Physiological and biochemical changes of Alfalfa (Medicago sativa L.) cultivars during different growth stages
Subject Areas : Plant PhysiologyAlireza Khedri 1 , Behzad Sani 2 , behnam Zand 3 , Hamid Mozafari 4 , Payam Moavni 5
1 - Department of Agronomy, Shahr-e-Qods Branch, Islamic Azad University, Tehran, Iran
2 - Department of Agronomy, Shahr-e-Qods Branch, Islamic Azad University, Tehran, Iran
3 - Seed and Plant Improvement Research Department, Agricultural and Natural Resources Research Center, Agricultural Research Education and Extension Organization (AREEO), Varamin, Iran
4 - Department of Agronomy, Shahr-e-Qods Branch, Islamic Azad University, Tehran, Iran
5 - Department of Agronomy, Shahr-e-Qods Branch, Islamic Azad University, Tehran, Iran
Keywords: Proline, Malondialdehyde, Antioxidant capacity, Phenolic content, Heat map,
Abstract :
Physio-biochemical changes in plants is a principal practice to manage harvesting time. The present study was aimed to investigate the effect of flowering stages (10%, 50%, and 100% flowering) on physiological and biochemical properties in four cultivars (Fasta, Hamadani, Meldor, and Sovrana) of third and fourth-year-old plants of Alfalfa (Medicago sativa L.) based on completely randomized design (CRD). The results showed that total phenolic content (TPC) and total flavonoid content (TFC) in Hamadani cultivar at middle flowering stages in fourth-year-old plants showed higher TPC and TFC. The catalase (CAT) and superoxide dismutase (SOD) activities increased by progressing the flowering stage and time of harvesting. Proline content increased by advancing the flowering stage as its highest amount was observed at late flowering stage in Fasta cultivar. Middle flowering stage represented the greater chlorophyll (Chl.) compared with other stages. Relative water content (RWC) decreased by progressing the maturity as its highest amount was observed at early flowering stage. RWC differed from 65% in fourth-year plants of sovrana at late flowering stage to 80% in third-year plants of Meldor at early flowering stage. Malondialdehyde (MDA) content and total soluble sugar (TSS) increased by advancing the maturity. Sovrana at late flowering stage and fourth year represented the higher MDA and TSS. Heat map analysis showed the significant role of all physiological and biochemical traits except total Chl. for clustering the cultivars. This work suggests the Hamadani cultivar because of high phenolic compounds and the minimum variation of their biochemical properties in the fourth year.
Aebi, H. 1974. Catalase. In Methods of enzymatic analysis Academic press. 673-684.
Arnon, D. I. 1949. Copper enzymes in isolated chloroplasts. Polyphenoloxidase in Beta vulgaris. Plant physiol. 1949;24(1): 1-9.
Bates LS, R. P. Waldren, and I. D. Teare, 1973. Rapid determination of free proline for water-stress studies. Plant and Soil, 39, 205-207.
Biazzi, E., N. Nazzicari, L. Pecetti, E. C. Brummer, A. Palmonari, A. Tava, and P. Annicchiarico. 2017. Genome-wide association mapping and genomic selection for alfalfa (Medicago sativa) forage quality traits. PLoS One, 12(1): e0169234.
Dhopte, A. M, and L. M. Manuel. 2002. Principles and Techniques for Plant Scientists, 1st end. Updesh Purohit for Agrobios (India), Odhpur, ISBN;81-17754.
Engin, B. and H, Mut. 2018. Variation of some nutrient contents with relative feed value according to cutting order in alfalfa (Medicago sativa L.) varieties. J. Tekir. Agr. Facul., 15(2): 119-127.
Farhadi, N., K. Babaei, S. Farsaraei, M. Moghaddam, and A. G. Pirbaloti, A. G. 2020. Changes in essential oil compositions, total phenol, flavonoids and antioxidant capacity of Achillea millefolium at different growth stages. Industrial Crops and Products, 112570.
Ghodke, P. H., P. S. Andhale, U. M. Gijare, A. Thangasamy, Y. P. Khade, V. Mahajan, and M. Singh. 2018. Physiological and biochemical responses in onion crop to drought stress. Int J Curr Microbiol App Sci, 7(1), 2054-62.
Gomes, E. N., D. Moterle, L. A. Biasi, H. S. Koehler, L. A., Kanis, and C. Deschamps. 2018. Plant densities and harvesting times on productive and physiological aspects of Stevia rebaudiana Bertoni grown in southern Brazil. Anais da Academia Brasileira de Ciências, 90(4), 3249-3264.
Guemmaz, T., F. Zerargui, S. Boumerfeg, L. Arrar, S. Aouachria, S. Khennouf, A. Baghiani, A. 2018. Anti-hemolytic, anti-lipid peroxidation, antioxidant properties and acute toxicity of Xanthium strumarium leaves extracts. Annual Research & Review in Biology, 1-12.
Guo, G., C. Shen, Q. Liu, S. L. Zhang, C. Wang, L Chen, and W. J. Huo. 2019. Fermentation quality and in vitro digestibility of first and second cut alfalfa (Medicago sativa L.) silages harvested at three stages of maturity. Anim. Feed Sci. Technol., 257: 114274.
Heath, R. L. and L. Packer.1969. Photoproxidation and stoichiometry of fatty acid peroxidation. Biochemistry and Biophysics, 125, 189-198.
Jayaraman J. and J. Jayaraman. 1981. Laboratory manual in biochemistry. (pp. 271-272). Delhi: Wiley Eastern.
Karayilanli, E. and V. Ayhan. 2016. Investigation of feed value of alfalfa (Medicago sativa L.) harvested at different maturity stages. Legum. Res., 39(2): 237-247.
King, C., J. McEniry, M. Richardson, and P. O'Kiely. 2012. Yield and chemical composition of five common grassland species in response to nitrogen fertiliser application and phenological growth stage. Acta Agr. Scand.,62(7): 644-658.
Kiraz, A. B. 2011. Determination of relative feed value of some legume hays harvested at flowering stage. Asian J Anim Vet Adv., 6(5): 525-530.
Lakhani, P., M. N. Alhussien, N. Lakhani, R. Jindal, and S. Nayyar. 2018. Seasonal variation in physiological responses, stress and metabolic-related hormones, and oxidative status of Murrah buffaloes. Biological Rhythm Research, 49(6), 844-852.
Medina, M.B. 2011. Determination of the total phenolics in juices and superfruits by a novel chemical method. Journal of Functional Foods, 3, 79-87.
Nasirzadeh, L., B. Sorkhilaleloo, E. M. Hervan, and F. Fatehi. 2020. Changes in antioxidant enzyme activities and gene expression profiles under drought stress in tolerant, intermediate, and susceptible wheat genotypes. Cereal Research Communications, 1-7.
Noland, R. L., Wells, M. S., Coulter, J. A., Tiede, T., Baker, J. M., Martinson, K. L. and Sheaffer, C. C. 2018. Estimating alfalfa yield and nutritive value using remote sensing and air temperature. Field Crop. Res., 222: 189-196.
Noori, F., H. Etesami, H. N. Zarini, N. A. Khoshkholgh-Sima, G. H. Salekdeh, and F. Alishahi. (2018). Mining alfalfa (Medicago sativa L.) nodules for salinity tolerant non-rhizobial bacteria to improve growth of alfalfa under salinity stress. Ecotoxicol. Environ. Safe. 162: 129-138.
Palmonari, A., M. Fustini, G. Canestrari, E. Grilli, and A. Formigoni. 2014. Influence of maturity on alfalfa hay nutritional fractions and indigestible fiber content. J. Dairy Sci., 97(12): 7729-7734.
Pilarska, M., E. Skowron, R. Pietraś, K. Krupinska, E. Niewiadomska. 2017. Changes in lipid peroxidation in stay-green leaves of tobacco with senescence-induced synthesis of cytokinins. Plant Physiology and Biochemistry, 118, 161-167.
Samaniego, I., B. Brito, W. Viera, A. Cabrera, W. Llerena, T. Kannangara, and W. Carrillo. 2020. Influence of the maturity stage on the phytochemical composition and the antioxidant activity of four andean blackberry cultivars (Benth) from ecuador. Plants, 9(8), 1027. Rubus glaucus
Siddiqui, M. H., M. Y. Al-Khaishany, M. A. Al-Qutami, M. H. Al-Whaibi, and A. Grover, A., H. M. Ali, and M. S. Al-Wahibi, M. S. 2015. Morphological and physiological characterization of different genotypes of faba bean under heat stress. Saudi Journal of Biological Sciences, 22(5), 656-663.
Szymańska, R., I. Ślesak, A. Orzechowska, and J. Kruk, J. 2017. Physiological and biochemical responses to high light and temperature stress in plants. Environmental and Experimental Botany, 139, 165-177.
Yari, M., R. Valizadeh, A. A. Naserian, A. Jonker, A. Azarfar, and p. Yu. 2014. Effects of including alfalfa hay cut in the afternoon or morning at three stages of maturity in high concentrate rations on dairy cows performance, diet digestibility and feeding behavior. Anim. Feed Sci. Technol., 192: 62-72.
Yu, P., D. A. Christensen, J. J. McKinnon, and J. D. Markert. 2003. Effect of variety and maturity stage on chemical composition, carbohydrate and protein subfractions, in vitro rumen degradability and energy values of timothy and alfalfa. Canad. J anim. Sci., 83(2): 279-290.
Zhang, F., J. Kang, R. Long, L. Yu, Z. Wang, Z. Zhao, and Q. Yang. 2019. High-density linkage map construction and mapping QTL for yield and yield components in autotetraploid alfalfa using RAD-seq. BMC Plant Biol., 19(1): 165-175.
Zhishen, J., T. Mengcheng, W. Jianming.1999. The determination of flavonoid contents in mulberry and their scavenging effects on superoxide radicals. Food chemistry, 64(4), 555-559.