Li Shuang, Liu Junming, Liu Hao, Qiu Rangjian, Gao Yang, Duan Aiwang
Key Laboratory of Crop Water Use and Regulation, Ministry of Agriculture and Rural Affairs, Farmland Irrigation Research Institute, Chinese Academy of Agricultural Sciences, Xinxiang, China.
Graduate School of Chinese Academy of Agricultural Sciences, Beijing, China.
Front Plant Sci. 2021 Apr 29;12:653186. doi: 10.3389/fpls.2021.653186. eCollection 2021.
Drought reduces leaf stomatal conductance (g) and mesophyll conductance (g). Both hydraulic signals and chemical signals (mainly abscisic acid, ABA) are involved in regulating g. However, it remains unclear what role the endogenous ABA plays in g under decreasing soil moisture. In this study, the responses of g and g to ABA were investigated under progressive soil drying conditions and their impacts on net photosynthesis (A) and intrinsic water use efficiency (WUE) were also analyzed. Experimental tomato plants were cultivated in pots in an environment-controlled greenhouse. Reductions of g and g induced a 68-78% decline of A under drought conditions. While soil water potential (Ψ) was over -1.01 MPa, g reduced as leaf water potential (Ψ) decreased, but ABA and g kept unchanged, which indicating g was more sensitive to drought than g. During Ψ reduction from -1.01 to -1.44 MPa, Ψ still kept decreasing, and both g and g decreased concurrently following to the sustained increases of ABA content in shoot sap. The g was positively correlated to g during a drying process. Compared to g or g, WUE was strongly correlated with g/g. WUE improved within Ψ range between -0.83 and -1.15 MPa. In summary, g showed a higher sensitivity to drought than g. Under moderate and severe drought at Ψ ≤ -1.01 MPa, furthermore from hydraulic signals, ABA was also involved in this co-ordination reductions of g and g and thereby regulated A and WUE.
干旱会降低叶片气孔导度(g)和叶肉导度(g)。水力信号和化学信号(主要是脱落酸,ABA)都参与调节g。然而,在土壤湿度降低的情况下,内源ABA在g中所起的作用仍不清楚。在本研究中,研究了在土壤逐渐干燥条件下g和g对ABA的响应,并分析了它们对净光合速率(A)和内在水分利用效率(WUE)的影响。实验番茄植株种植在环境可控温室中的花盆里。干旱条件下,g和g的降低导致A下降了68 - 78%。当土壤水势(Ψ)高于-1.01 MPa时,g随着叶片水势(Ψ)的降低而降低,但ABA和g保持不变,这表明g对干旱比g更敏感。在Ψ从-1.01 MPa降至-1.44 MPa的过程中,Ψ持续下降,随着茎干汁液中ABA含量的持续增加,g和g同时下降。在干燥过程中,g与g呈正相关。与g或g相比,WUE与g/g密切相关。在Ψ为-0.83至-1.15 MPa范围内,WUE提高。总之,g对干旱的敏感性高于g。在Ψ≤-1.01 MPa的中度和重度干旱条件下,除了水力信号外,ABA也参与了g和g的协同降低,从而调节了A和WUE。