Impact of High Moisture Stress on Physio-morphological Characteristics and Yield Attributes of Wheat (Triticum aestivum L.) Genotypes

Rudra Prakash Sharma

College of Agriculture, Acharya Narendra Deva University of Agriculture and Technology, Kumarganj, Ayodhya-224229 (U.P.), India.

Alok Kumar Singh *

Department of Plant Physiology, College of Agriculture, Acharya Narendra Deva University of Agriculture and Technology, Kumarganj, Ayodhya-224229 (U.P.), India.

Sita Ram Mishra

Department of Agricultural Meteorology, College of Agriculture, Acharya Narendra Deva University of Agriculture and Technology, Kumarganj, Ayodhya-224229 (U.P.), India.

Anand Singh

Department of Soil Science, College of Agriculture, Acharya Narendra Deva University of Agriculture and Technology, Kumarganj, Ayodhya-224229 (U.P.), India.

Preeti Singh

Department of Resource Management & Consumer Science, College of Community Science, Acharya Narendra Deva University of Agriculture and Technology, Kumarganj, Ayodhya-224229 (U.P.), India.

Vivek Kumar Yadav

College of Agriculture, Acharya Narendra Deva University of Agriculture and Technology, Kumarganj, Ayodhya-224229 (U.P.), India.

Animesh Devanand

College of Agriculture, Acharya Narendra Deva University of Agriculture and Technology, Kumarganj, Ayodhya-224229 (U.P.), India.

Nimisha

College of Agriculture, Acharya Narendra Deva University of Agriculture and Technology, Kumarganj, Ayodhya-224229 (U.P.), India.

*Author to whom correspondence should be addressed.


Abstract

Excess soil moisture can restrict wheat growth by reducing oxygen availability in the root zone. A pot experiment was conducted during the 2025–26 Rabi season at the Student Instructional Farm, Acharya Narendra Deva University of Agriculture & Technology, Kumarganj, Ayodhya, Uttar Pradesh, India, to evaluate six bread wheat (Triticum aestivum L.) genotypes under control (T₁) and high-moisture stress (T₂) conditions. The experiment followed a completely randomised design with three replications. High-moisture stress was imposed by maintaining the soil at saturation for 20 days immediately after sowing. Plant height, relative water content, and membrane thermal stability were assessed at 21 and 45 days after sowing and at physiological maturity; spike length, number of grains per spike, and grain yield per plant were measured at harvest. High-moisture stress reduced plant height and all measured yield attributes in every genotype, whereas relative water content and membrane thermal stability varied with genotype and growth stage. KRL-20 maintained the greatest plant height under stress at all assessment stages and recorded the highest relative water content at 45 days after sowing and physiological maturity. It also produced the longest spike (9.25 cm), the greatest number of grains per spike (61.20), and the highest grain yield (14.70 g plant⁻¹) under stress. HD-2967 and PBW-550 ranked next for grain yield. These results indicate useful genotypic variation, with KRL-20 showing the most consistent performance under the imposed high-moisture regime.

Keywords: Triticum aestivum, high-moisture stress, waterlogging, genotypic variation, plant height, relative water content, membrane thermal stability, spike length, grains per spike, grain yield, stress tolerance


How to Cite

Sharma, Rudra Prakash, Alok Kumar Singh, Sita Ram Mishra, Anand Singh, Preeti Singh, Vivek Kumar Yadav, Animesh Devanand, and Nimisha. 2026. “Impact of High Moisture Stress on Physio-Morphological Characteristics and Yield Attributes of Wheat (Triticum Aestivum L.) Genotypes”. Journal of Advances in Biology & Biotechnology 29 (9):1060-66. https://doi.org/10.9734/jabb/2026/v29i94381.

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