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1.
以水稻黄叶突变体为材料,进行高温胁迫处理(9:30~17:30,40℃;其它时间段与自然温度相同),研究高温胁迫对其剑叶光合特性和叶绿体超微结构的影响。结果表明:高温胁迫使水稻黄叶突变体剑叶净光合速率(Pn)、PSⅡ原初光化学效率(Fv/Fm)、PSⅡ光量子效率(фPSⅡ)和非循环光合电子传递速率(ETR)显著降低,初始荧光(F0)显著增加,同时使剑叶叶绿素、可溶性蛋白质含量显著降低,细胞膜透性显著增加,叶片的叶绿体内基粒和基质片层模糊、疏松,结构紊乱。研究发现,40℃高温胁迫致使水稻黄叶突变体剑叶叶绿体超微结构破坏,引起PSⅡ反应中心的光化学效率降低,最终造成叶片光合能力减弱。  相似文献   

2.
研究了水杨酸(SA)和茉莉酸甲酯(MeJA)处理对丹参(Salvia miltiorrhiza Bunge)幼苗叶片显微结构、叶片光合能力及幼苗中非结构糖积累的影响.结果显示:SA处理增加了丹参幼苗叶片气孔密度;叶肉细胞排列紧密、体积减小,叶肉细胞内叶绿体数目减少,但叶绿体体积增大,叶绿体基粒片层结构的数目增加;叶片中叶绿素a、b含量、叶气孔导度、蒸腾速率以及净光合速率均增加;同时,幼苗根中和叶片中酸性转化酶活性降低,幼苗地上部分蔗糖含量及可溶性糖总量显著高于对照.MeJA处理减少了叶片气孔密度,气孔发育畸形;叶肉细胞间隙增大,栅栏细胞层数减少,叶肉细胞内叶绿体数目减少,叶绿体体积减小,叶绿体基粒片层结构被破坏;叶片中叶绿素a及类胡萝卜素含量、叶片的净光合速率低于对照,叶气孔导度、蒸腾速率增强;同时,幼苗根中及叶中酸性转化酶活性增加,幼苗根中蔗糖含量及可溶性糖总量显著低于对照.可见,SA处理能促进植物叶片显微结构发育,增强叶片光合能力,抑制蔗糖降解并促进蔗糖积累;而MeJA处理则破坏了植物叶片显微结构,降低了叶片光合能力,促进了蔗糖降解并减少蔗糖积累.  相似文献   

3.
中华金叶榆子代苗光合特性及叶片呈色机制探讨   总被引:1,自引:0,他引:1  
中华金叶榆是普通白榆的天然黄叶突变体,黄叶性状在子代中可稳定遗传,自由授粉子一代出现黄绿性状分离。该研究以中华金叶榆子代黄叶苗和绿叶苗为试验材料,从生长速率、叶片色素含量、光合特性、叶绿素荧光及叶绿体超微结构等方面对黄叶苗的光合特性和叶片呈色机制进行了探讨。结果显示:(1)黄叶苗生长缓慢,净光合速率(12.5μmol·m-2·s-1)显著低于绿叶苗(17.5μmol·m-2·s-1),而蒸腾速率、气孔导度和叶片温度显著高于绿叶苗。(2)黄叶苗和绿叶苗叶片的光合色素种类基本相同,但黄叶苗的叶绿素a、叶绿素b、类胡萝卜素和花青素4种主要色素含量始终低于绿叶苗且相对稳定,各种色素含量在生育期内不同月份略有变化,类胡萝卜素含量始终低于叶绿素含量。(3)黄叶苗叶片光系统Ⅱ(PSⅡ)发育不完全,电子传递效率低。(4)黄叶苗叶绿体内膜系统发育紊乱,基粒垛叠失败。研究表明,中华金叶榆子代黄叶苗叶绿体内膜系统发育缺陷,基粒片层垛叠失败,进而多种色素含量大幅下降,光合系统发育不完全,致使其叶片呈现黄色、光合性能下降、植株生长缓慢。  相似文献   

4.
五节芒不同种群对Cd污染胁迫的光合生理响应   总被引:9,自引:0,他引:9  
秦建桥  夏北成  赵鹏 《生态学报》2010,30(2):288-299
通过盆栽模拟试验,以分别来自粤北大宝山矿区和惠州博罗非矿区的两个五节芒种群为试验材料,比较研究了两个种群在Cd胁迫下的气体交换参数、叶绿素荧光特性、光合色素含量和叶绿体超微结构变化的差异。结果表明:(1)Cd胁迫下五节芒两种群叶片净光合速率(Pn)、蒸腾速率(E)、气孔导度(Gs)、胞间二氧化碳浓度(Ci)、叶绿素含量(Chl)都有不同幅度的下降;叶绿体超微结构遭到破坏。矿区种群随Cd胁迫程度的加深,净光合速率下降较慢,叶绿体的外形及基粒结构受到的影响较小。(2)轻度Cd胁迫下气孔限制是五节芒非矿区种群Pn降低的主要因素,中度和重度Cd胁迫下非气孔限制是Pn降低的主要因素。(3)Cd胁迫下五节芒两种群PSⅡ反应中心最大光化学效率(Fv/Fm)、PSⅡ潜在活性(Fv/Fo)、PSⅡ有效光化学效率Fv′/Fm′均有所下降。总体上矿区种群降幅较小,PSⅡ利用光能的能力及PSⅡ的潜在活性均较强。PSⅡ光化学猝灭系数(qP)、非光化学猝灭系数(NPQ)的变化表现为Cd胁迫下两种群qP值降低、NPQ值升高,总体上抗性强的矿区种群qP降低的幅度低且NPQ升高幅度大。随着Cd胁迫浓度增加,矿区种群实际光化学反应效率(ΦPSⅡ)和电子传递速率(ETR)变化幅度不大,而非矿区种群显著下降,表明矿区种群PSⅡ反应中心电子传递活性受到的影响小,光合机构的损伤程度低。研究表明,五节芒矿区种群对重金属Cd有较强的耐受能力,适合作为金属矿区植被恢复建设的禾本科先锋物种。  相似文献   

5.
以文心兰浅绿条纹突变体为材料,分析叶片光合色素含量和组成、叶绿素合成前体物质含量以及叶绿素荧光参数的变化,观察突变体叶绿体超微结构的改变,以探寻其叶色变异的生理基础。结果表明:(1)突变体叶绿素a(Chl a)、叶绿素b(Chl b)、类胡萝卜素(Car)和总叶绿素(Chl)含量分别比叶色正常植株显著降低了37.1%、34.0%、30.8%和36.3%。(2)突变体叶绿素生物合成受阻于胆色素原(PBG)到尿卟啉原Ⅲ(UrogenⅢ)的反应步骤。(3)突变体叶绿体发育存在明显的缺陷,基粒数目及基粒片层的垛叠层数明显减少,嗜锇颗粒及囊泡较多。(4)突变体初始荧光(Fo)比正常植株高39%,最大荧光(Fm)、最大光化学效率(Fv/Fm)、PSⅡ有效光化学效率(Fv′/Fm′)和PSⅡ实际光化学效率(ΦPSⅡ)均显著低于正常植株,但光化学淬灭系数(qP)和非光化学淬灭系数(NPQ)与正常植株无显著差异。研究结果说明,文心兰叶绿素生物合成受阻和叶绿体结构发育不良,导致叶绿素的含量下降,致使突变体叶片呈现浅绿条纹,光能利用率降低。  相似文献   

6.
以番茄为试验材料,研究番茄黄化曲叶病毒(TYLCV)侵染对植株叶片叶绿素含量、净光合速率、气孔导度、胞间CO2浓度和叶绿体超微结构的影响.结果表明:TYLCV侵染番茄后,叶片叶绿素a、b以及总叶绿素含量分别下降50.2%、24.19%和43.84%,叶片净光合速率和气孔导度分别下降43.28%、27.07%,胞间CO2浓度增加13.04%.与健康叶片相比,叶绿体变形,叶绿体基质片层大部分消解,基粒结构消失,叶绿体外膜和内膜剥离,质壁分离和细胞膜内陷,细胞器消解.研究表明,TYLCV侵染破坏了番茄叶片的叶绿体结构,严重影响番茄叶片的光合作用.  相似文献   

7.
褚润  陈年来 《生态学杂志》2017,28(11):3515-3520
在UV-B辐照增强条件下,研究不同辐照梯度对芦苇光合特性、光合色素含量及叶绿体超微结构的影响. 结果表明: 与自然光照相比,UV-B辐照增强显著降低芦苇叶片净光合速率、气孔导度、蒸腾速率,且随辐照强度增大,降低程度加剧,胞间CO2浓度升高,光合效率显著降低;与自然光照相比,UV-B辐照增强显著降低芦苇叶片光合色素含量(包括叶绿素a、叶绿素b、总叶绿素和类胡萝卜素),且随辐照强度增大,降低程度加剧;UV-B辐射增强条件下,叶绿体超微结构遭到破坏,表现为叶绿体结构变形,类囊体片层排列稀疏紊乱、膨胀甚至模糊不清,并且UV-B辐射强度越大,损伤越大,高强度UV-B辐射对叶绿体超微结构的影响大于低强度辐射.  相似文献   

8.
 用氧电极仪、红外CO2气体分析仪及叶绿素荧光仪,结合透射电镜技术对几个杂种杨无性系在光胁迫下的光系统Ⅱ活性、光合色素及叶绿体超微结构进行了测定。随着预处理光强的增加,各无性系叶片的净光合速率和光系统Ⅱ放氧活性明显下降。二倍体无性系B11的光系统Ⅱ最大光化学效率(Fv/Fm)及实际光化学效率[(Fm′-F)/Fm′]高于两个三倍体无性系B346和B342。强光下三倍体无性系B346的非光化学淬灭远高于B342和二倍体无性系B11。叶绿素含量和光合速率没有明显的线性关系,叶绿素a/b含量在自然光胁迫下存在季节变化,受强光胁迫2个三倍体无性系的叶绿素a/b增大。预处理光强PFD超过3 000 μmol photons·m-2·s-1,各无性系的基粒类囊体片层结构遭到破坏,但二倍体无性系的类囊体片层结构受破坏程度较三倍体无性系轻。叶绿体蛋白合成抑制剂(硫酸链霉素,SM)可加剧叶绿体超微结构的破坏。  相似文献   

9.
韩瑞宏  卢欣石  高桂娟  杨秀娟 《生态学报》2007,27(12):5229-5237
紫花苜蓿是重要的豆科牧草,具有较强的抗旱性,然而干旱仍是制约紫花苜蓿生产的主要逆境因子。通过盆栽试验,以抗旱性强弱不同的两种紫花苜蓿为试验材料,对干旱胁迫下紫花苜蓿的光合生理进行较为系统的研究,结果表明:(1)干旱胁迫下两种紫花苜蓿叶片净光合速率(Pn)、蒸腾速率(E)、气孔导度(Gs)、叶绿素含量(Chl)都有不同幅度的下降;叶绿体超微结构遭到破坏。相对于抗旱性弱的苜蓿,抗旱性强的苜蓿随干旱胁迫程度的加深,净光合速率下降较慢,叶绿体的外形及基粒结构受到的影响较小。(2)轻度干旱胁迫下气孔限制是两种紫花苜蓿Pn降低的主要因素,中度和重度干旱胁迫下非气孔限制是Pn降低的主要因素。(3)对叶绿素荧光参数的研究表明:干旱胁迫下两种紫花苜蓿PSⅡ反应中心光化学效率(Fv/Fm)、PSⅡ潜在活性(Fv/Fo)降低。总体上抗旱性强的紫花苜蓿Fv/Fm和Fv/Fo下降幅度小,PSⅡ利用光能的能力及PSⅡ的潜在活性均较强。PSⅡ光化学淬灭系数(qP)、非光化学淬灭系数(qN)的变化表现为干旱胁迫下两种紫花苜蓿qP值降低、qN值升高,总体上抗旱性强的紫花苜蓿qP降低的幅度低且qN升高幅度大,表明抗旱性强的紫花苜蓿PSⅡ反应中心电子传递活性受到的影响小,光合机构的损伤程度低。  相似文献   

10.
紫花苜蓿(Medicago sativa)对干旱胁迫的光合生理响应   总被引:33,自引:3,他引:30  
韩瑞宏  卢欣石  高桂娟  杨秀娟 《生态学报》2007,27(12):5229-5237
紫花苜蓿是重要的豆科牧草,具有较强的抗旱性,然而干旱仍是制约紫花苜蓿生产的主要逆境因子。通过盆栽试验,以抗旱性强弱不同的两种紫花苜蓿为试验材料,对干旱胁迫下紫花苜蓿的光合生理进行较为系统的研究,结果表明:(1)干旱胁迫下两种紫花苜蓿叶片净光合速率(Pn)、蒸腾速率(E)、气孔导度(Gs)、叶绿素含量(Chl)都有不同幅度的下降;叶绿体超微结构遭到破坏。相对于抗旱性弱的苜蓿,抗旱性强的苜蓿随干旱胁迫程度的加深,净光合速率下降较慢,叶绿体的外形及基粒结构受到的影响较小。(2)轻度干旱胁迫下气孔限制是两种紫花苜蓿P。降低的主要因素,中度和重度干旱胁迫下非气孔限制是Pn降低的主要因素。(3)对叶绿素荧光参数的研究表明:干旱胁迫下两种紫花苜蓿PSⅡ反应中心光化学效率(F/F=)、PSⅡ潜在活性(Fv/Fo)降低。总体上抗旱性强的紫花苜蓿Fv/Fm和Fv/Fo下降幅度小,PSⅡ利用光能的能力及PSⅡ的潜在活性均较强。PsⅡ光化学淬灭系数(qP)、非光化学淬灭系数(qN)的变化表现为干旱胁迫下两种紫花苜蓿qP值降低、qN值升高,总体上抗旱性强的紫花苜蓿qP降低的幅度低且qN升高幅度大,表明抗旱性强的紫花苜蓿PSⅡ反应中心电子传递活性受到的影响小,光合机构的损伤程度低。  相似文献   

11.
Moustakas  M.  Eleftheriou  E.P.  Ouzounidou  G. 《Photosynthetica》1998,34(2):169-177
A 24 h exposure of the salt-tolerant grass Thinopyrum bessarabicum (Savul. and Rayss) A. Love seedlings to 1 mM aluminium (Al) in nutrient solution at pH of 9.0 resulted in a significant reduction of the biomass. In control samples the mesophyll chloroplasts exhibited the usual lens shape with most grana arranged in straight or slightly curving lines, and only 6.5 % of the grana were out of order. In Al-treated plants the mesophyll chloroplasts displayed a slightly distorted shape and distended size with most grana arranged in bow-like lines, while in the central region of the organelle as many as 26.7 % of the grana were independent and out of order in relation to the long axis. The morphological changes in the chloroplast shape and grana arrangement were probably due to swelling and distension of the chloroplasts in consequence to the altered membrane permeability. The initial in vivo chlorophyll (Chl) fluorescence FO, as well as the intermediate FI and peak fluorescence FP were increased under the Al stress: this indicated a destruction of photosystem (PS) 2 reaction centres and increased reduction of QA. The (FI-FO)/(FP-FO) ratio exhibited a significant increase indicating higher proportion of PS2 centres unable to reduce QB. Changes in the chloroplast ultrastructure seemed to be the reason of photosynthetic electron transport inhibition. Yet all these changes in the photosynthetic performance and chloroplast ultrastructure were considered as indirect effects of Al treatment since Al concentration in the leaves was undetectable. Disturbances in the chloroplast ultrastructure could be caused by a reduced uptake and/or transport of other nutrients.  相似文献   

12.
Field studies were conducted to investigate ontogenic changes in leaf photosynthesis and chloroplast ultrastructure of a single cotton (Gossypium hirsutum L.) leaf subtending the fruit. A 20-d old leaf was the most physiologically active with net photosynthetic rate (PN) of 16.5 mol m-2 s-1 and nitrogen (N) concentration of 168 mmol m-2. These values declined with leaf age and a close relationship existed between them. Concurrent with declines in PN, ultrastructural alterations occurred in the chloroplast: the 20-d old leaf had increased grana number and thylakoids per granum and a few plastoglobuli. Afterwards, the grana number and thylakoids per granum declined with leaf age indicating disintegrated grana and stroma lamellae. Concomitant with disintegrated membrane system was the presence of numerous large plastoglobuli. The PN was closely related to grana number and thylakoids per granum suggesting that the decline in PN with leaf age was associated with ultrastructural changes in the chloroplast.  相似文献   

13.
A 24 h exposure of the salt-tolerant grass Thinopyrum bessarabicum (Savul. and Rayss) A. Love seedlings to 1 mM aluminium (Al) in nutrient solution at pH of 9.0 resulted in a significant reduction of the biomass. In control samples the mesophyll chloroplasts exhibited the usual lens shape with most grana arranged in straight or slightly curving lines, and only 6.5 % of the grana were out of order. In Al-treated plants the mesophyll chloroplasts displayed a slightly distorted shape and distended size with most grana arranged in bow-like lines, while in the central region of the organelle as many as 26.7 % of the grana were independent and out of order in relation to the long axis. The morphological changes in the chloroplast shape and grana arrangement were probably due to swelling and distension of the chloroplasts in consequence to the altered membrane permeability. The initial in vivo chlorophyll (Chl) fluorescence FO, as well as the intermediate FI and peak fluorescence FP were increased under the Al stress: this indicated a destruction of photosystem (PS) 2 reaction centres and increased reduction of QA. The (FI-FO)/(FP-FO) ratio exhibited a significant increase indicating higher proportion of PS2 centres unable to reduce QB. Changes in the chloroplast ultrastructure seemed to be the reason of photosynthetic electron transport inhibition. Yet all these changes in the photosynthetic performance and chloroplast ultrastructure were considered as indirect effects of Al treatment since Al concentration in the leaves was undetectable. Disturbances in the chloroplast ultrastructure could be caused by a reduced uptake and/or transport of other nutrients. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

14.
刘昭伟  张盼  王瑞  蒯婕  李磊  王友华  周治国 《生态学杂志》2014,25(12):3533-3539
在盆栽条件下,以杂交棉泗杂3号为材料,以花铃期正常灌水\[土壤相对含水量(SRWC)(75±5)%\]为对照,设花铃期SRWC(60±5)%和SRWC(45±5)%持续干旱50 d两个处理,研究棉铃对位叶气体交换参数和叶绿素荧光参数在持续干旱过程中的动态变化和响应机制.结果表明: SRWC (60±5)%处理0~21 d棉铃对位叶的净光合速率(Pn)、气孔导度(gs)、胞间CO2浓度(Ci)下降,气孔限制值(Ls)上升,叶绿素荧光参数无显著变化,Pn下降的主要原因是气孔限制;处理21~49 d棉铃对位叶Pn持续下降,Ci上升,Ls下降,同时最大光化学效率(Fv/Fm)、实际光化学效率(ΦPSII)和光化学猝灭系数(qP)显著降低,非光化学猝灭系数(NPQ)先升后降,Pn下降的主要原因是非气孔限制;此时叶片PSII系统受到损伤,光合机构及光合酶系统被破坏,同时成铃强度急剧下降,成铃数降低,导致产量下降.SRWC(45±5)%处理0~14 d棉铃对位叶Pn、gs、Ci显著下降,Ls急剧上升,Fv/Fm、ΦPSII、qP无显著变化,Pn下降主要由气孔限制引起;处理14~49 d,棉铃对位叶Pn缓慢下降,Ci上升,Ls下降,Fv/Fm、ΦPSII和qP不断降低,而NPQ先升后降,表明Pn下降主要由非气孔限制引起,同时成铃强度急剧下降,成铃数减少,产量降低.本试验条件下,SRWC(60±5)%和SRWC(45±5)%处理下棉花生长的临界胁迫时间分别为21和14 d.  相似文献   

15.
胡杨(Populus euphratica)叶形多变, 随个体生长发育, 植株出现条形、卵形和锯齿阔卵形叶。在新疆塔里木河上游人工胡杨林内选择具有此3种叶形的成年标准株, 将枝条拉至同一高度, 通过活体测定, 比较其光合作用-光与CO2响应及叶绿素荧光响应特征。结果表明: 胡杨异形叶光合速率对光强/CO2浓度与电子传递速率对光强的响应曲线均可用直角双曲线修正模型来拟合, 得出的主要光合参数与实测值较吻合。胡杨卵形叶、锯齿阔卵形叶光合速率-光响应参数与生化参数及快速光响应参数与条形叶差异显著, 而光合速率-CO2响应参数则无显著差异。胡杨异形叶CO2饱和浓度下的最大净光合速率(Pnmax)较饱和光强下的Pnmax高, 表明胡杨强光下光合速率在很大程度上受CO2供应和1,5-二磷酸核酮糖(RuBP)再生能力的限制。卵形叶、锯齿阔卵形叶的初始量子效率(α)、初始羧化效率(CE)、Pnmax、光合能力(Amax)与最大羧化速率(Vcmax)均显著高于条形叶; 锯齿叶光饱和点(LSP)、最大电子传递速率(ETRmax)与光呼吸速率(Rp)高于卵形叶, 条形叶光补偿点(LCP)与LSP、αCE最低。表明荒漠干旱环境下胡杨锯齿叶最耐强光, 高Rp可能是其耗散过剩光能、保护光合机构免于强光破坏的重要途径; 卵形叶高的αCE、磷酸丙糖利用效率(TPU)PSII实际光化学效率(ΦPSII)与低LCP及叶氮分配策略是其保持高光合速率的原因; 条形叶ΦPSIIETRPn低, 因其制造光合产物不足而难以满足树体生长逐渐减少并处于树冠下部。可见, 胡杨条形叶光合效率低、抗逆性差, 主要以维持生长为主; 随着树体长大, 条形叶难以适应荒漠环境来维系其生长, 出现了卵形叶; 卵形叶光合效率高, 易于快速积累光合产物而加快树体生长, 但其LSP低和耐光抑制能力弱, 逐渐被更耐强光、高温与大气干旱的锯齿叶所取代, 从而使胡杨在极端逆境下得以生存, 这是胡杨从幼苗到成年叶形变化及异形叶着生在树冠不同高度的原因。  相似文献   

16.
玉米不同叶位叶片叶绿体超微结构与光合性能的研究   总被引:24,自引:0,他引:24  
对玉米植株基部(第3叶),中部(果穗叶)和上部(倒2叶)叶位叶片,进行叶绿体超微结构的观察,并测定了叶绿素含量和光合强度,结果表明,不同叶位叶片叶肉细胞中叶绿体的超微结构,随叶位上升而渐趋复杂化,果穗叶最为显著,向上又趋简单,具体表现为基粒片层的数目随叶位上升而增多基质片层和基质也随之增加,果穗叶最多,向上又趋减少,不同叶位叶片叶绿素含量和光合强度,果穗叶高于其它叶位。  相似文献   

17.
在新疆气候生态条件下, 采用膜下滴灌植棉技术, 设置不同滴灌水分处理, 研究了不同滴灌量条件下棉花(Gossypium hirsutum)苞叶和叶片碳同化、光呼吸作用、光系统II (PSII)热耗散作用及其光破坏防御机制的差异, 以揭示滴灌节水条件下棉花苞叶缓解光抑制的机理及与棉花抗旱特性的关系。结果表明: 棉花开花后苞叶及叶片在高温强光下实际光化学效率(ΦPSII)显著降低, 发生明显的光抑制现象, 但苞叶的光抑制程度较叶片轻; 与正常滴灌量处理相比, 节水滴灌条件下棉花水分亏缺, 叶片净光合速率(Pn)、ΦPSII、光呼吸(Pr)、光化学猝灭系数(qP)降低, 非光化学猝灭系数(NPQ)升高, 叶片光抑制程度加重, 而苞叶Pn、ΦPSII、Pr、qP、NPQ变化不大, 与正常滴灌量处理相比, 光抑制程度无显著差异。苞叶光呼吸速率与光合速率的比值(Pr/Pn)显著高于叶片; 滴灌节水条件下棉花适度水分亏缺对苞叶光呼吸及Pr/Pn无显著影响。高温强光下, 棉花节水滴灌对叶片PSII量子产量的转化与分配影响显著, 但对苞叶的影响不显著; 苞叶非调节性能量耗散的量子产量(Y(NPQ))高于叶片, 因此能有效地将PSII的过剩光能以热的形式耗散。综上所述, 与叶片相比, 苞叶对轻度水分亏缺不敏感, 是棉花适应干旱逆境较强的器官, 苞叶光呼吸和热耗散作用对光破坏防御具有重要意义。  相似文献   

18.
弱光胁迫影响夏玉米光合效率的生理机制初探   总被引:7,自引:0,他引:7       下载免费PDF全文
大田条件下, 以普通夏玉米(Zea mays) ‘泰玉2号’为材料, 于授粉后1-20天遮光55% (+S), 以大田自然光照条件下生长的玉米作为对照(-S), 研究了遮光及恢复过程中玉米植株的光合性能、叶绿体荧光参数、叶黄素循环以及光能分配的变化, 初步揭示夏玉米开花后弱光条件下光适应的生理机制, 为玉米高产稳产提供理论依据。结果表明, 遮光后玉米穗位叶叶绿素含量及可溶性蛋白含量均减少, RuBP羧化酶和PEP羧化酶活性显著降低, 导致穗位叶净光合速率(Pn)迅速下降, 光饱和点也明显降低; 恢复初期Pn迅速升高, 光合关键酶活性有所增强。遮光后植株的最大光化学效率(Fv/Fm)、实际光化学效率(ФPSII)显著降低, 非光化学淬灭(NPQ)则显著升高, 而恢复初期植株穗位叶ФPSII有所升高, 表明突然暴露在自然光下的光合电子传递速率明显加快, 这与其光合速率及光合酶活性的趋势保持一致; 遮光处理对穗位叶叶黄素循环库的大小(紫黄质+花药黄质+玉米黄质(V + A + Z))影响不显著, 但使叶黄素循环的脱环氧化状态(A + Z)/(V + A + Z)增加; 遮光后植株分配于光化学反应的光能明显减少, 天线耗散光能比率显著增加, 恢复过程中植株主要以过剩非光化学反应的形式耗散过剩的光能。遮光后及恢复初期, 玉米植株的PSII原初光化学活性明显下降, 限制了光合碳代谢的电子供应从而抑制了光合作用, 主要依赖叶黄素循环途径进行能量耗散, 而在光照转换后遮光的玉米叶片在适应自然光过程中的光保护机制不断完善, 光合能力逐渐得到 恢复。  相似文献   

19.
《植物生态学报》2014,38(7):729
Aims In China, peanut (Arachis hypogaea) is mainly cultivated in the semi-arid and rain-fed areas, and drought is the most prominent environmental stress to its growth. However, studies on the physiological responses of different peanut cultivars to drought and re-watering are lacking. Our objectives were to investigate the relationship between photosynthetic characteristics and drought tolerance, and to explore the ability to recover from drought damage in different peanut cultivars.
Methods A pot experiment was conducted with artificial water stress treatment, and the photosynthetic characteristics were determined in twelve peanut cultivars under the conditions of drought stress and re-watering at the seedling stage. The drought tolerance was assessed by drought resistance coefficient of biomass in seedling. The recovery capacity was assessed by compensatory growth of plant.
Important findings Five cultivars, including ‘Shanhua 11’, ‘Rugaoxiyangsheng’, ‘A596’, ‘Shanhua 9’, and ‘Nongda 818’, showed over-compensatory growth after re-watering, and their capacity of compensatory growth had significant positive correlation with drought tolerance (p < 0.01). The net photosynthetic rate (Pn), stomatal conductance (Gs), intercellular CO2 concentration (Ci), maximum photochemical efficiency (Fv/Fm), PSII actual quantum yield (ΦPSII), and photochemical quenching coefficient (qP) all decreased over the course of drought stress, and then increased following re-watering, with the amplitude of changes being smaller in the more drought tolerant cultivars. Seven days of drought did not result in significant differences in the photosynthetic characteristics among majority of the peanut cultivars tested (p > 0.05). After 14 days of drought, the values of photosynthetic variables differed significantly among the peanut cultivars with different drought tolerance (p < 0.05). The values of Pn, Gs, ΦPSII, Fv/Fm, and qP in the cultivars ‘Shanhua 11’, ‘Rugaoxiyangsheng’, ‘A596’, and ‘Shanhua 9’fully recovered five days after re-watering, while those in the cultivars ‘79266’, ‘ICG6848’, ‘Baisha 1016’, and ‘Hua 17’ did not fully recover even after 10 days of re-watering; the values of those photosynthetic variables were significantly greater (p < 0.05) in the more drought tolerant cultivars following re-watering. Correlation analysis showed that the drought tolerance was significantly and positively correlated with Pn, ΦPSII, Fv/Fm, and qP after 14 days of drought stress and after five days of re-watering, respectively (p < 0.01). Therefore, under drought stress at 40% of relative water content (RWC) for 14 days and after five days of re-watering at the seedling stage, the Pn, ΦPSII, Fv/Fm, and qP could be used for identifying the level of damage and recovery capacity of peanut cultivars. The cultivar ‘Shanhua 11’ can be used as a reference for drought adaptability identification in peanut.  相似文献   

20.
An important step in understanding influence of growth environment on carbon metabolism in plants is to gain a better understanding of effects of light quality on the photosynthetic system. Electron microscopy was used to study chloroplast ultrastructure in developing and fully expanded leaves of tobacco (Nicotiana tabacum L. cv Burley 21). Brief exposures to red or far-red light at the end of each day during growth under controlled environments influenced granum size, granum number and starch grain accumulation in chloroplasts, and the concentration of sugars in leaf lamina. Far-red-treated leaves had chloroplasts with more but smaller grana than did red-treated leaves. Red light at the end of the photosynthetic period resulted in more and larger starch grains in the chloroplasts and a lower concentration of sugars in leaves. Chloroplast ultrastructure and starch grain accumulation patterns that were initiated in the expanding leaves were also evident in the fully expanded leaves that received the treatment during development. It appears that the phytochrome system in the developing leaves sensed the light environment and initiated events which influenced chloroplast development and partitioning of photosynthate to adapt the plant for better survival under those environmental conditions.  相似文献   

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