Drought-Induced Coordination of Photosynthesis, Stomata, and Hydraulics in Maize Leaves Between Sensitive and Tolerant Varieties.

IF 3.6 2区 生物学 Q1 PLANT SCIENCES
Hao Li, Yanqun Zhang, Kaixuan Du, Xinlong Hu, Yan Mo, Di Xu, Shuji Wang, Baozhong Zhang
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引用次数: 0

Abstract

Identification of drought-tolerant maize varieties in the context of climate change is critical. Although many studies have reported that the coordination of stomatal and hydraulic conductance of plant leaves ensures the net photosynthetic rate, it is unclear whether the arrangement of these three parameters is consistent among maize varieties differing in drought tolerance. Therefore, in this study, gas exchange parameters, hydraulic properties, and stomatal structure of leaves from eight maize varieties under full and deficit irrigation (DI) were determined. Drought tolerance of varieties was assessed using principal component analysis, and the coordination of photosynthesis, stomatal and hydraulic conductance, as well as stomatal behavior was analyzed between drought-sensitive (DSVs) and drought-tolerant varieties (DTVs). Eight maize varieties were categorized into DSVs and DTVs based on the evaluation of these agronomic and physiological parameters. Significant variety-specific responses of physiological parameters to DI were found, with at least one parameter being significantly affected in each variety. Leaf net photosynthesis rate and stomatal conductance showed a tight coordination with hydraulic conductance among DSVs; however, this coordination was potentially absent among DTVs. Simulations of stomatal behavior based on Ball-Berry and Medlyn models showed that DI significantly reduced the model sensitivity parameters of m and g1 regardless of DSVs and DTVs. The study highlights the importance of physiological trait coordination in drought responses. The coordination between stomatal and hydraulic traits may be absent in DTVs, implying a potentially flexible adaptation strategy that could be exploited to improve maize drought tolerance.

干旱诱导玉米叶片光合、气孔和水力学在敏感和耐旱品种间的协调。
在气候变化背景下鉴定耐旱玉米品种至关重要。虽然许多研究报道了植物叶片气孔导度和水力导度的协调保证了净光合速率,但这三个参数的排列在不同耐旱性的玉米品种中是否一致尚不清楚。因此,本研究对8个玉米品种在全亏灌(DI)条件下叶片的气体交换参数、水力特性和气孔结构进行了测定。利用主成分分析法对不同品种的耐旱性进行了评价,并分析了干旱敏感品种(dsv)和耐旱品种(dtv)光合、气孔导度和水力导度以及气孔行为的协调性。通过对8个玉米品种农艺生理指标的评价,将其划分为dsv型和dtv型。发现生理参数对DI有显著的品种特异性反应,每个品种至少有一个参数受到显著影响。叶片净光合速率、气孔导度与水导度表现出紧密的协调性;然而,数字电视之间可能缺乏这种协调。基于Ball-Berry和Medlyn模型的气孔行为模拟表明,无论dsv和dtv如何,DI都显著降低了m和g1的模型敏感性参数。该研究强调了生理性状协调在干旱响应中的重要性。在dtv中可能缺乏气孔和水力性状之间的协调,这意味着可以利用潜在的灵活适应策略来提高玉米的抗旱性。
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来源期刊
Physiologia plantarum
Physiologia plantarum 生物-植物科学
CiteScore
11.00
自引率
3.10%
发文量
224
审稿时长
3.9 months
期刊介绍: Physiologia Plantarum is an international journal committed to publishing the best full-length original research papers that advance our understanding of primary mechanisms of plant development, growth and productivity as well as plant interactions with the biotic and abiotic environment. All organisational levels of experimental plant biology – from molecular and cell biology, biochemistry and biophysics to ecophysiology and global change biology – fall within the scope of the journal. The content is distributed between 5 main subject areas supervised by Subject Editors specialised in the respective domain: (1) biochemistry and metabolism, (2) ecophysiology, stress and adaptation, (3) uptake, transport and assimilation, (4) development, growth and differentiation, (5) photobiology and photosynthesis.
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