117
Role of Hydropriming and Magneto-Priming in Developing Stress Tolerance
REFERENCES
Abbate, P. E., Dardanelli, J. L., Cantarero, M. G., Maturano, M., Melchiori, R. J. M., & Suero,
E. E., (2004). Climatic and water availability effects on water‐use efficiency in wheat. Crop
Sci., 44, 474–483. https://doi.org/10.2135/cropsci2004.4740.
Adam, S., Cockshull, K., & Cave, C., (2011). Effect of temperature on the growth and
development of tomato fruits. Ann. Bot., 88, 869–877.
Afzal, I., Basra, S. M. A., Ahmad, N., & Lodhi, T., (2007). Counteraction of salinity stress on
wheat plants by pre-sowing seed treatments. Pak. J. Agric. Sci., 104–109.
Afzal, I., Basra, S. M. A., Ahmad, N., Cheema, M. A., Warraich, E. A., & Khaliq, A., (2002).
Effect of priming and growth regulator treatment on emergence and seedling growth of
hybrid maize (Zea mays). Int. J. Agric. Biol., 4, 303–306.
Afzal, I., Noor, M. A., Bakhtavar, M. A., Ahmad, A., & Haq, Z., (2015). Improvement of spring
maize (Zea mays) performance through physical and physiological seed enhancements.
Seed Sci. Technol., 43, 1–12.
Afzal, I., Rauf, S., Basra, S. M. A., & Murtaza, G., (2008). Halopriming improves vigor,
metabolism of reserves and ionic contents in wheat seedlings under salt stress. Plant Soil
Environ., 54, 382–388.
Ahmad, S., Ahmad, R., Ashraf, M. Y., Ashraf, M., & Waraich, E. A., (2009). Sunflower
(Helianthus annuus L.) response to drought stress at germination and seedling growth
stages. Pak J. Bot., 41, 647–654.
Aliu, S., Rusinovci, I., Fetahu, S., Gashi, B., Simeonovska, E., & Rozman, L., (2015). The
effect of salt stress on the germination of maize (Zea mays L.) seeds and photosynthetic
pigments. AAS, 105, 85–94. https://doi.org/10.14720/aas.2015.105.1.09.
Alvarez, J., Martinez, E., Carbonell, V., & Florez, M., (2020). Effects of polyethylene
glycol and sodium chloride stress on water absorption of magneto-primed triticale seeds.
Romanian Reports in Physics, 72, 708.
Anand, A., Kumari, A., Thakur, M., & Koul, A., (2019). Hydrogen peroxide signaling
integrates with phytohormones during the germination of magneto primed tomato seeds.
Sci. Rep., 9, 8814. https://doi.org/10.1038/s41598-019-45102-5.
Anand, A., Nagarajan, S., Verma, A. P. S., Joshi, D. K., Pathak, P. C., & Bhardwaj, J., (2012).
Pre-treatment of seeds with static magnetic field ameliorates soil water stress in seedlings
of maize (Zea mays L.). Indian Journal of Biochemistry & Biophysics, 49, 63–70.
Anderson, A. J., McLean, J. E., Jacobson, A. R., & Britt, D. W., (2018). CuO and ZnO
nanoparticles modify interkingdom cell signaling processes relevant to crop production. J.
Agric. Food Chem., 66, 6513–6524. https://doi.org/10.1021/acs.jafc.7b01302.
Ansari, O., & Zadeh, F., (2012). Osmo and hydro priming improvement germination
characteristics and enzyme activity of mountain rye (Secale montanum) seeds under
drought stress. J. Stress Physiol. Biochem., 8, 253–261.
Araújo, S. S., Paparella, S., Dondi, D., Bentivoglio, A., Carbonera, D., & Balestrazzi,
A., (2016). Physical methods for seed invigoration: Advantages and challenges in seed
technology. Frontiers in Plant Science, 7, 646. https://doi.org/10.3389/fpls.2016.00646.
Ashrafi, E., & Razmjoo, K., (2010). Effects of priming on seed germination and field
emergence of safflower (Carthamus tinctorius L.). Seed Sci. Technol., 38, 675–681. https://
doi.org/10.15258/sst.2010.38.3.15.