Early Seedling Vigor and Morphology of Five Malaysian Indica Rice Cultivars under Water

Authors

  • Rosimah Nulit Department of Biology, Faculty of Science, Universiti Putra Malaysia, 43400, Serdang, Selangor, Malaysia
  • Maizaitul Nurul Akmal Zulhadi Department of Biology, Faculty of Science, Universiti Putra Malaysia, 43400, Serdang, Selangor, Malaysia
  • Chee Kong Yap Department of Biology, Faculty of Science, Universiti Putra Malaysia, 43400, Serdang, Selangor, Malaysia

DOI:

https://doi.org/10.12974/2311-8741.2025.13.04

Keywords:

Rice, Drought stress, Seedling vigor, Root length, Seedling growth

Abstract

This study evaluated the early seedling vigor and growth morphology of five Malaysian indica rice cultivars (MR263, MR219, MR220CL2, MR269, MR284) under simulated water deficit using polyethylene glycol (PEG 6000) treatments. Seeds were germinated on Petri dishes with four PEG solutions (0, –0.3, –0.9, –1.5 MPa) at 25°C. After 14 days, germination percentage, seedling vigor index, root length, and shoot (seedling) length were measured. Increasing osmotic stress significantly reduced germination speed and seedling growth for all cultivars, with the most severe stress (–1.50 MPa) causing drastic declines. Seedling vigor index decreased sharply as water potential decreased. Among cultivars, MR263 and MR219 maintained significantly higher vigor and longer roots/shoots under stress than the others. At –1.50 MPa, MR263 exhibited the highest vigor index (~3.6), root length (~5.8 cm) and shoot length (~3.8 cm), whereas MR284 had the lowest (~0.5, ~2.7 cm, ~0.3 cm, respectively). These results indicate genetic variation in drought tolerance at early stages. Our findings suggest MR263 and MR219 may be better suited for environments prone to water deficit, and highlight the importance of seed vigor and root development as selection criteria for drought resilience.

References

Abdul-baki, A. A. & Anderson, J. D. (1970). Viability and leaching of sugars from germinating barley. Crop Sci., 10, 3-6. https://doi.org/10.2135/cropsci1970.0011183X001000010012x

Abiri, R., Shaharuddin, N. A., Maziah, M., Yusof, Z. N. B., Atabaki, N., Sahebi, M., & Azizi, P. (2016). Quantitative assessment of indica rice germination to hydropriming, hormonal priming and polyethylene glycol priming. Chilean Journal of Agricultural Research, 76(4), 392-400. https://doi.org/10.4067/S0718-58392016000400001

Ahmad, M.A., Rabia Javed, R., Muhammad Adeel, M., Muhammad Rizwan, M., Yang, Y. (2020). PEG 6000-Stimulated Drought Stress Improves the Attributes of In vitro Growth, Steviol Glycosides Production, and Antioxidant Activities in Stevia rebaudiana Bertoni. Plants, 9, 1552. https://doi.org/10.3390/plants9111552

Akram, H. M., Ali, A., Sattar, A., Rehman, H. S. U., & Bibi, A. (2013). Impact of water deficit stress on various physiological and agronomic traits of three basmati rice (Oryza sativa L.) cultivars. The Journal of Animal and Plant Sciences, 23(5), 1415-1423.

Biswas, A., Sarkar, S., Das, S., Dutta, S., Choudhury, M., R., Giri, A., Bera, B., Bag, K., Mukherjee, B., Banerjeem K., Gupta, D., Paul, D. (2024). Water scarcity: A global hindrance to sustainable development and agricultural production-A critical review of the impacts and adaptation strategies. Cambridge Prisms: Water, 3, e4, 1-22. https://doi.org/10.1017/wat.2024.16

Elmaghrabi, A.M., Rogers, H.J., Francis, D., & Ochatt, S. J. (2017). PEG Induces High Expression of the Cell Cycle Checkpoint Gene WEE1 in Embryogenic Callus of Medicago truncatula: Potential Link between Cell Cycle Checkpoint Regulation and Osmotic Stress. Frontiers in Plant Science, 8, 1479.

Evamoni, F. Z., Nulit, R., Yap, C. K., Ibrahim, M. H., & Sidek, N. B. (2023). Assessment of germination performance and early seedling growth of Malaysian indica rice genotypes under drought conditions for strategic cropping during water scarcity. Chilean Journal of Agricultural Research, 83(3), 281-292. https://doi.org/10.4067/S0718-58392023000300281

Fahad, S., Bajwa, A.A., Nazir, U., Anjum, S.A., Farooq, A., Zohaib, A., Sadia, S., Nasim, W., Adkins, S., Saud, S., Ihsan, M.Z., Alharby, H., Wu, C., Wang, D., Huang. J. (2017). Crop Production under Drought and Heat Stress: Plant Responses and Management Options. Front Plant Sci., 8, 1147. https://doi.org/10.3389/fpls.2017.01147

Food and Agriculture Organization. (2022). Climate-smart agriculture sourcebook: Module B6 - Water management under climate change. https://www.fao.org/climate-smart-agriculture-sourcebook/production-resources/module-b6-water/chapter-b6-3/en/

Farooq, M., A. Wahid, N. Kobayashi, D. Fujita and S.M.A. Basra, (2009). Plant drought stress: effects, mechanisms and management. Agronomy for Sustainable Development, 29, 185-212. https://doi.org/10.1051/agro:2008021

Gola, E. (2018). Early seedling growth in Oryza sativa under drought stress. Journal of Experimental Botany, 69(11), 2659-2674.

IRRI (International Rice Research Institute) (2013). Trends in global rice consumption. Rice Today, January 2013. http://books.irri.org/RT12_1_content.pdf (Assessed on 9 October 2025).

Kim Y, Chung YS, Lee E, Tripathi P, Heo S, Kim KH. (2020). Root Response to Drought Stress in Rice (Oryza sativa L.). Int J Mol Sci., 21(4), 1513. https://doi.org/10.3390/ijms21041513

Lum, M. S., Hanafi, M. M., Rafii, Y. M., & Akmar, A. S. N. (2014). Effect of drought stress on growth, proline and antioxidant enzyme activities of upland rice. Journal of Animal and Plant Sciences, 24(5), 1487-1493.

Shayanmehr, S., Porhajašová, J.I., Babošová, M., Sabouni, M.S., Mohammadi H., Henneberry, S.R., & Naser Shahnoushi Foroushani, N., S., (2022). The impacts of climate change on water resources and crop production in arid regions. Atmosphere, 16(1), 34. https://www.mdpi.com/2073-4433/16/1/34

Michel, B. E., & Kaufmann, M. R. (1973). The osmotic potential of polyethylene glycol 6000. Plant Physiology, 51(5), 914-916. https://doi.org/10.1104/pp.51.5.914

Murillo-Amador, B., Lopez-Palacios, C., Flores, H., Castellanos, E., & Simpson, J. (2002). Ethylene production and germination of seed of six crop species under the influence of polyethylene glycol treatments. Plant Growth Regulation, 37(1), 93-104.

Organisation for Economic Co-operation and Development (OECD). (2025). Global drought outlook: Adapting to drought risk for long-term resilience. https://www.oecd.org/en/publications/2025/06/global-drought-outlook_28488e98/full-report/adapting-to-drought-risk-for-long-term-resilience_55e0232a.html

Orek, C. (2023). A review of the functions of transcription factors and related genes involved in cassava (Manihot esculenta Crantz) response to drought stress. Tropical Plants, 2, 14. https://doi.org/10.48130/TP-2023-0014

Islam, M. S., Rahman, M. A., Karim, A. H. M. Z., & Khanam, D. (2018). Evaluation of rice genotypes for drought tolerance at germination and early seedling stage. Agriculturists, 16(2), 86-96. https://doi.org/10.3329/agric.v16i1.37533

Kosar, E., Akram, M., & Ashraf, M. (2018). Drought stress in sunflower: Physiological effects and tolerance mechanisms. Pakistan Journal of Botany, 50(5), 1853-1864.

Thakur, P., Kumar, S., Malik, J. A., Berger, J. D., & Nayyar, H. (2010). Cold stress effects on reproductive development in grain crops: An overview. Environmental and Experimental Botany, 67(3), 429-443. https://doi.org/10.1016/j.envexpbot.2009.09.004

Rahman, M. M., Ahammad, K. U., & Ahmed, M. (2014). Effect of seed priming on maize (Zea mays L.) seedling emergence under different sowing dates. Bangladesh Journal of Agricultural Research, 39(4), 693-707. https://doi.org/10.3329/bjar.v39i4.22549

Roy, R. N., & Misra, R. V. (2002). Economic and environmental impact of improved nitrogen management in Asian rice farming systems. In Proceedings of the 20th Session of the International Rice Commission, 23-26.

Rusli, N. M., Noor, Z. Z., Taib, S. M., Din, M. F. B. M. and Krishnan, S. (2023). Water-energyfood nexus components: Assessment of water footprint in rice production in Malaysia using the LCA approach. Trans. Indian Natl. Acad. Eng., 8, 113-125. https://doi.org/10.1007/s41403-022-00382-8

Sairam, R. K., & Srivastava, G. C. (2001). Water stress tolerance of wheat (Triticum aestivum L.): Variations in hydrogen peroxide accumulation and antioxidant activity in tolerant and susceptible genotypes. Journal of Agronomy and Crop Science, 186(1), 63-70. https://doi.org/10.1046/j.1439-037x.2001.00461.x

Toosi, A. F., Bakar, B. B., & Azizi, M. (2014). Effect of drought stress by using PEG 6000 on germination and early seedling growth of Brassica juncea L. Scientific Papers, Series A. Agronomy, 57, 359-364.

Yang, X., Wang, B., Chen, L., Ping, Li, & Cougui, C. (2019) The different influences of drought stress at the flowering stage on rice physiological traits, grain yield, and quality. Sci Rep., 9, 3742. https://doi.org/10.1038/s41598-019-40161-0

Yang, X., Wang, X., Yang, L., Yang, L., Hu, L., Han, Y., Wang, B. (2024) Effects of drought stress at the booting stage on leaf physiological characteristics and yield of rice. Plants, 13, 3464. https://doi.org/10.3390/plants13243464

Zheng, X., Bi, H., Zhou, Z., Zhu, L., & Fu, B. (2016). Seed priming with folic acid improves germination and seedling growth of direct-seeded rice (Oryza sativa) under drought stress. Journal of Agronomy and Crop Science, 202(4), 330-338.

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Published

2025-11-14

How to Cite

Nulit, R. ., Akmal Zulhadi, M. N. ., & Yap, C. K. . (2025). Early Seedling Vigor and Morphology of Five Malaysian Indica Rice Cultivars under Water. Journal of Environmental Science and Engineering Technology, 13, 28–34. https://doi.org/10.12974/2311-8741.2025.13.04

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