Leaf water status and biochemical adjustments as a mechanism of drought tolerance in two contrasting wheat (Triticum aestivum L.) varieties

被引:0
作者
Nurunnaher Akter
Tanzina Afrin Brishty
M. Abdul Karim
M. Jalal Uddin Ahmed
M. Rafiqul Islam
机构
[1] Bangabandhu Sheikh Mujibur Rahman Agricultural University,Department of Agronomy
[2] Bangabandhu Sheikh Mujibur Rahman Agricultural University,Department of Crop Botany
来源
Acta Physiologiae Plantarum | 2023年 / 45卷
关键词
Water relations; Biochemicals; Drought stress; Growth stages; Wheat; Yield;
D O I
暂无
中图分类号
学科分类号
摘要
Understanding the water relationship and biochemical changes in response to drought can aid in drought tolerance in wheat, which is critical for future yield stability. The current study investigated the mechanisms of drought tolerance in wheat, considering water relations, biochemical properties, and yield of two wheat varieties: drought-susceptible BARI Gom 25 and drought-tolerant BARI Gom 26. Drought decreased relative water content (RWC), leaf water potential (LWP), xylem exudation rate (XER), leaf chlorophyll content, flag leaf phosphorus (P), and grain yield. Conversely, drought stress increased various osmolytes: proline, soluble sugar, malondialdehyde (MDA), and flag leaf potassium ion (K+). Under drought conditions, BARI Gom 26 outperformed BARI Gom 25 in terms of LWP, RWC, and XER. However, drought increased the electrolyte leakage (EL) and MDA in BARI Gom 25. BARI Gom 26 had higher proline concentration, soluble sugar accumulation, cell membrane integrity, chlorophyll concentration, and K+ in drought conditions than BARI Gom 25. These responses were most noticeable during the reproductive stages. However, BARI Gom 26 could compensate for drought-induced reductions in agronomic parameters, including grain yield, by maintaining superior osmotic adjustment in the leaves, as evidenced by increased proline, MDA, cell membrane stability, and K+ accumulation.
引用
收藏
相关论文
共 469 条
[61]  
Ullah Z(2020)Functional characterization and regulatory mechanism of wheat CPK34 kinase in response to drought stress Sustainability 12 5610-23
[62]  
Saeed M(2021)Growth, morphological and yield responses of irrigated wheat ( Sarhad J of Agric 37 348-56
[63]  
Zubair A(2018) L.) genotypes to water stress J Plant Proc Func 6 37-34
[64]  
Ahmed A(2019)Metabolic response to drought in six winter wheat genotypes Int J Mol Sci 20 3137-38
[65]  
Ahmad B(2010)Impact of osmotic stress on physiological and biochemical characteristics in drought-susceptible and drought-resistant wheat genotypes Int J Agric Biol 12 561-172
[66]  
Al-Yasi H(2020)Variability of malondialdehyde content and yield elements in PLoS ONE 15 e0232974-159
[67]  
Attia H(1988) L. under heat stress conditions Crop Sci 28 526-undefined
[68]  
Alamer K(2019)The effects of drought stress on yield, yield components, and yield stability at different growth stages in bread wheat cultivar ( Plant Physiol Biochem 135 480-undefined
[69]  
Hassan F(2019) L.) Pak J Bot 51 1241-undefined
[70]  
Ali E(2018)Differential characterization of physiological and biochemical responses during drought stress in finger millet varieties J Pure Appl Microbiol 12 1655-undefined