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1.
大豆对臭氧、二氧化碳及其复合效应的响应   总被引:5,自引:0,他引:5  
以大豆‘中黄14'为试验材料,首次模拟研究大气中O3、CO2浓度增加,及其逐渐和持续增加O3、CO2浓度复合效应对大豆的影响.结果表明,CO2浓度增加可缓解O3对叶片的伤害程度,受害时间推迟,受害症状无实质性变化.熏气20 d测定各处理叶片生理参数发现,在本底大气环境下,叶片气孔阻力和蒸腾速率与对照差异较小,熏气时O3、CO2浓度增加诱导叶片气孔关闭,气孔阻力明显增加,蒸腾速率显著降低.与对照相比,O3浓度增加,大豆干物质积累、产量和收获指数明显降低,籽粒粗脂肪含量明显减少,粗蛋白含量显著增加;CO2浓度增加,干物质积累和产量显著提高,收获指数无明显差异,籽粒粗脂肪和粗蛋白含量均明显减少;逐渐和持续增加O3和CO2浓度复合效应处理下,大豆干物质积累、产量和收获指数差异不明显,籽粒粗蛋白含量不同程度地减少,粗脂肪含量显著增加.  相似文献   

2.
近地层高臭氧浓度对水稻生长发育影响研究进展   总被引:11,自引:0,他引:11  
臭氧(O3)被认为是最主要的空气污染物之一.目前地球对流层大气中平均O3浓度已经从工业革命前的38 nl·L-1(25~45 nl·L-1,夏季每天8 h平均)上升到2000年的50 nl·L-1,悲观估计到2100年近地层O3浓度将上升到80 nl·L-1.水稻是世界上最重要的粮食作物,准确评估近地层O3浓度升高对水稻生长发育的影响具有重要意义.本文从叶片伤害特征、光合作用、水分关系、生育期、物质生产与分配、叶片膜保护系统、籽粒产量及产量构成因素等方面,系统收集和整理了气室条件下(包括封闭气室、开放式气室)高O3浓度对水稻生长发育影响的研究进展,并对该领域有待深入研究的方向进行了展望.  相似文献   

3.
机械伤害和外源茉莉酸诱导豌豆幼苗H2O2系统性产生   总被引:1,自引:0,他引:1  
以豌豆(Pisum sativum L.)幼苗为试材, 采用DAB组织染色、CeCl3细胞化学染色和TiCl4显色等多种方法, 跟踪了伤害和外源茉莉酸(jasmonic acid, JA)处理后H2O2的时空动态变化. 结果显示, 伤害和外施JA可以诱导H2O2系统性产生, 无论是伤害叶片、邻近未伤害叶片还是低节位远端叶片, 伤害处理后1 h, H2O2含量即有所增加, 3~5 h后H2O2含量达到最大, 随后开始下降, 至处理后12 h, H2O2含量基本恢复到对照水平; 相应地, 伤害和JA处理后, 抗氧化酶类活性迅速提高; NADPH氧化酶抑制剂二苯基碘(diphenylene iodonium, DPI)可以显著抑制伤害和JA诱导的H2O2迸发. H2O2亚细胞定位结果显示, 伤害和JA诱导产生的H2O2主要分布于质膜、细胞壁和细胞间隙. JA的胶体金免疫电子显微镜定位结果表明, 伤害后JA含量迅速增加, 显示在叶肉细胞的细胞壁和韧皮部筛管与伴胞分子中金颗粒数量明显增加.  相似文献   

4.
近地层臭氧浓度升高对杂交稻颖花形成的影响   总被引:2,自引:0,他引:2  
依托全球唯一的稻田开放式空气中臭氧浓度增高系统平台,以汕优63和两优培九为供试材料,设置大气背景臭氧浓度和高臭氧浓度(比大气背景臭氧浓度高50%)两个浓度水平,研究FACE条件下高O3浓度对杂交稻颖花形成的影响.结果表明:高O3浓度使汕优63和两优培九每穗颖花数分别减少28朵和34朵,下降幅度分别为15%和13%.从稻穗构成看,高O3浓度胁迫下杂交稻每穗颖花数减少主要与每穗2次枝梗颖花数明显减少有关,对每穗1次枝梗颖花数的影响较小,因此高O3浓度胁迫下水稻每穗1次枝梗颖花数占全穗的比率增加,每穗2次枝梗颖花数占全穗的比率降低.从颖花形成看,高O3浓度胁迫下杂交稻每穗颖花数下降主要是颖花(特别是2次颖花)的分化受到抑制所致,而颖花的退化数不增反降.上述结果表明,采取相应措施削弱高O3浓度胁迫对颖花分化的抑制作用可能是近地层高O3浓度条件下减少杂交稻产量损失的关键.  相似文献   

5.
 以日本引进的设施专用耐盐茄(Solanum melongena)品种‘Torvum Vigor’为砧木, 栽培茄(S. torvum)品种‘苏崎茄’为接穗, 用营养液栽培, 对80 mmol&;#8226;L–1 Ca(NO3)2胁迫下茄子嫁接苗和自根苗叶片抗坏血酸-谷胱甘肽循环系统中抗氧化酶活性和抗氧化物及H2O2含量进行比较。结果表明, Ca(NO3)2胁迫下茄子幼苗叶片H2O2含量有所增加, 但嫁接苗叶片H2O2含量显著低于自根苗。Ca(NO3)2胁迫下嫁接苗叶片抗氧化酶(APX、DHAR和GR)活性、AsA和GSH再生率、氧化还原力(AsA/DHA值和GSH/GSSG值)均显著高于自根苗。综上所述, Ca(NO3)2胁迫下嫁接苗保持良好的AsA-GSH循环效率, 清除H2O2效率较高, 细胞受氧化损伤程度较轻, 表现出较强的耐盐性。  相似文献   

6.
以4年生南方红豆杉幼苗为实验材料,通过对南方红豆杉幼苗喷施不同浓度外源一氧化氮(NO)供体硝普钠溶液(0、0.01、0.1、0.5和1 mmol·L-1SNP),测定光合色素含量、抗氧化酶活性、丙二醛(MDA)含量和过氧化氢(H2O2)含量等生理指标,以探讨不同浓度外源NO对南方红豆杉叶片光合色素和抗氧化酶的影响。结果表明:喷施低浓度(0.01、0.1 mmol·L-1)SNP可显著提高南方红豆杉叶片的叶绿素a、叶绿素b、类胡萝卜素和总叶绿素含量,增加叶绿素a/b的比值,而喷施高浓度(0.5、1 mmol·L-1)SNP降低了叶片的光合色素含量。随着外源NO供体浓度的增加,叶片过氧化氢酶(CAT)活性显著增加,过氧化物酶(POD)活性先增加后降低。此外,处理前期,低浓度SNP处理明显提高了抗坏血酸过氧化物酶(APX)活性,而高浓度SNP处理显著降低了APX活性,处理后期APX活性随SNP浓度的增加而显著下降。喷施低浓度SNP可有效提高超氧化物歧化酶(SOD)活性和增加可溶性蛋白含量,降低MDA和H2O2的含量,而喷施高浓度SNP显著增加了MDA和H2O2的含量。因此,低浓度的SNP(<0.5 mmol·L-1)处理南方红豆杉幼苗,可增加其叶绿素含量,提高抗氧化酶活性,降低MDA和H2O2的含量,而高浓度的SNP(≥0.5 mmol·L-1)处理会降低叶绿素含量,提高H2O2含量,增加细胞膜质过氧化程度,从而对南方红豆杉幼苗造成一定伤害。  相似文献   

7.
外源亚精胺和精胺对NaHCO3胁迫下南蛇藤抗氧化系统的影响   总被引:1,自引:0,他引:1  
研究了叶面喷施亚精胺和精胺对NaHCO3胁迫下南蛇藤叶片抗氧化系统的影响.结果表明:外源亚精胺和精胺处理使NaHCO3胁迫下南蛇藤叶片O2-·产生速率、H2O2、丙二醛(MDA)含量和电解质外渗率显著降低(P<0.05).亚精胺处理明显提高了盐胁迫下超氧化物歧化酶(SOD)、过氧化氢酶(CAT)、过氧化物酶(POD)和抗坏血酸过氧化物酶(APX)等抗氧化酶的活性,以及还原型谷胱甘肽(GSH)、类胡萝卜素(CAR)和脯氨酸(Pro)等抗氧化剂的含量,但对还原型抗坏血酸(AsA)含量没有作用;精胺处理明显提高NaHCO3胁迫下POD和APX的活性以及GSH、CAR和Pro的含量,但对SOD和AsA含量影响不显著,甚至引起CAT活性明显降低.亚精胺和精胺处理明显改善了NaHCO3胁迫下南蛇藤的生长.外源亚精胺和精胺可以改善NaHCO3胁迫下南蛇藤叶片的膜保护功能,减少叶片中活性氧的积累,从而提高南蛇藤对NaHCO3胁迫的抗性.  相似文献   

8.
植物细胞H2O2的信号转导途径   总被引:9,自引:0,他引:9  
光、环境胁迫和植物激素ABA可以引起植物体内H2O2升高, 而H2O2作为一个较早进化出来的信号分子, 不仅在诱导氧化性光合作用中起了关键的作用, 并且可以调节诸如气孔运动、超敏反应、细胞凋亡和基因表达等许多过程. 细胞内H2O2浓度必须维持在一种精细平衡状态, 它一方面可以通过质膜氧化还原系统和光呼吸系统产生, 另一方面也存在完善的清除机制. H2O2从质外体或者产生源进入细胞, 然后进入亚细胞区域. H2O2可以调节信号转导蛋白, 如蛋白质磷酸化酶、转录因子、以及位于质膜或其它膜上的Ca2+通道. 其中, 蛋白质可逆磷酸化可启动细胞质和细胞核的下游信号转导, 通过影响转录因子而影响基因的表达; 转录因子通过氧化而激活自身或诱导其定向转运至细胞核内. 然而, H2O2作为信号分子的研究相对处于“年轻”阶段, 诸如细胞如何感受H2O2, 以及在细胞感受H2O2信号转导过程中哪种细胞过程是最主要的或是限速步骤, 何种基因对H2O2是特异和必需的等问题仍然所知甚少, 这些问题的破解依赖于功能基因组学和遗传学分析.  相似文献   

9.
长距离信号传递是动物生命活动的基础. 然而, 对长距离信号传递在植物生命活动中的存在和意义的了解却十分贫乏. 以模式植物鸭趾草(Commelina communis L.)为材料, 对热击信号在根系与地上部分之间的长距离信息交流进行了研究. 结果表明, 在热击胁迫下, 鸭趾草可以通过“根-冠”间的信号传输实现对气孔运动的调节. 对局部根系(1/4或1/2根系)在40℃下热击5 min, 即可导致气孔导性的急剧下降. 气孔导性下降的程度取决于热击温度和热击根系总量, 热击温度越高、热击根系的量越大, 气孔导性下降的程度也就越大. 有趣的是, 热击信号对气孔运动的调控是振荡式的, 当气孔导性在30 min内下降到最低水平后, 气孔导性会迅速回升, 有时甚至超过热击前的水平. 经过几个周期后, 气孔导性会最终稳定在一个较低的水平. 给离体叶片饲喂热击后的木质部汁液可导致气孔导性下降, 说明气孔运动是由正的化学信号操纵的. 进一步研究表明, 热击并不影响木质部汁液中脱落酸(abscisic acid, ABA)的浓度, 同时也不导致叶片水势下降, 说明气孔运动并不是通过ABA信号或水信号实现的. 热击导致蒸腾流中H2O2水平升高, 同时过氧化氢酶可部分恢复热击蒸腾流对气孔运动的抑制, 这意味着H2O2有可能作为热击信号之一在气孔运动中起着部分的调节作用. 由于热击和干旱常是相互伴随的两种自然胁迫, 热击胁迫下气孔运动的调节对植物的生命活动应该具有积极的意义. 这一新的信号传递形式及特殊的气孔振荡调控方式的发现将有助于更加深入地揭示植物系统信息传递的奥秘.  相似文献   

10.
低温弱光胁迫对日光温室栽培杏树光系统功能的影响   总被引:4,自引:0,他引:4  
以温室栽培的金太阳杏为材料,测定了金太阳杏叶片光合速率(Pn)、光系统Ⅱ(PSⅡ)光下实际光化学效率(ΦPSⅡ)、光化学猝灭系数(qP)和开放的PSⅡ反应中心的激发能捕获效率(Fv/Fm), 探讨了低温弱光(7 ℃、200 μmol·m-2·s-1 PFD)对叶片光系统Ⅰ(PSⅠ)和PSⅡ的抑制作用.结果表明:温室栽培的金太阳杏叶光合作用的最适温度在25 ℃左右.光下7 ℃的低温可使叶片净光合速率(Pn)大幅下降,造成激发压(1-qP)增大,进而引起光抑制.低温弱光条件使PSⅠ和PSⅡ功能受到破坏,与单纯低温胁迫(7 ℃,黑暗)处理相比,经低温、弱光(7 ℃, 200 μmol·m-2·s-1PFD)胁迫2 h后,PSⅠ活性下降了28.26%,而PSⅡ最大光化学效率(Fv/Fm)没有发生显著变化,表明低温弱光条件下PSⅠ比PSⅡ 更易发生光抑制.  相似文献   

11.
To assess photosynthesis and yield components’ response of field-grown wheat to increasing ozone (O3) concentration (based on diurnal pattern of ambient O3) in China, winter wheat (Triticum aestivum L.) cv. Jia 403 was planted in open top chambers and exposed to three different O3 concentrations: O3-free air (CF), ambient air (NF), and O3-free air with additional O3 (CF+O3). Diurnal changes of gas exchange and net photosynthetic rate (P N) in response to photosynthetic photon flux density (PPFD) of flag leaves were measured at the filling grain stage, and yield components were investigated at harvest. High O3 concentration altered diurnal course of gas exchange [P N, stomatal conductance (g s), and intercellular CO2 concentration (C i)] and decreased significantly their values except for C i. Apparent quantum yield (AQY), compensation irradiance (CI), and saturation irradiance (SI) were significantly decreased, suggesting photosynthetic capacity was also altered, characterized as reduced photon-saturated photosynthetic rate (P Nmax). The limit of photosynthetic activity was probably dominated by non-stomatal factors in combination with stomatal closure. The significant reduction in yield was observed in CF+O3 treatment as a result of a marked decrease in the ear length and the number of grains per ear, and a significant increase in the number of infertile florets per ear. Even though similar responses were also observed in plants exposed to ambient O3 concentration, no statistical difference was observed at current ambient O3 concentration in China.  相似文献   

12.
Spring wheat cv. Minaret was grown under three carbon dioxide(CO2) and two ozone (O3) concentrations from seedling emergenceto maturity in open-top chambers. Under elevated CO2 concentrations,the green leaf area index of the main shoot was increased, largelydue to an increase in green leaf area duration. Biomass increasedlinearly in response to increasing CO2 (ambient, 550 and 680ppm). At anthesis, stem and ear dry weights and plant heightwere increased by up to 174%, 5% and 9 cm, respectively, andbiomass at maturity was 23% greater in the 680 ppm treatmentas compared to the ambient control. Grain numbers per spikeletand per ear were increased by 0.2 and 5 grains, respectively,and this, coupled with a higher number of ears bearing tillers,increased grain yield by up to 33%. Exposure to a 7 h daily mean O3 concentration of 60 ppb inducedpremature leaf senescence during early vegetative growth (leaves1–7) under ambient CO2 concentrations. Damage to the mainshoot and possible seedling mortality during the first 3 weeksof exposure altered canopy structure and increased the proportionof tillers 1 and 2 which survived to produce ears at maturitywas increased; as a result, grain yield was not significantlyaffected. In contrast to the older leaves, the flag leaf (leaf8) sustained no visible O3 damage, and mean grain yield perear was not affected. Interactions between elevated CO2 andO3 influenced the severity of visible leaf damage (leaves 1–7),with elevated CO2 apparently protecting against O3-induced prematuresenescence during early vegetative growth. The data suggestthat the flag leaf of Minaret, a major source of assimilateduring grain fill, may be relatively insensitive to O3 exposure.Possible mechanisms involved in damage and/or recovery are discussed. Key words: Carbon dioxide, ozone, spring wheat (cv. Minaret), leaf damage, tiller, yield  相似文献   

13.
To clarify the relationship between cultivar difference in the sensitivity of net photosynthesis to ozone (O(3) ) and the reactive oxygen species (ROS) scavenging system in wheat (Triticum aestivum), we investigated the effects of chronic exposure to ambient levels of O(3) on gas exchange rates, activity and concentration of ribulose 1,5-bisphosphate carboxylase/oxygenase (Rubisco), activity of ROS scavenging enzymes and concentration of antioxidants of the flag leaf in two Japanese winter wheat cultivars (Norin 61 and Shirogane-komugi). Although the net photosynthetic rate of the flag leaf in Norin 61 was not significantly reduced by exposure to O(3) , that in Shirogane-komugi was significantly reduced by the exposure to O(3) during the anthesis and early grain-filling stages. In the two cultivars, stomatal diffusive conductance to H(2) O of the flag leaf was not significantly affected by the exposure to O(3) . The exposure to O(3) induced significant reductions in the activity and concentration of Rubisco, activities of catalase (CAT) and monodehydroascorbate reductase (MDAR) and concentrations of reduced form of ascorbate and total glutathione of the flag leaf in Shirogane-komugi. It was concluded that the sensitivity of net photosynthesis of flag leaf to O(3) is higher in Shirogane-komugi than in Norin 61, and the difference in the sensitivity to O(3) between the two cultivars is mainly due to that in the effects of O(3) on the detoxification ability of ROS, mainly determined by the activity of ROS scavenging enzymes, such as CAT and MDAR.  相似文献   

14.
Net photosynthesis and leaf growth were determined for Rumexpatientia L. exposed to four levels of u.v.-B irradiation (280–315nm). When weighted for biological effectiveness u.v.-BBE thelowest level of this radiation employed, was less than thatcalculated for normal cloudless days in April. This resultedin detectable depressions of photosynthesis and leaf growth.Reciprocity was demonstrated in the reduction of photosynthesisby u.v.-BBE. However, unlike photosynthesis, reduction of leafexpansion by u.v.-BBE did not show a reciprocal mode of action.Leaf expansion was reduced as a function of the level of u.v.-BBEand only during the initial days of exposure. A model was developed to predict reductions of net photosynthesisand leaf expansion rates under increased u.v.-BBE correspondingto any atmospheric ozone concentration reduction. After 35 dsimulation, the calculated reductions in photosynthetic ratesfor a leaf initiated on June 1 were 6, 21, and 42 percent foru.v.-BBE corresponding to atmospheric ozone reductions of 5,15, and 40 percent, respectively. Predicted reductions in photosyntheticcapacity and leaf expansion rates for leaves active before Junewere less severe. This is due to the lower normal u.v.-BBE atthis time of year because of greater angles from the zenithand higher atmospheric ozone concentrations. A test of the modelshowed a good correspondence between the predicted and measuredreduction in photosynthesis of leaves exposed to supplementalu.v.-BBE irradiation under field conditions.  相似文献   

15.
不同小麦进化材料生育后期光合特性和产量   总被引:12,自引:0,他引:12       下载免费PDF全文
以二倍体野生一粒小麦(Triticum boeoticum)、栽培一粒小麦(T. monococcum)、节节麦(Aegilops tauschii)和黑麦(Secale cereale)、四倍体野生二粒小麦(T. dicoccoides)、栽培二粒小麦(T. dicoccum)、硬粒小麦(T. durum)、六倍体普通小麦(T. aestivum)‘扬麦9号’和‘扬麦158’及八倍体小黑麦(Triticale)为材料,采用盆栽试验研究了不同小麦进化材料生育后期旗叶光合特性的演变及产量的差异。结果表明,与六倍体普通小麦和八倍体小黑麦相比,二倍体和四倍体材料在开花前具有较高的光合速率(Pn)、气孔导度(Gs)、最大光能转换效率(Fv/Fm)和实际光化学效率(ΦPSⅡ)。开花以后,二倍体和四倍体材料受非气孔因素的影响,光合能力下降较快;除黑麦外,旗叶光合速率在开花10 d后都低于普通小麦和小黑麦,胞间CO2浓度(Ci)迅速增加,Fv/FmΦPSⅡ和叶绿素含量快速下降。二倍体和四倍体材料开花前单株总叶面积和旗叶叶面积较大,花后下降迅速,功能期短;单株穗数也较多,但穗粒数、千粒重、产量和收获指数却显著低于普通小麦。因此,小麦长期进化过程中,普通小麦花后较高的光合能力及较长的光合持续期是提高千粒重,进而提高产量的重要生理基础。  相似文献   

16.
Previous studies have shown that short exposure of plants to high doses of ozone decreases subsequent photosynthesis; initially by reducing carboxylation capacity. This study tests the hypothesis that this is also the primary cause of loss of photosynthetic capacity in leaves affected by development under a low level of ozone. Triticum aestivum and Pisum sativum plants were exposed from germination to ozone in air (80 nmol mol-1 for 7 hours per day, for 18 days. Leaves that had completed lamina expansion at this time were free of visible injury and light absorptance was unaffected. However, some significant changes in photosynthetic gas exchange were evident. Photosynthetic CO2 uptake at light saturation was decreased significantly by 35% in T. aestivum but was unchanged in P. sativum. The reduction in photosynthesis of T. aestivum was accompanied by a 31% decline in the maximum velocity of carboxylation measured in vivo. Decreased stomatal conductance did not contribute to this reduction of photosynthesis because there was no significant change in the stomatal limitation to CO2. Processes directly dependent upon photochemical reactions; that is, the quantum yield of CO2 uptake and capacity for regeneration of ribulose 1,5-bisphosphate were not affected by O3 fumigation in either species. This suggests that for wheat, the quantitative cause of decreased photosynthetic rate in vivo is a decrease in the quantity of active ribulose-1,5- bisphosphate carboxylase-oxygenase.  相似文献   

17.
Two modern cultivars [Yangmai16 (Y16) and Yangfumai 2 (Y2)] of winter wheat (Triticum aestivum L.) with almost identical phenology were investigated to determine the impacts of elevated ozone concentration (E‐O3) on physiological characters related to photosynthesis under fully open‐air field conditions in China. The plants were exposed from the initiation of tillering to final harvest, with E‐O3 of 127% of the ambient ozone concentration (A‐O3). Measurements of pigments, gas exchange rates, chlorophyll a fluorescence and lipid oxidation were made in three replicated plots throughout flag leaf development. In cultivar Y2, E‐O3 significantly accelerated leaf senescence, as indicated by increased lipid oxidation as well as faster declines in pigment amounts and photosynthetic rates. The lower photosynthetic rates were mainly due to nonstomatal factors, e.g. lower maximum carboxylation capacity, electron transport rates and light energy distribution. In cultivar Y16, by contrast, the effects of E‐O3 were observed only at the very last stage of flag leaf ageing. Since the two cultivars had almost identical phenology and very similar leaf stomatal conductance before senescence, the greater impacts of E‐O3 on cultivars Y2 than Y16 cannot be explained by differential ozone uptake. Our findings will be useful for scientists to select O3‐tolerant wheat cultivars against the rising surface [O3] in East and South Asia.  相似文献   

18.
灌水对小麦旗叶光合功能衰退的影响   总被引:17,自引:2,他引:15  
利用田间小区试验研究了不同灌水对冬小麦旗叶光合功能衰退的影响。研究表明:小麦旗叶光合衰退初期引起光合下降的原因主要是气孔限制,后期则为非气孔限制。灌水可提高旗叶光合速率,并使由气孔限制非气孔转变的时间推后,同时,还可增加叶绿素含量,增强根活力,使小麦旗叶光合功能持续期延长,过量灌水改善旗叶光合速衰的效果主要表现在后期,对产量提高的意义并不大。  相似文献   

19.
施氮肥缓解臭氧对小麦光合作用和产量的影响   总被引:3,自引:0,他引:3       下载免费PDF全文
以小麦(Triticum aestivum)品种‘扬麦16’为试材, 利用开放式空气臭氧(O3)浓度升高平台, 研究了增施氮(N)肥对O3对小麦光合作用和产量影响的缓解作用。结果表明, O3胁迫下灌浆期小麦的净光合速率(Pn)、气孔导度(Gs)、蒸腾速率(Tr)、叶绿素a (Chl a)、叶绿素b (Chl b)、类胡萝卜素(Car)、总叶绿素含量(Chl t)和可溶性蛋白的含量显著降低, 降幅分别为28.95%、31.79%、23.17%、58.89%、68.64%、22.89%、60.31%和32.00%; 胞间CO2浓度(Ci)变化很小; 成熟期生物量和收获时产量也明显下降, 降幅分别为12.23%和12.63%; 而增施N肥可以增加小麦灌浆期的Pn、Chl a、Chl b、可溶性蛋白的含量, 进而增加小麦生物量和产量, 增幅分别为25.66%、83.05%、121.57%、30.33%、14.94%和10.67%, 而对CiGsTr、Car含量无明显影响。O3和N肥对小麦叶片的Pn、Chl t及可溶性蛋白含量有明显的交互作用。因此, 在大气O3浓度升高条件下增施N肥对小麦O3损伤有一定的缓解作用。  相似文献   

20.
It has been predicted that the concentration of CO2in the aircould double during the 21st century. Though it is recognizedthat CO2-doubling could increase yield through its effects onplant photosynthesis and stomatal behaviour, it is unclear whetherCO2-doubling will change phasic development in wheat. A phytotronstudy was conducted with two contrasting cultivars of wheat,Condor (spring) and Cappelle Desprez (winter), to determinewhether development is affected by a season-long exposure to360 and 720 ppmv CO2. Plants were vernalized for 50 d (8/4 °C,8 h photoperiod) before their exposure to the CO2treatments. There were significant differences between cultivars in theduration of different phenophases as well as in the final numberof leaves. However, CO2concentration had no effect in eithercultivar on the duration of the early developmental phase toterminal spikelet initiation, or on the final number of leaves,though CO2-doubling did slightly increase the later phase fromterminal spikelet initiation to heading in Cappelle Desprez.Condor and Cappelle Desprez also differed markedly in the dynamicsof leaf appearance. While the former had a constant rate ofleaf appearance throughout development, the latter had a fastrate initially (between leaves 1 and 7), similar to that ofCondor, which was followed by a slower rate after the appearanceof leaf 7. Overall, CO2-doubling did not significantly affectthe rates of leaf appearance nor the shape of the relationship.Phyllochron for the first seven leaves was the same for bothCO2concentrations. However, the change in phyllochron associatedwith CO2-doubling for leaves 7–12 in Cappelle Desprez,although quite small (4%), accounts for part of the slightlyincreased duration of the phase from terminal spikelet initiationto heading under high CO2concentration in that cultivar. Weconclude that CO2concentration does not influence developmentin wheat to a degree relevant to agronomy. Carbon dioxide; climatic change; development; leaf number; phyllochron  相似文献   

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