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1.
干旱胁迫下根系与地上部分之间的信息传递可使植物叶片及时感知土壤水势变化, 从而使植物在没有真正受到干旱伤害时即可做出主动、快速的抗旱应答反应, 而在这一过程中, 脱落酸(abscisic acid, ABA)和pH起着关键的作用。本研究表明, 干旱胁迫下鸭趾草(Commelina communis L.)、番茄(Lycopersicon esculentum Mill.)和向日葵(Helianthus annuus L.)木质部汁液中pH的变化很不相同, 且该pH变化和木质部汁液中硝态氮离子浓度的变化没有直接的关系; 然而, 饲喂实验表明, 无论对于何种植物, 蒸腾流中硝态氮离子浓度的增加都可有效地增加气孔对ABA的敏感度; 分根实验进一步表明, 土壤中硝态氮营养的增加可明显提高气孔对根信号的敏感度。以上结果说明, 氮素营养可以和根信号相互作用共同操纵气孔运动。  相似文献   

2.
田秀红  李广敏 《植物学报》2001,18(4):466-472
植物经历逆境胁迫时,木质部汁液pH常常升高。pH升高本身可诱导气孔开放,导致过度失水,对植物的生存具有危害作用。然而,木质部汁液pH升高与植物中普遍存在的低浓度ABA交互作用,却使气孔开度减小,蒸腾速率下降。本文就有关逆境胁迫下植株木质部汁液pH的变化,木质部汁液pH升高与汁液中低浓度的ABA联合关闭气孔的机理,以及逆境胁迫诱导木质部汁液pH升高的可能机制等诸方面的研究进展作了综述。  相似文献   

3.
pH作为逆境胁迫信号的研究进展   总被引:3,自引:0,他引:3  
植物经历逆境胁迫时,木质部汁液pH常常升高,pH升高本身可诱导气孔开放,导致过度失水,对植物的生存具有危害作用,然而,木质部汁液pH升高与植物中普遍存在的低浓度ABA交互作用,却使气孔开度减小,蒸腾速度下降,本文就有关逆境胁迫下植株木质部汁液pH的变化,木质部汁液pH升高与汁液中低浓度的ABA联合关闭气孔的机理,以及逆境胁迫诱导木质部汁液pH升高的可能机制等诸方面的研究进展了综述。  相似文献   

4.
土壤干旱条件下氮素营养对玉米内源激素含量影响   总被引:14,自引:6,他引:8  
张岁岐  山仑 《应用生态学报》2003,14(9):1503-1506
在田间持水量分别保持于35%、55%和75%±5%的土壤水分条件下,利用盆栽实验研究了土壤干旱和氮素营养对玉米内源激素和气孔导度的影响.结果表明,土壤干旱下氮素营养明显降低了玉米根系木质部汁液ABA浓度,而正常供水下施氮处理间则无显著差异(施氮处理仍较低),同时测定的叶片ABA浓度则呈相反的变化趋势,表现为干旱下施氮处理要高于不施氮处理;施氮处理木质部汁液中ZRs浓度应低于相应的不施氮处理,在调控气孔行为方面并未表现拮抗ABA作用;3种土壤水分条件下,施氮玉米叶片的气孔导度均高于不施氮处理,与木质部汁液ABA浓度呈负相关,说明施氮处理较低的根源ABA浓度是导致其气孔导度较大的主要原因.  相似文献   

5.
植物干旱胁迫下气孔关闭的信号转导   总被引:7,自引:0,他引:7  
史刚荣 《生物学通报》2003,38(11):25-26
气孔关闭被认为是干旱胁迫的应答事件之一,根源ABA作为其原初信号之一,它向保卫细胞的运输受木质部汁液pH影响。而钙离子和阴离子通道则是ABA诱导气孔关闭的重要第二信使。  相似文献   

6.
Zhou XJ  Wang HH  Shu LZ  Zhu PF  Shen JB  Li ZZ  Liang C 《应用生态学报》2010,21(8):2017-2024
通过向玉米幼苗分根装置一侧根室的营养液中加入聚乙二醇(PEG 6000)来模拟植物水分胁迫,并设3种供氮形态(硝态氮、铵态氮、两者各占50%的混合氮),且只加入到一侧根室(当氮加入到和PEG同侧时为水氮异区,加入到无PEG一侧时为水氮同区),测定各处理的光合、生理指标,以研究局部根区水分胁迫下氮形态与供给部位对玉米幼苗生长的影响.结果表明:同一氮形态供给下水氮同区植株的光合速率(Pn)、最大净光合速率(Pmax)、光饱和点(LSP)、CO2饱和点(CSP)、叶绿素a、b及叶绿素总含量、根系活力、氮含量和生物量高于水氮异区,光呼吸速率(Rp)、CO2补偿点(CCP)、木质部汁液脱落酸(ABA)浓度、氮利用效率、水分利用效率低于水氮异区;供混合氮和硝态氮的植株Pn、Pmax、LSP、CSP、氮含量和生物量高于供铵态氮的植株,而CCP、Rp、木质部汁液ABA浓度、氮利用效率、水分利用效率变化趋势则相反.可见,同一供氮形态下,水氮同区比水氮异区更利于植物生长,而水氮利用效率在水氮异区下较高;混合氮和硝态氮对植物生长的促进作用优于单一供给铵态氮,但铵态氮更有利于提高水氮利用效率.  相似文献   

7.
试验以玉米品种'金海五号'幼苗为材料,在分根条件下采用聚乙二醇(PEG-6000)模拟局部根区水分胁迫,设置3种供氮形态(硝态氮、铵态氮、两者各占50%的混合氮)和2种供氮部位(水氮同区,氮加入到无PEG侧;水氮异区,氮加入到含PEG侧),研究局部根区水分胁迫下氮形态与供应部位对玉米水分吸收和利用的调节与作用机制,为局部根区灌溉水分高效利用提供理论依据.结果发现:(1)同一氮形态下水氮同区供应的植株蒸腾速率、耗水量、木质部汁液流速和生物量较高,加有硝态氮源处理无PEG侧根系的导管数目及单一氮形态处理无PEG侧根系的导管直径较高,但木质部汁液、叶片中脱落酸(ABA)浓度以及水分利用效率均较低.(2)同一供氮部位下,植株的蒸腾速率、耗水量、木质部汁液流速和生物量的顺序均为混合氮>硝态氮>铵态氮依次,但单一铵态氮处理植株的ABA浓度较高,水分利用效率较高.研究表明,同一氮形态下水氮同区供应植株生长较好、水分吸收能力较强,但水氮异区供应下植株的水分利用效率较高;同一供氮部位下,植株生长和水分吸收能力的顺序为混合氮>硝态氮>铵态氮,但单供铵态氮植株的水分利用效率较高.  相似文献   

8.
几种生理因素对玉米木质部汁液中蛋白质含量的影响   总被引:1,自引:0,他引:1  
受干旱胁迫的玉米叶和茎木质部汁液中蛋白质含量降低,根中蛋白质含量升高.偏酸性营养液中的玉米各营养器官木质部汁液中蛋白质含量降低,中性或碱性营养液中的则升高.以100mmol·L-1的ABA营养液处理后的玉米根、茎和叶片的木质部汁液中蛋白质含量都升高;而用2 mmol·L-1EGTA、80 mmol·L-1三氟啦嗪或100mmol·L-1异博定处理后的木质部汁液中蛋白质含量变化不明显.  相似文献   

9.
植物根部受到干旱胁迫时,由茎部产生的液压信号使茎部作出反应.液压传递根到茎之间的水分胁迫信号.土壤干旱引起茎中场所产生液压反应,然后产生ABA信号,引起气孔关闭.在不同植物中,减弱液压反应,阻止干旱信号的长距离传导,气孔不能关闭.  相似文献   

10.
木质部液流的碱化:一个综合的干旱胁迫响应信号   总被引:2,自引:0,他引:2  
土壤干旱会改变植物木质部液流的离子组成,引起木质部碱化,提高液流的pH值。因而认为木质部液流碱化是诱使叶上气孔关闭的最可能的根源土壤干旱信号。本文章介绍了这一领域的研究进展。  相似文献   

11.
Early signals potentially regulating leaf growth and stomatal aperture in field-grown maize (Zea mays L.) subjected to drought were investigated. Plants grown in a field lysimeter on two soil types were subjected to progressive drought during vegetative growth. Leaf ABA content, water status, extension rate, conductance, photosynthesis, nitrogen content, and xylem sap composition were measured daily. Maize responded similarly to progressive drought on both soil types. Effects on loam were less pronounced than on sand. Relative to fully-watered controls, xylem pH increased by about 0.2 units one day after withholding irrigation (DAWI) and conductivity decreased by about 0.25 mS cm(-1) 1-3 DAWI. Xylem nitrate, ammonium, and phosphate concentrations decreased by about 50% at 1-5 DAWI and potassium concentration decreased by about 50% at 7-8 DAWI. Xylem ABA concentration consistently increased by 45-70 pmol ml(-1) at 7 DAWI. Leaf extension rate decreased 5 DAWI, after the changes in xylem chemical composition had occurred. Leaf nitrogen significantly decreased 8-16 DAWI in droughted plants. Midday leaf water potential and photosynthesis were significantly decreased in droughted plants late in the drying period. Xylem nitrate concentration was the only ionic xylem sap component significantly correlated to increasing soil moisture deficit and decreasing leaf nitrogen concentration. Predawn leaf ABA content in droughted plants increased by 100-200 ng g(-1) dry weight at 7 DAWI coinciding with a decrease in stomatal conductance before any significant decrease in midday leaf water potential was observed. Based on the observed sequence, a chain of signal events is suggested eventually leading to stomatal closure and leaf surface reduction through interactive effects of reduced nitrogen supply and plant growth regulators under drought.  相似文献   

12.

Background and aims

Soil drying leads to the generation of chemical signals in plants that regulate water use via control of the stomatal aperture. The aim of our work was to identify the presence and identity of potential chemical signals, their dynamics, and their relationship with transpiration rate during soil drying in hop (Humulus lupulus (L.)) plants.

Methods

We used pressure chamber technique for measurement of shoot water potential and collection of shoot xylem sap. We analyzed concentrations of abscisic acid (ABA), nitrate, phosphate, sulphate and malate in sap and also the rate of whole plant transpiration.

Results

Transpiration rate decreased prior to changes in shoot water potential. The concentration of ABA in xylem sap continuously increased from early to later stages of water stress, whereas in leaves it increased only at later stages. Shoot sap pH increased simultaneously with the decrease of transpiration rate. Xylem sap alkalization was in some cases accompanied by a decrease in nitrate concentration and an increase in malate concentration. Concentration of sulphate increased in xylem sap during drying and sulphate in combination with a higher ABA concentration enhanced stomatal closure.

Conclusions

Several early chemical signals appear in sap of hop plants during soil drying and their impact on transpiration may vary according to the stage of soil drying.  相似文献   

13.
研究了周期性土壤干旱期间气孔对木质部ABA响应的灵敏度的变化以及叶片水势对灵敏度的影响。实验结果证明了木质部ABA浓度是反映根系周围土壤水分状况的一个指标的结论。土壤周期性干旱不影响木质部ABA浓度对土壤水分状况的依赖关系,但显著地提高了气孔对木质部ABA 响应的灵敏度。根据对实测数据的数学模拟结果显示,引起气孔导度下降50% 所需的木质部ABA浓度从第一轮土壤干旱的750 nmol/L降至第二轮土壤干旱的550 nmol/L。分根实验的结果表明,叶片水分亏缺显著提高了气孔对木质部ABA 的响应的灵敏程度,全根干旱中引起气孔导度下降50 % 所需的木质部ABA 浓度比半根干旱的小2 ~4 倍。这表明,气孔对木质部ABA响应的灵敏度不是一个固定的特性,可随植物生长环境及许多其他因素的变化而表现出很大的差异  相似文献   

14.
The study on the changes of stomatal sensitivity in relation to xylem ABA during periodical soil drying and the effect of leaf water status on the stomatal sensitivity has confirmed that xylem ABA concentration is a good indicator of soil water status around roots and the relation between xylem ABA concentration and predawn leaf water potential remained constant during the three consecutive soil drying cycles based on the slopes of the fitted lines. The sensitivity of stomata to xylem ABA increased substantially as the soil drying cycles progressed, and the xylem ABA concentration needed to cause a 50% decrease of stomatal conductance was as low as 550 mnoL/L in the next two soil drying cycle, as compared with the 750 nmol/L ABA in the first cycle of soil drying. The results using the split-root system showed that leaf water deficit significantly enhanced the stomatal response to xylem ABA and the xylem ABA concentration needed to cause a 50% decrease in stomatal conductance was 2 to 4 times smaller in the whole-root-drying treatment than those in the semi-root- drying treatment. These results suggested that the sensitivity of stomata to xylem ABA concentration is not a fixed characteristic.  相似文献   

15.
Stomatal sensitivity to root signals induced by soil drying may vary between environments and plant species. This is likely to be a result of the interactions and modulations ámong root signals. As a stress signal, abscisic acid (ABA) plays a central role in root to shoot signaling, pH and hydraulic signals may interact with ABA signals and thus, jointly regulate stomatal responses to changed soil water status, pH itself can be modified by several factors, among which the chemical compositions in the xylem stream and the live cells surrounding the vessels play crucial roles. In addition to the xylem pH, more attention should be paid to the direct modulation of leaf apoplastic pH, because many chemical compositions might strongly modify the leaf apoplastic pH while having no significant effect on the xylem pH. The direct modulation of the ABA signal intensity may be more important for the regulation of stomatal responses to soil drying than the ABA signal per se. The ABA signal is also regulated by the ABA catabolism and the supply of precursors to the roots if a sustained root to shoot communication of soil drying operates at the whole plant level. More importantly, ABA catabolism could play crucial roles in the determination of the fate of the ABA signal and thereby control the stomatal behavior of the root-sourced ABA signal.  相似文献   

16.
Stomatal sensitivity to root signals induced by soil drying may vary between environments and plant species. This is likely central role in root to shoot signaling. pH and hydraulic signals may interact with ABA signals and thus, jointly regulate stomatal responses to changed soil water status. pH itself can be modified by several factors, among which the chemical compositions In the xylem stream and the live cells surrounding the vessels play crucial roles. In addition to the xylem pH,more attention should be paid to the direct modulation of leaf apoplastic pH, because many chemical compositions might strongly modify the leaf apoplastlc pH while having no significant effect on the xylem pH. The direct modulation of the ABA signal intensity may be more important for the regulation of stomatal responses to soil drying than the ABA signal per se.The ABA signal is also regulated by the ABA catabolism and the supply of precursors to the roots If a sustained root to shoot communication of soil drying operates at the whole plant level. More importantly, ABA catabolism could play crucial roles In the determination of the fate of the ABA signal and thereby control the stomatal behavior of the root-sourced ABA signal.  相似文献   

17.
In this work we investigated the function of abscisic acid (ABA) as a long-distance chemical signal communicating water shortage from the root to the shoot in citrus plants. Experiments indicated that stomatal conductance, transpiration rates, and leaf water potential decline progressively with drought. ABA content in roots, leaves, and xylem sap was also increased by the drought stress treatment three- to sevenfold. The addition of norflurazon, an inhibitor of ABA biosynthesis, significantly decreased the intensity of the responses and reduced ABA content in roots and xylem fluid, but not in leaves. Polyethylene glycol (PEG)-induced osmotic stress caused similar effects and, in general, was counteracted only by norflurazon at the lowest concentration (10%). Partial defoliation was able to diminish only leaf ABA content (22.5%) at the highest PEG concentration (30%), probably through a reduction of the active sites of biosynthesis. At least under moderate drought (3–6 days without irrigation), mechanisms other than leaf ABA concentration were required to explain stomatal closure in response to limited soil water supply. Measurements of xylem sap pH revealed a progressive alkalinization through the drought condition (6.4 vs. 7.1), that was not counteracted with the addition of norflurazon. Moreover, in vitro treatment of detached leaves with buffers iso-osmotically adjusted at pH 7.1 significantly decreased stomatal conductance (more than 30%) as much as 70% when supplemented with ABA. Taken together, our results suggest that increased pH generated in drought-stressed roots is transmitted by the xylem sap to the leaves, triggering reductions in shoot water loss. The parallel rise in ABA concentration may act synergistically with pH alkalinization in xylem sap, with an initial response generated from the roots and further promotion by the stressed leaves.  相似文献   

18.
In this article we review evidence for a variety of long-distance signaling pathways involving hormones and nutrient ions moving in the xylem sap. We argue that ABA has a central role to play, at least in root-to-shoot drought stress signaling and the regulation of functioning, growth, and development of plants in drying soil. We also stress the importance of changes in the pH of the leaf cell apoplast as influenced both by edaphic and climatic variation, as a regulator of shoot growth and functioning, and we show how changes in xylem and apoplastic pH can affect the way in which ABA regulates stomatal behavior and growth. The sensitivity to drought of the pH/ABA sensing and signaling mechanism is emphasized. This allows regulation of plant growth, development and functioning, and particularly shoot water status, as distinct from stress lesions in growth and other processes as a reaction to perturbations such as soil drying.  相似文献   

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