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1.
Aims Global climate change and ongoing plant invasion are the two prominent ecological issues threatening biodiversity world wide. Among invasive species, Lantana camara and Hyptis suaveolens are the two most important invaders in the dry deciduous forest in India. We monitored the growth of these two invasive species and seedlings of four native dry deciduous species (Acacia catechu, Bauhinia variegata, Dalbergia latifolia and Tectona grandis) under ambient (375–395 μ mol mol-1) and elevated CO2 (700–750 μ mol mol-1) to study the differential growth response of invasive and native seedlings.Methods Seedlings of all the species were exposed to ambient and elevated CO2. After 60 days of exposure, seedlings were harvested and all the growth-related parameters like plant height; biomass of root, stem and leaves; total seedling biomass; R/S ratio; allocation parameters; net assimilation rate (NAR) and relative growth rate (RGR) were determined.Important findings Biomass, RGR and NAR of all the species increased under elevated CO2 but the increase was higher in invasive species and they formed larger seedlings than natives. Therefore under the CO2 -enriched future atmosphere, competitive hierarchies could change and may interfere with the species composition of the invaded area.  相似文献   

2.
Aims Leaf traits of trees exposed to elevated [CO2] in association with other environmental factors are poorly understood in tropical and subtropical regions. Our goal was to investigate the impacts of elevated [CO2] and N fertilization on leaf traits in southern China.Methods Four tree species, Schima superba Gardn. et Champ. (S. superba), Ormosia pinnata (Lour.) Merr (O. pinnata), Castanopsis hystrix AC. DC. (C. hystrix) and Acmena acuminatissima (Blume) Merr. et Perry (A. acuminatissima) were studied in a factorial combination of atmospheric [CO2] (ambient at ~390 μmol mol ? 1 and elevated [CO2] at ~700 μmol mol-1) and N fertilization (ambient and ambient + 100 kg N ha-1 yr-1) in open-top chambers in southern China for 5 years. Leaf mass per unit leaf area (LMA), leaf nutrient concentration and photosynthesis (A sat) were measured.Important findings Results indicated that leaf traits and photosynthesis were affected differently by elevated [CO2] and N fertilization among species. Elevated [CO2] decreased LMA in all species, while N fertilization did not affect LMA. Leaf mass-based N concentration (N M) was significantly greater in O. pinnata and C. hystrix grown in elevated [CO2] but was lower in S. superba. Leaf mass-based P concentration (P M) was significantly greater in C. hystrix and A. acuminatissima exposed to elevated [CO2] but was lower in S. superba. N fertilization significantly increased P M in O. pinnata but decreased P M in S. superba. Photosynthetic stimulation in O. pinnata, C. hystrix and A. acuminatissima was sustained after 5 years of CO2 fumigation. N fertilization did not modify the effects of elevated [CO2] on photosynthesis. Leaf traits (N M, N A, P M, P A) and light-saturated photosynthesis were decreased from the upper to lower canopy. Canopy position did not alter the responses of leaf traits and photosynthesis to elevated [CO2]. Results suggest that photosynthetic stimulation by elevated [CO2] in native species in subtropical regions may be sustained in the long term.  相似文献   

3.
生长在高CO2浓度(700±5μl·L-1)1周的香蕉叶片,其光合速率(Pn,μmol·m-2·s-1)为5.14±0.32,较生长在大气CO2浓度(356±301μl·L-1)的高22.1%,而生长在较高CO2浓度下8周,叶片Pn较生长在大气CO2浓度的低18.1%,表现香蕉叶片对较长期高CO2浓度的驯化和光合作用抑制.生长在高CO2浓度的香蕉叶片有较低光下呼吸速率(Rd),而不包括光下呼吸的CO2补偿点则变幅较小.最大羧化速率(Vcmax)和电子传递速率(J)分别较生长在大气CO2浓度的低30.5%和14.8%,根据气体交换速率计算的表观量子产率(α,mol CO2·mol-1光量子),生长在较高CO2浓度下8周的叶片为0.014±0.01,而生长在大气CO2浓度下的为0.025±0.005.较高CO2浓度下叶片的表观量子产率降低44%.光能转换效率electrons·quanta-1)亦从0.203降低至0.136.生长在较高CO2浓度下香蕉叶片的叶氮在Rubicos分配系数(PR)、叶氮在生物力能学组分分配系数(PB)和叶氮在光捕组分的分配系数(PL)均较生长在大气CO2浓度低,表明在高CO2浓度下较长期生长(8周)的香蕉叶片多个光合过程受抑制,光合活性明显降低.  相似文献   

4.
大气CO2浓度升高是全球气候变化的主要特征,但大气CO2浓度长期升高条件下冬小麦叶片发生光合适应的机制尚不十分清楚。本研究以盆栽冬小麦‘郑麦9023’为试验材料,在人工气候控制室内设置2个CO2浓度(400和600 μmol·mol-1)、2个水分条件(田间持水量的80%±5%和55%±5%),测定拔节期和抽穗期的光合特征曲线、叶绿素荧光动力学参数、叶氮含量和收获后的籽粒产量等指标,探讨干旱条件下库源关系改变对叶片光合适应的影响。结果表明: 在小麦拔节期,干旱条件下CO2浓度升高处理的小麦PSⅡ实际光化学效率没有显著增加,但通过提升最大电子传递速率和电子向光化学方向的传递比例,增强了Rubisco的羧化速率,从而提高了最大净光合速率;在抽穗期,功能叶最大电子传递速率和电子向光化学方向的传递比例虽然较高,但PSⅡ实际光化学转换效率降低,Rubisco羧化速率和丙糖磷酸利用效率下降,以致最大净光合速率降低。干旱条件下,CO2浓度升高增加了小麦单茎生物量、单穗粒数和穗粒重,降低了不孕小穗数,提高了籽粒产量。土壤干旱条件下,CO2浓度升高对收获期小麦单茎籽粒产量的促进作用可能主要来自于生长前期的光合产物积累。生长后期光合适应发生的主要原因是功能叶PSⅡ实际光化学转换效率和丙糖磷酸利用效率的降低,而不是最大电子传递速率、光化学方向的电子传递比例和新叶库强的变化。  相似文献   

5.
为了解CO2浓度升高条件下春小麦生产和水分利用效率(WUE)的响应特征,在典型半干旱区定西,利用开顶式气室(OTC)试验平台开展了CO2浓度增加模拟试验.试验设对照(390 μmol·mol-1)、480 μmol·mol-1和570 μmol·mol-1 3个CO2浓度.结果表明: CO2浓度升高使春小麦冠层空气温度小幅上升,10 cm深处的土壤环境温度下降;CO2浓度增加对春小麦各器官生物量和总生物量都有明显促进作用,在480和570 μmol·mol-1浓度下,地上干物质量平均增长20.6%和41.5%,总干物质量平均增长19.3%和39.6%.生物量增加主要是由茎叶干物质量增加所致,与生育中期物质生产能力明显增强有关;在两种CO2浓度处理下,植株根冠比分别降低7.3%和11.8%,CO2浓度增加对春小麦地上部分干物质积累的贡献大于地下部分;CO2浓度升高主要通过影响穗粒数来影响最终产量,在480和570 μmol·mol-1浓度下,小麦产量分别增加了8.9%和19.9%;大气CO2浓度升高对春小麦光合作用影响的长期效应不明显,随CO2浓度升高,光合速率显著提高,蒸腾速率降低,蒸发蒸腾量减小.随CO2浓度升高,叶片、群体和产量3个水平的WUE都增加,其中群体水平的WUE增幅最大,产量水平的WUE增幅最小.  相似文献   

6.
为了解CO2浓度升高条件下春小麦生产和水分利用效率(WUE)的响应特征,在典型半干旱区定西,利用开顶式气室(OTC)试验平台开展了CO2浓度增加模拟试验.试验设对照(390 μmol·mol-1)、480 μmol·mol-1和570 μmol·mol-1 3个CO2浓度.结果表明: CO2浓度升高使春小麦冠层空气温度小幅上升,10 cm深处的土壤环境温度下降;CO2浓度增加对春小麦各器官生物量和总生物量都有明显促进作用,在480和570 μmol·mol-1浓度下,地上干物质量平均增长20.6%和41.5%,总干物质量平均增长19.3%和39.6%.生物量增加主要是由茎叶干物质量增加所致,与生育中期物质生产能力明显增强有关;在两种CO2浓度处理下,植株根冠比分别降低7.3%和11.8%,CO2浓度增加对春小麦地上部分干物质积累的贡献大于地下部分;CO2浓度升高主要通过影响穗粒数来影响最终产量,在480和570 μmol·mol-1浓度下,小麦产量分别增加了8.9%和19.9%;大气CO2浓度升高对春小麦光合作用影响的长期效应不明显,随CO2浓度升高,光合速率显著提高,蒸腾速率降低,蒸发蒸腾量减小.随CO2浓度升高,叶片、群体和产量3个水平的WUE都增加,其中群体水平的WUE增幅最大,产量水平的WUE增幅最小.  相似文献   

7.
研究农田土壤酶活性对CO2浓度升高和增温的响应,可为气候变化背景下农田生态系统养分管理提供科学依据。本研究在人工模拟气候室进行盆栽控制试验,设置了4种气候情景,分别为对照(CK,CO2浓度400 μmol·mol-1+正常环境温度)、CO2浓度升高(ECO2,CO2浓度800 μmol·mol-1+正常环境温度)、增温(ET,CO2浓度400 μmol·mol-1+增温4 ℃)及CO2浓度和温度均升高(ECO2+T,CO2浓度800 μmol·mol-1+增温4 ℃),研究有、无冬小麦生长下β--葡萄糖苷酶(βG)、β-N-乙酰葡糖苷酶(NAG)、碱性磷酸单脂酶(ALP)和多酚氧化酶(PPO)4种土壤酶活性在冬小麦拔节期(JS)、开花期(AS)、灌浆期(FS)和成熟期(MS)对CO2浓度升高和增温的响应。结果表明:无冬小麦生长下,ECO2与CK间4种土壤酶活性差异不显著,而ET和ECO2+T处理对4种土壤酶活性有显著抑制作用。有冬小麦生长条件下,与CK相比,ECO2和ECO2+T处理对4种土壤酶活性均无显著影响;ET处理对土壤ALP和PPO活性有显著影响;ECO2+T与ET间4种土壤酶活性有显著差异,与ET相比,ECO2+T处理的土壤βG活性在JS期显著增加,NAG活性在JS期显著降低,ALP活性在AS和FS期显著增加,PPO活性在JS期显著降低,而在AS期显著增加。CO2浓度升高与增温的交互作用在有、无冬小麦生长下均对土壤NAG和ALP活性有显著影响;无冬小麦生长下,增温和试验时段的交互作用对4种土壤酶活性有显著影响,而在有冬小麦生长下,增温和生育期的交互作用仅对ALP和PPO活性有显著影响;CO2浓度升高、增温与试验时段的交互作用在无冬小麦生长下对土壤βG、ALP和PPO活性有显著影响,而在有冬小麦生长下CO2浓度升高、增温与生育期对土壤NAG、ALP和PPO活性有显著影响。冬小麦生长对土壤βG、NAG和ALP活性在前两个生育期(JS+AS期)表现为显著抑制作用,在后两个生育期(FS+MS期)表现为显著促进作用,对土壤PPO活性在全生育期均表现为显著抑制作用。总体上,CO2浓度升高对冬小麦土壤酶活性的影响不显著,而CO2浓度与温度均升高对冬小麦土壤酶活性的影响在不同生育期因土壤酶种类不同而不同;此外,有、无冬小麦条件下4种土壤酶活性对CO2浓度升高与增温的交互作用响应程度不一。  相似文献   

8.
设计了一套适合于FACE(free-air CO2 enrichment)平台的旱地土壤气体CO2浓度廓线测定方法,并将其应用于田间实验.在江苏省无锡市郊区具有太湖地区典型水稻土的稻麦轮作农田,对FACE和对照麦田以及裸土0~30cm土层的土壤气体CO2浓度廓线进行了观测研究.结果表明,所采用的方法满足进行旱地农田土壤气体CO2浓度廓线研究的要求;在0~30cm土层中,上层土壤气体中的CO2向上垂直扩散要比下层土壤快;在作物旺盛生长期,大气CO2浓度升高200±40μmol·mol-1使0~30cm土层的土壤气体CO2浓度显著提高14%±5%(t检验P<0.001).  相似文献   

9.
Aims Rising concentrations of atmospheric carbon dioxide ([CO2]) may influence forest successional development and species composition of understory plant communities by altering biomass production of plant species of functional groups. Here, we describe how elevated [CO2] (eCO2) affects aboveground biomass within the understory community of a temperate deciduous forest at the Oak Ridge National Laboratory sweetgum (Liquidambar styraciflua) free-air carbon dioxide enrichment (FACE) facility in eastern Tennessee, USA. We asked if (i) CO2 enrichment affected total understory biomass and (ii) whether total biomass responses could be explained by changes in understory species composition or changes in relative abundance of functional groups through time.Materials and Methods The FACE experiment started in 1998 with three rings receiving ambient [CO2] (aCO2) and two rings receiving eCO2. From 2001 to 2003, we estimated species-specific, woody versus herbaceous and total aboveground biomass by harvesting four 1 × 0.5-m subplots within the established understory plant community in each FACE plot. In 2008, we estimated herbaceous biomass as previously but used allometric relationships to estimate woody biomass across two 5 × 5-m quadrats in each FACE plot.Important findings Across years, aboveground biomass of the understory community was on average 25% greater in eCO2 than in aCO2 plots. We could not detect differences in plant species composition between aCO2 and eCO2 treatments. However, we did observe shifts in the relative abundance of plant functional groups, which reflect important structural changes in the understory community. In 2001–03, little of the understory biomass was in woody species; herbaceous species made up 94% of the total understory biomass across [CO2] treatments. Through time, woody species increased in importance, mostly in eCO2, and in 2008, the contribution of herbaceous species to total understory biomass was 61% in aCO2 and only 33% in eCO2 treatments. Our results suggest that rising atmospheric [CO2] could accelerate successional development and have longer term impact on forest dynamics.  相似文献   

10.
依托FACE技术平台, 采用稳定13C同位素技术, 通过将小麦(C3作物)种植于长期单作玉米(C4作物)的土壤上, 研究了大气CO2浓度升高和不同氮肥水平对土壤排放CO2的δ13C值及根际呼吸的影响. 结果表明: 种植小麦后土壤排放CO2的δ13C值随作物生长逐渐降低, CO2浓度升高200 μmol·mol-1显著降低了孕穗、抽穗期(施氮量为250 kg·hm-2, HN)与拔节、孕穗期(施氮量为150 kg·hm-2, LN)土壤排放CO2的δ13C值, 显著提高了孕穗、抽穗期的根际呼吸比例. 拔节至成熟期, 根际呼吸占土壤呼吸的比例在高CO2浓度下为24%~48%(HN)和21%~48%(LN), 在正常CO2浓度下为20%~36% (HN)和19%~32%(LN). 不同CO2浓度下土壤排放CO2的δ13C值和根际呼吸对氮肥增加的响应不同, CO2浓度与氮肥用量在拔节期对根际呼吸的交互效应显著.  相似文献   

11.
光和二氧化碳(CO_2)是绿色植物光合作用的两个基本条件.为了明确不同光照条件下,高CO_2浓度对不同杂交水稻光合特性的影响,2017年利用稻田大型FACE平台,以‘Y两优900’和‘甬优538’为供试材料,设置环境CO_2和高CO_2浓度(增200μmol·mol-1)两个水平,分别在拔节期和灌浆期同时测定阴、晴天气条件下顶部全展叶光合特性参数.结果表明:高CO_2浓度使不同天气情况下两品种叶片的净同化率(P_n)均呈增加趋势,其中晴天条件下的增幅(31%)大于阴天(25%),拔节期的增幅(37%)大于灌浆期(21%),CO_2与天气、CO_2与生育期均存在显著的互作效应.叶片水分利用效率(WUE)对高CO_2浓度的响应趋势与P_n一致.高CO_2浓度环境下叶片气孔导度(g_s)、蒸腾速率(T_r)均呈下降趋势,晴天条件下的降幅略大于阴天.与晴天相比,阴天条件下叶片P_n、g_s、T_r、WUE和L_s平均分别下降41%、18%、41%、26%和27%,差异均达显著或极显著水平.相关分析表明,晴天P_n、g_s、T_r均与阴天时的参数呈极显著正相关关系.表明阴天使水稻生育中、后期叶片光合参数及其对高CO_2浓度的响应均大幅降低,且两品种表现一致.评估未来水稻产量潜力需要考虑天气条件.  相似文献   

12.
光和二氧化碳(CO2)是绿色植物光合作用的两个基本条件.为了明确不同光照条件下,高CO2浓度对不同杂交水稻光合特性的影响,2017年利用稻田大型FACE平台,以‘Y两优900’和‘甬优538’为供试材料,设置环境CO2和高CO2浓度(增200 μmol·mol-1)两个水平,分别在拔节期和灌浆期同时测定阴、晴天气条件下顶部全展叶光合特性参数.结果表明: 高CO2浓度使不同天气情况下两品种叶片的净同化率(Pn)均呈增加趋势,其中晴天条件下的增幅(31%)大于阴天(25%),拔节期的增幅(37%)大于灌浆期(21%),CO2与天气、CO2与生育期均存在显著的互作效应.叶片水分利用效率(WUE)对高CO2浓度的响应趋势与Pn一致.高CO2浓度环境下叶片气孔导度(gs)、蒸腾速率(Tr)均呈下降趋势,晴天条件下的降幅略大于阴天.与晴天相比,阴天条件下叶片PngsTr、WUE和Ls平均分别下降41%、18%、41%、26%和27%,差异均达显著或极显著水平.相关分析表明,晴天PngsTr均与阴天时的参数呈极显著正相关关系.表明阴天使水稻生育中、后期叶片光合参数及其对高CO2浓度的响应均大幅降低,且两品种表现一致.评估未来水稻产量潜力需要考虑天气条件.  相似文献   

13.
氮素对高大气CO2浓度下小麦叶片光合作用的影响   总被引:2,自引:0,他引:2  
通过测定小麦拔节期叶片的光合气体交换参数和光强-光合速率(Pn)响应曲线,研究了氮素对长期高大气CO2浓度(760 μmol·mol-1)下小麦叶片光合作用的影响.结果表明:在长期高大气CO2浓度下,增施氮肥能提高小麦叶片Pn、蒸腾速率(Tr)和瞬时水分利用效率(WUEi);与正常大气CO2浓度相比,高大气CO2浓度下小麦叶片的Pn和WUEi增加,气孔导度(Gs)和胞间CO2浓度(Ci)降低.随光合有效辐射的增强,高大气CO2浓度下小麦叶片的Pn和WUEi均高于正常大气CO2浓度处理,Gs则较低,而Ci和Tr无显著变化.高氮水平下小麦叶片Gs与Pn、Tr、WUEi呈线性正相关,Gs与Ci在正常大气CO2浓度下呈线性负相关,但高大气CO2浓度下二者无相关性;低氮水平下小麦叶片的Gs与Pn、WUEi无相关性,而与Ci和Tr呈线性正相关,表明高大气CO2浓度下低氮水平的小麦叶片Pn由非气孔因素限制.  相似文献   

14.
通过测定小麦拔节期叶片的光合气体交换参数和光强-光合速率(Pn)响应曲线,研究了氮素对长期高大气CO2浓度(760 μmol·mol-1)下小麦叶片光合作用的影响.结果表明:在长期高大气CO2浓度下,增施氮肥能提高小麦叶片Pn、蒸腾速率(Tr)和瞬时水分利用效率(WUEi);与正常大气CO2浓度相比,高大气CO2浓度下小麦叶片的Pn和WUEi增加,气孔导度(Gs)和胞间CO2浓度(Ci)降低.随光合有效辐射的增强,高大气CO2浓度下小麦叶片的Pn和WUEi均高于正常大气CO2浓度处理,Gs则较低,而Ci和Tr无显著变化.高氮水平下小麦叶片Gs与Pn、Tr、WUEi呈线性正相关,Gs与Ci在正常大气CO2浓度下呈线性负相关,但高大气CO2浓度下二者无相关性;低氮水平下小麦叶片的Gs与Pn、WUEi无相关性,而与Ci和Tr呈线性正相关,表明高大气CO2浓度下低氮水平的小麦叶片Pn由非气孔因素限制.  相似文献   

15.
大气CO2浓度和温度升高对水稻干物质积累的影响因不同栽培区域和不同稻作类型而异。目前,我国双季稻轮作系统干物质生产力对温度、CO2浓度升高和二者交互作用的响应特征尚不明确。本研究以早稻‘两优287’和晚稻‘湘丰优9号’为供试材料,在湖北省荆州市利用开顶式气室(OTC)进行连续3年的大田原位模拟试验,设置大田(UC)、对照(CK,OTC控制大气温度和CO2浓度)、增温2 ℃(ET)、CO2浓度增加60 μmol·mol-1(EC)、增温2 ℃+CO2浓度增加60 μmol·mol-1(ETEC)5个处理,研究温度和CO2浓度升高对早稻和晚稻地上部生物量、叶面积和净同化速率的影响。结果表明: CO2浓度和/或温度升高对早稻和晚稻移栽-拔节阶段净同化速率影响不显著,提高了拔节-齐穗阶段净同化速率,但降低了齐穗-成熟阶段净同化速率(除早稻对高CO2浓度表现为正响应外)。CO2浓度和/或温度升高促进了各生育期叶面积的增长,以ETEC处理叶面积指数最高(除成熟期外)。在齐穗期,温度和CO2浓度升高协同促进了地上部干物质积累,ETEC处理早稻和晚稻地上部生物量比CK高10.3%~39.8%和23.6%~34.4%;在早稻成熟期,增温在一定程度上抵消了增加CO2浓度对地上部干物质积累的促进作用,ETEC比EC地上部生物量降低3.2%~14.1%;而晚稻成熟期,增温和增加CO2浓度表现为正向的交互作用,可进一步提高地上部生物量。回归分析表明,温度和CO2浓度升高在双季稻营养生长阶段对植株净同化能力以正向作用为主,在生殖生长阶段增温表现为负向作用。由于生长特性、生育期跨度和温度资源配置的差异,CO2浓度和温度升高可能提高我国双季稻轮作系统干物质生产力。  相似文献   

16.
Aims Carbon (C) sequestration in terrestrial ecosystems is strongly regulated by nitrogen (N) processes. However, key parameters that determine the degree of N regulation on terrestrial C sequestration have not been well quantified.Methods Here, we used a Bayesian probabilistic inversion approach to estimate 14 target parameters related to ecosystem C and N interactions from 19 datasets obtained from Duke Forests under ambient and elevated carbon dioxide (CO2).Important findings Our results indicated that 8 of the 14 target parameters, such as C:N ratios in most ecosystem compartments, plant N uptake and external N input, were well constrained by available datasets whereas the others, such as N allocation coefficients, N loss and the initial value of mineral N pool were poorly constrained. Our analysis showed that elevated CO2 led to the increases in C:N ratios in foliage, fine roots and litter. Moreover, elevated CO2 stimulated plant N uptake and increased ecosystem N capital in Duke Forests by 25.2 and 8.5%, respectively. In addition, elevated CO2 resulted in the decrease of C exit rates (i.e. increases in C residence times) in foliage, woody biomass, structural litter and passive soil organic matter, but the increase of C exit rate in fine roots. Our results demonstrated that CO2 enrichment substantially altered key parameters in determining terrestrial C and N interactions, which have profound implications for model improvement and predictions of future C sequestration in terrestrial ecosystems in response to global change.  相似文献   

17.
吕宁  尹飞虎  陈云  高志建  刘瑜  石磊 《生态学杂志》2015,26(11):3337-3344
试验设置半开顶式CO2人工气候室,研究了不同CO2浓度处理(360、540 μmol·mol-1)与施氮(N)量(0、150、300 和450 kg·hm-2)对棉花干物质的积累与分配、氮素吸收量及土壤脲酶活性的影响.多样性指数和主成分分析表明: 各施N水平下,CO2浓度增加下棉花蕾、茎、叶和整株的总干物质积累量显著增加;2个CO2浓度下,300 kg·hm-2-N (N300)处理棉花蕾、茎、叶、根及整株干物质量显著高于其他3个N肥处理,合理的氮肥施用可显著提高棉花干物质积累量.棉花蕾和茎的氮素吸收量受CO2浓度影响显著,与360 μmol·mol-1CO2浓度相比,CO2浓度为540 μmol·mol-1条件下蕾和茎的氮含量显著增加,其中N300处理下蕾的氮含量最高,N150和N300处理茎的氮含量高于N0和N450处理;叶的氮素吸收量受CO2和N的交互作用影响显著,在N0、N150、N300处理下,540 μmol·mol-1CO2浓度下叶的氮含量增加;棉花根的氮素吸收量受施N的影响显著,540 μmol·mol-1CO2浓度下根的氮含量随着施N量的增加显著增加.总体上,540 μmol·mol-1CO2浓度下棉花的氮素吸收量高于360 μmol·mol-1 CO2浓度,各CO2和N组合处理下,棉花各器官的氮素积累量蕾铃最高,叶片居中,其次是茎秆,根系最低.各施N水平下,两个土层的土壤脲酶活性随着CO2浓度升高而显著增加;不同CO2浓度处理下,0~20 cm土层土壤脲酶活性随着施N量的增加而增加,20~40 cm土层N300处理下的土壤脲酶活性高于其他N肥处理;CO2和N互作下,0~20 cm土层土壤脲酶活性的平均值显著高于20~40 cm土层.大气CO2浓度为540 μmol·mol-1、氮肥施用量为300 kg·hm-2可显著提高棉花干物质积累量和氮素吸收量.  相似文献   

18.
试验设置半开顶式CO2人工气候室,研究了不同CO2浓度处理(360、540 μmol·mol-1)与施氮(N)量(0、150、300 和450 kg·hm-2)对棉花干物质的积累与分配、氮素吸收量及土壤脲酶活性的影响.多样性指数和主成分分析表明: 各施N水平下,CO2浓度增加下棉花蕾、茎、叶和整株的总干物质积累量显著增加;2个CO2浓度下,300 kg·hm-2-N (N300)处理棉花蕾、茎、叶、根及整株干物质量显著高于其他3个N肥处理,合理的氮肥施用可显著提高棉花干物质积累量.棉花蕾和茎的氮素吸收量受CO2浓度影响显著,与360 μmol·mol-1CO2浓度相比,CO2浓度为540 μmol·mol-1条件下蕾和茎的氮含量显著增加,其中N300处理下蕾的氮含量最高,N150和N300处理茎的氮含量高于N0和N450处理;叶的氮素吸收量受CO2和N的交互作用影响显著,在N0、N150、N300处理下,540 μmol·mol-1CO2浓度下叶的氮含量增加;棉花根的氮素吸收量受施N的影响显著,540 μmol·mol-1CO2浓度下根的氮含量随着施N量的增加显著增加.总体上,540 μmol·mol-1CO2浓度下棉花的氮素吸收量高于360 μmol·mol-1 CO2浓度,各CO2和N组合处理下,棉花各器官的氮素积累量蕾铃最高,叶片居中,其次是茎秆,根系最低.各施N水平下,两个土层的土壤脲酶活性随着CO2浓度升高而显著增加;不同CO2浓度处理下,0~20 cm土层土壤脲酶活性随着施N量的增加而增加,20~40 cm土层N300处理下的土壤脲酶活性高于其他N肥处理;CO2和N互作下,0~20 cm土层土壤脲酶活性的平均值显著高于20~40 cm土层.大气CO2浓度为540 μmol·mol-1、氮肥施用量为300 kg·hm-2可显著提高棉花干物质积累量和氮素吸收量.  相似文献   

19.
平琴  徐胜  陈玮  何兴元  黄彦青  吴娴 《生态学杂志》2017,28(12):3862-3870
通过开顶箱(OTCs)模拟,以环境臭氧(O3)浓度约40 nmol·mol-1为对照,研究大气O3浓度升高(80和160 nmol·mol-1O3)对冷季型草坪草高羊茅生长、亚细胞结构及其活性氧代谢的影响.结果表明: 14 d的80 nmol·mol-1O3熏蒸使高羊茅株高和叶宽降低,总生物量降低43.7%,老叶变黄,而160 nmol·mol-1O3处理高羊茅叶出现大量枯死褐斑,叶尖坏死,新叶卷曲,总生物量降低46.2%,叶肉细胞膜卷曲,叶绿体和线粒体受损严重.与对照相比,80和160 nmol·mol-1O3熏蒸下高羊茅叶片超氧阴离子(O2)产生速率、过氧化氢(H2O2)和丙二醛(MDA)含量显著增加,抗氧化酶活性显著升高,但叶片总酚含量和抗氧化能力随O3浓度升高而先升高后降低.在明显O3伤害症状出现之前,O3已对高羊茅的生长和抗氧化代谢产生不利影响;高羊茅抗氧化系统虽对O3浓度的升高存在一定的适应性反应,但其不能抵御过高浓度的长期胁迫和伤害.  相似文献   

20.
Aims Elevated CO2 and increased N availability can alter a variety of plant physiological processes leading to changes in the nutritional quality of leaf tissue for herbivores. Numerous experiments have examined the responses of herbivores to environmental change; however the potential effects of simultaneous change in multiple factors on leaf-chewing insect herbivores are less well understood. The plant-mediated effects of elevated CO2 and high N on the performance of a generalist leaf-chewing insect herbivore, Trichoplusia ni, were investigated.Methods Newly hatched T. ni larvae were introduced to Amaranthus viridis and Polygonum persicaria plants grown under ambient and elevated CO2 and low and high N conditions. Insect performance was assessed by measuring larvae weight after ten days of feeding. Plant photosynthesis, biomass, leaf area and specific leaf weight were measured to determine the effects of elevated CO2, N and insect feeding on plant performance.Important findings Elevated CO2 did not have strong effects on plant or insect performance, only affecting a few responses under low or high N conditions, but not both. Growth under high nitrogen improved almost all measures of plant performance. Trichoplusia ni performed significantly better on Amaranthus viridis (C 4) compared to Polygonum persicaria (C 3), despite similar leaf C:N ratios in both species. The performance of T. ni caterpillars was only improved by the high nitrogen treatment when they were feeding on P. persicaria, the host they performed poorly on. The only interactions between N and CO2 affecting plant performance were seen for leaf photosynthesis of P. persicaria and leaf area of A. viridis. Contrary to the predictions, there were no significant CO2 by N interactions affecting T. ni performance.  相似文献   

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