Journal of Vegetables Sciences

Journal of Vegetables Sciences

Improvement of Seed Germination and Growth Indices of Satureja khuzistanica Jamzad Seedlings under the Influence of Different Light Spectrums

Document Type : Original Article

Authors
1 Department of Agriculture, Medicinal Plants and Drugs Research Institute, Shahid Beheshti University, Tehran, Iran
2 Department Horticultural sciences, Ilam University, Ilam, Iran
Abstract
1. Introduction: Satureja khuzistanica is a native plant of Iran, which is used as a vegetable, spice, decoction, painkiller and disinfectant in traditional medicine, food and pharmaceutical industries, and has antifungal, antimicrobial and antibacterial properties. It is pain-relieving, anti-diabetic, antioxidant, anti-inflammatory, reduces blood fat and triglycerides. One of the problems of mass production of plants through seeds and seed production industries is the low germination percentage of wild plant seeds due to the lack of ecological compatibility with domestic environment conditions. The quality of light is one of the most important environmental factors for the growth and development of plants, so the use of different light spectrums is one of the stimulating methods to increase the indicators of seed germination of different plants and their seedling growth.
2. Materials and Methods: In order to investigate the effects of light quality on the germination indices and biochemical characteristics of S. khuzistanica, an experiment was conducted in the form of a completely randomized design in three replications in 2022, in the Medicinal Plants and Drugs Research Institute of Shahid Beheshti University, Tehran. The experimental treatments included the combination of light at four levels (red light, 30% blue + 70% red, blue, fluorescent). S. khuzistanica seeds were obtained from the collection of medicinal plants of Shahid Beheshti University's Medicinal Plants and Drugs Research Institute and were washed for 30 seconds with a five percent sodium hypochlorite solution and then washed four times with sterile distilled water and 40 seeds were selected in each petri dish and in four Rows are arranged randomly. Germination indices (germination percentage and speed), growth indices (shoot and root length, shoot and root dry weight) and biochemical characteristics (chlorophyll a, chlorophyll b, carotenoid, total phenol, peroxidase, and super oxidase dismutase and catalase enzyme activity) were evaluated.
3. Results and Discussion: The highest percentage of germination (84.33%) and germination speed (45.87%) were achieved with the use of red light. Also, the highest length of radicle (3.53 cm), the highest dry weight of radicle (0.51 mg/seedling) and the dry weight of plumule (0.45 mg/seedling) in the treatment of 30% blue + 70% red and the highest length of plumule (1.68 cm) were obtained in the red treatment, respectively. The highest chlorophyll a (0.58 mg.g-1 FW) and chlorophyll b (0.49 mg.g-1 FW) were observed in red light treatment and the highest carotenoid content (0.48 mg.g-1 FW) was observed in blue light treatment. With the use of blue light, the activity of catalase and peroxidase enzymes increased and the activity of superoxide dismutase decreased.
4. Conclusion: The results of this research showed that the germination indices, growth and biochemical characteristics of S. khuzistanica seedlings were affected by different light spectrums. In general, the results indicated the possibility of improving the germination indices, growth and biochemical characteristics of S. khuzistanica seedlings using a combination of blue and red lights compared to fluorescent light.
Keywords

-        Aebi, H. (1984). Catalase in vitro. Methods in Enzymology, 105, 121–126.
-        Anjah,G.M., Focho, A.D. & Dondjang, J.P. (2013). The effects of sowing depth and light intensity on the germination and early growth of Ricinodendron heudelotii. African Journal of Agricultural Research, 8(46), 5854-5858.
-        Beauchamp, C. & Fridovich, I. (1971). Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. Analytical Biochemistry, 44, 276–287.
-        Bewley, J.D. & Black, M., 2012. Physiology and Biochemistry of Seeds in Relation to Germination: Volume 2: Viability Dormancy, and Environmental Control (pp. 155.). Springer Science & Business Media.
-        Bian, Z.H., Yang, Q.C. & Liu, W.K. (2015). Effects of light quality on the accumulation of phytochemicals in vegetables produced in controlled environments. Journal of the Science of Food and Agriculture, 95, 869–877.
-        Castillon, A., Shen, H. & Huq, E. (2009). Blue light induces degradation of the negative regulator 19 phytochrome interacting factor 1 to promote photomorphogenic development of 20 Arabidopsisseedlings. Genetics, 182, 161–171.
-        Chen, H., Cao, M., Baskin, J.M. & Baskin, C.C. (2013). Temperature regulates positively photoblastic seed germination in four Ficus (Moraceae) tree species from contrasting habitats in a seasonal tropical rainforest. American Journal of Botany, 100, 1683–1687.
-        Cui, J., Ma, Z.H., Xu, Z.G., Zgang, H., Chang, T.T. & Liu, H.J. (2009). Effects of supplemental lighting with different light qualities on growth and physiological characteristics of cucumber, pepper and tomato seedlings. Acta Horticulturae Sinica, 5, 663–670.
-        Daud, N., Faizal, A. & Geelen, D. (2013). Adventitious rooting of Jatropha curcas L. is stimulated by phloroglucinol and by red LED light. In Vitro Cellular & Developmental Biology Plant,  49, 183–190.
-        Dini Torkamani, M.R., Abbaspour, N. & Samadi, A. (2013). Study of two treatments on the germination of Valeriana officinalis L. seeds in two growth media. African Journal of Basic and Applied Sciences, 5(5), 232-236.
-        Dong, C., Fu, Y., Liu, G. & Liu, H. (2014). Growth photosynthetic characteristics, antioxidant capacity and biomass yield and quality of wheat (Triticum aestivum L.) exposed to LED light sources with different spectra combinations. Journal of Agronomy and Crop Science, 200, 219–230.
-        Folta, K.M., Koss, L.L., McMorrow, R., Kim, H., Kenitz, J.D., Wheeler, R. & Sager, J. (2005). Design and fabrication of adjustable red-green-blue LED light arrays for plant research. BMC Plant Biology, 5: 17-28.
-        Fukuda, N. & Olsen, J.E. (2011). Effects of light quality under red and blue light emitting diodes on growth and expression of FBP28 in petunia. Acta Horticulturae, 907, 361–366.
-        Hadian, J., Mirjalili, M.H., Kanani, M.R., Salehnia, A. & Ganjipoor, P. (2011). Phytochemical
and morphological characterization of Satureja khuzistanica Jamzad populations from Iran. Chemistry & Biodiversity, 8, 902–915.
-        Heo, J., Lee, Ch., Chakrabarty, D. & Paek, K. (2002). Growth responses of marigold and salvia bedding plants as affected by monochromic or mixture radiation provided by a light-emitting diode (LED). Plant Growth Regulation, 38, 225–230.
-        Hirai, T., Amaki, W. & Watanabe, H. (2006). Action of blue or red monochromatic light on stem internodal growth depends on plant species. Acta Horticulture, 711, 345-349.
-        Hopkins, W.G. & Huner, N.P.A. (2004). Introduction to Plant Physiology. John Wily and Sons, Inc., New Jersey.
-        Islam, M.A., Kuwar, G., Clarke, J., Blystad, D.R., Gislerod, H.R., Olsen, J.E. & Torre, S. (2012). Artificial light from light emitting diodes (LEDs) with a high portion of blue light results in shorter poinsettias compared to high pressure sodium (HPS) lamps. Scientia Horticulturae, 147:136-143.
-        Jacobsen, J., Barrero, J.M., Hughes, T., Julkowska, Taylor, J.M., Xu, Q. & Gubler, F. (2013). Roles for blue light, jasmonate and nitric oxide in the regulation of dormancy and germination in wheat grain (Triticum aestivum L.). Planta, 238(1),121-138.
-        Jala, A. (2011). Effect of different light treatment on the germination of nepenthes mirabilis. International Tranaction Journal of Engineering Management and Applied Science and Technologied, 2(1), 83-91.
-        Jamzad, Z. (2011). Thyme and Savory Iran (pp. 172). Publishing Research Institute of Forests and Rangelands. (In Farsi)
-        Johkan, M., Shoji, K., Goto, F., Hashida, S.N. & Yoshihara, T. (2010). Blue light-emitting diode light irradiation of seedlings improves seedling quality and growth after transplanting in red leaf lettuce. HortScience, 45, 1809–1814.
-        Khani, S., Seyedjavadi, S.S., Zare-Zardini, H., Mahmoodzadeh Hosseini, H., Goudarzi, M., Khatami, S., Amani, J., Imani Fooladi, A.A. & RazzaghiAbyaneh, M. (2019). Isolation and functional characterization of an antifungal hydrophilic peptide, Skh-AMP1, derived from Satureja khuzistanica leaves. Phytochemisry, 164, 136-143.
-        Kim, E., Park, S., Park, B., Lee, Y. & Oh, M. (2014). Growth and antioxidant phenolic compound in cherry tomato seedlings grown under monochromatic light emitting diodes. Horticulture Environmental Biotechnology, 55(6), 506-513.
-        Kim, K., Kook, H.-S., Jang, Y.-J., Lee, W.-H., Kamala-Kannan, S., Chae, J.-Ch. & Lee, K.J. (2013). The effect of blue-light-emitting diodes on antioxidant properties and resistance to Botrytis cinerea in tomato. Journal of Plant Pathology & Microbiology, 4, 203.
-        Kumar, S. & Panigrahi, K.C.S. (2019). Light and auxin signaling cross-talk programme root development in plants. Journal of Biosciences, 44, 26.
-        Lara, T.S., Lira, J.M. S., Rodrigues, A.C., Rakocevic, M. & Alvarenga, A.A. (2014). Potassium nitrate priming affects the activity of nitrate reductase and antioxidant enzymes in tomato germination. Journal of Agricultural Science, 6(2), 72-80.
-        Lefsrud, M.G., Kopsell, D.A. & Sams, C. (2008). Irradiance from distinct wave-length light emitting diodes affect secondary metabolites in kale. HortScience, 43, 2243–2244.
-        Lichtenthaler, H.K. & Wellburn, A.R. (1983). Determinations of total carotenoids and chlorophyllsaandbof leaf extracts in different solvents. Biochemical Society Transactions, 11(5), 591–592.
-        Lone, B.A., Unemoto, L.K., Ferrari, E.A.P., Sadayo, L.T., Takahashi, A. & Faria, R. T. (2014). The effects of light wavelength and intensity on the germination of pitaya seed genotypes. Australian Journal of Crop Science, 8(11), 1475-1480.
-        Malcoste, R., Tzanni, H., Jacques, R. & Rollin, P. (1972). The influence of blue light on dark germinating seeds of Nemophila insignis. Planta, 103, 24-34.
-        Manivannan, A., Soundararajan, P., Halimah, N., Ko, C.H. & Jeong, B.R. (2015). Blue LED light enhances growth, phytochemical contents, and antioxidant enzyme activities of Rehmannia glutinosa cultured in vitro. Horticulture, Environment, and Biotechnology, 56, 105–113.
-        Manivannan, A., Soundararajan, P., Halimah, N., Ko, C.H. & Jeong, B.R. (2015). Blue LED light enhances growth, phytochemical contents, and antioxidant enzyme activities of Rehmannia glutinosa cultured in vitro. Horticulture, Environment, and Biotechnology, 56, 105–113.
-        Massa, G.D., Kim, H.H., Wheeler, R.M. & Mitchell, C.A. (2008). Plant productivity in response to LED lighting. HortScience, 43, 1951–1956.
-        Nhut, D.T., Takamura,T., Watanabe, H., Okamoto, K. & Tanaka, M. (2003). Responses of strawberry plantlets cultured in vitro under superbright red and blue light-emitting diodes (LEDs). Plant Cell, Tissue and Organ Culture, 73, 43-52.
-        Nooshkam, A., Mumivand, H., Hadian, J., Alemardan, A. & Morshedloo, M.R. (2017). Drug yield and essential oil and carvacrol contents of two species of Satureja (S. khuzistanica Jamzad and S. rechingeri Jamzad) cultivated in two different locations. Journal of Applied Research on Medicinal and Aromatic Plants, 6, 126-130.
-        Ohadi, H., Rahimian Mashhadi, H., Tavakkol Afshari, R. & Baheshtian, M. (2009). Modelling the effect of light intensity and duration of exposure on seed germination of Phalaris minor and Poa annua. European Weed Research Society Weed Research, 50, 209–217.
-        Ortega-Base, P. & Arechiga, M. (2007). Seed germination of Trichocereus terscheckii (Cactaceae): Light, temperature and gibberellic acid effects. Journal of Aird Encironments, 69(1), 169-179.
-        Pinho, P., Oskari, M., Eino, T. & Lisa, H. (2004). Photobiological aspects of crop plants grown under light emitting diodes. Proc CIE Expert Symposium. LED Light Sources (pp. 71-74). Tokyo, Japan. 7-8 June.
-        Rashidi, A., Narimani, R. & Moghaddam, M. (2021). The effect quality on germination and some physicochemical characteristics of valerian (Valeriana officinalis) seedling. Iranian Journal of Seed Science and Research, 7(4), 317-341. (In Farsi)
-        Ryu, J.H., Seo, K.S., Choi, G.L., Rha, E.S., Lee, S. Ch., Choi, S.K., Kang, S.-Y. & Bae, Ch.-H. (2012). Effects of LED light illumination on germination, growth and anthocyanin content of dandelion (Taraxacum officinale). Korean Journal of Plant Resources, 25, 731–738.
-        Schmidt, M., Grief, J. & Feierabend, J. (2006). Mode of translational activation of the catalase (cat1) mRNA of rye leaves (Secale cereale L.) and its control through blue light and reactive oxygen. Planta, 223, 835–846.
-        Shimizu, M., Ma, Z. & Douzono, M. (2006). Blue light inhibits stem elongation of chrysanthemum. Acta Horticulturae, 711, 363–368.
-        Shinkle, J.R. & Jones, R.J. (1988). Inhibition of stem elongation in cucumis seedlings by blue light requires calcium. Plant Physiology, 86, 960-966.
-        Simlat, M., Slezak, P., Mos, M., Warvhol, M., Skrzypek, E. & Ptak, A. (2016). The effect of light quality on seed germination, seedling growth and selected biochemical properties of Stevia rebaudiana Bertoni. Scientia horticulture, 211, 295-304.
-        Slinkard, K., & Singleton, V. (1977). Total phenolic analysis: automation and comparison with manual methods. American Journal of Enology and Viticulture, 28, 49-55.
-        Son, K.H. & Oh, M.M. (2013). Leaf shape, growth, and antioxidant phenolic compounds of two lettuce cultivars grown under various combinations of blue and red light-emitting diodes. HortScience, 48(8), 988–995.
-        Su, N., Wu, Q., Shen, Z., Xia, K. & Cui, J. (2014). Effects of light quality on the chloroplastic ultrastructure and photosynthetic characteristics of cucumber seedlings. Plant Growth Regulation, 73, 227–235.
-        Tanno, N. (2006). Blue light induced inhibition of seed germination: The necessity of the fruit coats for the blue light response. Physiologia Plantarum, 58(1), 18-20.
-        Van Gelderen, K., Kang, C. & Pierik, R. (2018). Light signaling, root development and plansticity. Plant Physiology. 176, 1049-1060.
-        Wu, M.C., Hou, C.Y., Jiang, C.M., Wang, Y.T., Wang, C.Y., Chen, H.H. & Chang, H.M. (2007). A novel approach of LED light radiation improves the antioxidant activity of pea seedlings. Food Chemistry, 101, 1753–1758.
-        Yamazaki, J. (2010). Is light quality involved in the regulation of the photosynthetic apparatus in attached rice leaves?. Photosynthesis Research, 105, 63–71.
-        Yorio, N.C., Goins, G.D., Kagie, H.R., Wheeler, R.M. & Sager, J.C. (2001). Improving spinach,radish and lettuce growth under red light-emitting diodes (LEDs) with blue light supplementation. HortScience, 36, 380-383.
-        Zhang, 1992. The measurement and mechanism of lipid peroxidation and SOD, POD and CAT activities in biological system (pp. 208–211). In: Zhang, X.Z. (Ed.), Research Methodology of Crop Physiology. Agriculture Press, Beijing.
Volume 6, Issue 12 - Serial Number 2
January 2023
Pages 109-122

  • Receive Date 14 December 2022
  • Revise Date 19 December 2022
  • Accept Date 01 January 2023