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1.
依据干旱胁迫下数种植物幼苗体内游离脯氨酸、叶气孔、叶水量的变化,剖析了植物与环境因子、气孔因子、氧气因子、酶因子及能量因子之间的相互依存关系,提出了PRO积累系统(PAS)。认为水分胁迫下植物体内PRO的大量积累是氧化受抑和合成受激共同调控的结果。氧气最有可能为直接触发因子。  相似文献   
2.
We previously reported an alfalfa half‐sib family, HS‐B, with improved salt tolerance, compared to parental plants, P‐B. In this study, we conducted additional experiments to address potential physiological mechanisms that may contribute to salt tolerance in HS‐B. Vegetatively propagated HS‐B and P‐B plants were treated with a nutrient solution (control) or a nutrient solution containing NaCl (EC = 12 dS/m). Shoots and roots were harvested at various time points after treatment for quantification of proline, soluble sugar, and H2O2 using spectrophotometers. Subcellular localization and quantification of Na in roots were conducted using a Na+‐specific dye under a confocal microscope. HS‐B produced 86 and 89% greater shoot and root dry biomass, respectively, compared to parental plants, P‐B, under salinity in the greenhouse. Under saline conditions the HS‐B shoots accumulated 115% and roots 55% more soluble sugars than P‐B counterparts. The non‐saline HS‐B shoots, however, showed 72% less soluble sugars than the non‐saline P‐B plants. Under saline conditions HS‐B accumulated 39% less proline in shoots, while roots accumulated 56% more proline, compared to their P‐B parents. HS‐B plants also showed a greater reduction of stomatal conductance under mild saline stress. HS‐B shoots and roots contained 3–4 times less reactive oxygen species (H2O2) after salt treatment compared to P‐B plants. Sodium localization and distribution analysis using Na+‐specific dye revealed HS‐B plants accumulated 88% and 48% less Na+ in stele and xylem vessels compared to P‐B. The study provides insights into the potential mechanisms that may contribute to salt tolerance in HS‐B: maintaining RWC by accumulating soluble sugars while reducing transpiration, maintaining healthy status by reducing oxidative stresses, and preventing salt toxicity by reducing accumulation of Na+ inside root cells and xylem.  相似文献   
3.
An accurate estimation of stomatal resistance (rS) also under drought stress conditions is of pivotal importance for any process‐based prediction of transpiration and the energy budget of real crop canopies and quantification of drought stress. A new model for rS was developed and parameterized for winter wheat using data from field experiments accounting for the influences of net radiation (RNet), air temperature (TAir) and vapour pressure deficit of the atmosphere (VPD) interacting with an average water potential in the rooted soil (ψRootedSoil). rS is simulated with a limiting factor approach as maximum of the metabolic (related to photosynthesis) and hydraulic (related to drought stress) acting influences assuming that, if drought stress occurs, it will dominate stomatal control: rS = max(rS(TAir), rS(RNet), rS(VPD, ψRootedSoil)). This transitional approach is suited to reproduce measured daily time courses of rS with a varying accuracy for the single measurement dates but performed satisfactorily for the whole data set (r2 = 0.63, RMSE = 59 s m?1, EF = 0.60). This new semi‐empiric approach calculates rS directly from external environmental conditions. Therefore, it can be easily implemented in existing model frameworks as link between operational crop growth models that use the concept of radiation use efficiency instead of mechanistic photosynthesis modelling and soil–vegetation–atmosphere transport models.  相似文献   
4.
A comparison was made of the effects of abscisic acid (ABA) and the ABA biosynthesis inhibitor, norflurazon on the interaction between soybean leaves and Phytophthora sojae. Inoculation of leaves of cv. Harosoy resulted in a compatible interaction typified by the presence of spreading, water soaked lesions with ill-defined margins while inoculation of cv. Haro 1272 resulted in an incompatible interaction with lesions restricted to the inoculation site. Activity of phenylalanine ammonia lyase (PAL) slowly increased in the compatible interaction but in the incompatible interaction there was a rapid rise in activity within 8h after inoculation. When Haro 1272 plants were treated with ABA the normally incompatible interaction with race 1 was changed to what resembled a compatible interaction and activity of PAL was reduced to control levels. There was no visible effect on the compatible combination. In contrast when plants of cv. Harosoy were treated with norflurazon the normally compatible interaction with race 1 was changed to that which resembled an incompatible interaction and PAL activity increased to high levels rapidly. There was no effect of norflurazon on the incompatible interaction of cv. Haro 1272 with race 1. Stomata on leaves of cv. Harosoy treated with norflurazon closed within 2h of inoculation resembling the response of stomata in normal incompatible interactions but not compatible interactions where stomata remained open. On leaves of cv. Harosoy treated with norflurazon at sites 3 and 20mm from the inoculation point stomata also closed. These results extend and confirm the idea that ABA is a molecule that may regulate the outcome of the interaction between soybeans and P. sojae.  相似文献   
5.
气孔与苜蓿品种对白粉病抗性的关系   总被引:6,自引:2,他引:4  
通过从来源不同国家和地区的9个紫花苜蓿品种对白粉病的田间抗性评价,室内苗期接种统计和气孔的观察,结果表明,不同品种对白粉病的抗性达极显著水平,而品种间气孔密度(气孔数/mm2)和气孔口长度(μm)差异不显著,经相关分析,二者与品种对白粉病的抗性无关。  相似文献   
6.
以青钱柳1年生幼苗为对象,研究光照和施肥对其复叶性状、气孔特征和叶片解剖结构的影响。结果表明,光照及光照和施肥2因子的交互作用对叶片性状和解剖结构各指标有显著或极显著影响,施肥仅对叶片厚度有显著影响;全光照下青钱柳叶面积最小,叶片较厚,栅栏组织和海绵组织排列紧密,叶片气孔小而密;光照强度减弱使叶片面积增加,叶片变薄,比叶质量下降,气孔密度减小,气孔变长变宽;全光照下,复叶面积、复叶干质量和比叶质量随施肥量增加而增加,叶片厚度也有一定的增加。中等光照下施肥20 g/株处理的复叶面积和复叶干质量最大,说明中等光照且适量施肥是青钱柳幼苗生长的最佳条件。  相似文献   
7.
[目的]研究不同土壤干旱生境中保水剂对黄瓜根系和叶片生理特征的影响,探讨其生长效应与土壤水分的内在联系,为保水剂的合理施用和农田科学灌溉等提供一定的技术参考。[方法]利用盆栽模拟试验,通过定量灌水,系统研究在3种不同的土壤水分条件下,保水剂对黄瓜根际水分、根系形态特征、叶绿素荧光参数和叶片气孔性状等生理特性的影响。[结果](1)不同水分条件下,保水剂处理的黄瓜根系生长受到明显抑制。与对照相比,保水剂处理组在土壤含水量为田间持水量70%(FC2)和55%(FC3)时的总根长、平均根系直径、总根体积、根表面积和根干重均显著降低,分别降低了3.4%,24.2%,62.1%,41.0%和51.6%以上。(2)随着干旱胁迫的加剧,保水剂处理叶片的有效光合效率(Fv′/Fm′)和实际量子产量[Y(Ⅱ)]较对照出现先升后降的变化趋势,非光化学淬灭(NPQ)则呈相反的变化;尤其在FC2和FC3处理时,保水剂处理促使黄瓜叶片的光化学淬灭(qP)较对照分...  相似文献   
8.
采用树脂包埋块半薄/超薄切片技术,通过光镜(LM)、扫描电镜(SEM)和透射电镜(TEM)方法,研究了轻度、中度和严重干旱胁迫对楸子(Malus prunifolia)、新疆野苹果(M. sieversii)和平邑甜茶(M. hupehensis)叶片组织解剖结构、表皮微形态特征(气孔密度、大小及角质层厚度)及叶绿体超微结构的影响。光镜观察结果表明,与对照相比,干旱胁迫条件下3种苹果属植物叶片厚度、栅栏组织厚度及叶肉组织结构紧密度(CTR)都显著减小(P<0.05),而海绵组织厚度与叶肉组织结构疏松度(SR)均显著增加(P<0.05)。扫描电镜观察结果显示,3种苹果属植物幼叶气孔密度在干旱胁迫下显著增大(P<0.05),而气孔宽度、开张比及其开张度明显下降。透射电镜观察结果表明,在干旱胁迫下,楸子和新疆野苹果上下角质层厚度逐渐增加,而平邑甜茶的随干旱胁迫程度增加呈先增后减的变化;在轻度和中度水分胁迫下,叶绿体膨胀变形,淀粉粒变小消失,基粒片层排列松散减少,类囊体腔扩大;在严重胁迫条件下,叶绿体膨胀近圆形,叶绿体膜破裂,类囊体严重泡化开始解体。与平邑甜茶相比,严重水分胁迫下楸子和新疆野苹果叶绿体超微结构损伤较小,能较好地保持细胞结构的完整性。  相似文献   
9.
An analysis was made of the stomatal apparatus of the leaves of five Italian durum wheat varieties, grown under different natural rainfall regimes.Rainfall had a significant influence on both development of the leaves and frequency and size of the stomata. Results were examined with respect to yield stability. Correlations between examined traits were calculated.  相似文献   
10.
温室作物叶-气系统水流阻力研究初探   总被引:4,自引:2,他引:4  
温室作物叶-气系统水流阻力的确定对计算作物蒸腾量、制定温室作物灌溉制度以及调控温室小气候具有重要意义,但测量难度较大。该文通过对温室作物周围环境微气象条件的连续观测,计算分析了温室作物叶-气系统水流阻力各分项即叶片周围层流副层边界层阻力(rb)、冠层上方湍流边界层阻力(rg)、空气动力学阻力(re)和叶片气孔阻力(ri)的变化规律。结果表明:温室内rb比较稳定,平均约235 s/m,且与环境因素关系不甚密切;温室内黄瓜、西红柿类植物生殖生长期rg<b,在计算re时,rg的影响可忽略,取re≈rb;利用基于能量平衡方程和空气动力学方程得出的叶-气温差计算公式计算得到ri,符合其变化的一般规律;在此基础上计算了温室黄瓜的蒸腾速率,与实测值的一致性较好。  相似文献   
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