30 Aralık 2024
Gönderilme Tarihi 27 Ekim 2024
Kabul Tarihi 16 Aralık 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 12 Sayı: 2

Kaynak Göster

APA Altuntaş, C. (2024). The Effect of Viburnum opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea mays L.) Under Salt Stress Conditions. Mus Alparslan University Journal of Science, 12(2), 126-133. https://doi.org/10.18586/msufbd.1574406
AMA Altuntaş C. The Effect of Viburnum opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea mays L.) Under Salt Stress Conditions. MAUN Fen Bil. Dergi. Aralık 2024;12(2):126-133. doi:10.18586/msufbd.1574406
Chicago Altuntaş, Cansu. “The Effect of Viburnum Opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea Mays L.) Under Salt Stress Conditions”. Mus Alparslan University Journal of Science 12, sy. 2 (Aralık 2024): 126-33. https://doi.org/10.18586/msufbd.1574406.
EndNote Altuntaş C (01 Aralık 2024) The Effect of Viburnum opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea mays L.) Under Salt Stress Conditions. Mus Alparslan University Journal of Science 12 2 126–133.
IEEE C. Altuntaş, “The Effect of Viburnum opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea mays L.) Under Salt Stress Conditions”, MAUN Fen Bil. Dergi., c. 12, sy. 2, ss. 126–133, 2024, doi: 10.18586/msufbd.1574406.
ISNAD Altuntaş, Cansu. “The Effect of Viburnum Opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea Mays L.) Under Salt Stress Conditions”. Mus Alparslan University Journal of Science 12/2 (Aralık 2024), 126-133. https://doi.org/10.18586/msufbd.1574406.
JAMA Altuntaş C. The Effect of Viburnum opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea mays L.) Under Salt Stress Conditions. MAUN Fen Bil. Dergi. 2024;12:126–133.
MLA Altuntaş, Cansu. “The Effect of Viburnum Opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea Mays L.) Under Salt Stress Conditions”. Mus Alparslan University Journal of Science, c. 12, sy. 2, 2024, ss. 126-33, doi:10.18586/msufbd.1574406.
Vancouver Altuntaş C. The Effect of Viburnum opulus L. Fruit Extract on Seed Germination and Seedling Growth of Maize (Zea mays L.) Under Salt Stress Conditions. MAUN Fen Bil. Dergi. 2024;12(2):126-33.