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1.
CO2浓度和温度升高对红桦根际微生物的影响   总被引:7,自引:0,他引:7  
肖玲  王开运  张远彬 《生态学报》2006,26(6):1701-1708
应用自控、封闭、独立的生长室系统,研究升高的大气CO2浓度(环境CO2浓度 350(±25)μmol.mol-1,EC)和温度(环境温度 2.0(±0.5)℃,ET)及其交互作用(ECT)对不同栽植密度条件下红桦根际土壤可培养微生物数量的影响。结果表明:(1)EC显著增加了高密度条件下根际细菌数量;在整个生长季中,最大的根际细菌数量增加出现在7月份;而EC对低密度处理的根际细菌数量影响不显著。除了5月和6月份,ET在其余月份均显著增加了根际细菌数量,但是与密度处理没有有意义的相关;ECT对高低密度处理的根际细菌数量均未产生有统计意义的影响。(2)EC对低密度条件下的根际放线菌数量有显著增加,而对高密度条件下的根际放线菌数量无显著影响;ET和ECT对高低密度条件下的根际放线菌数量均未产生有统计意义的影响。(3)EC和ET对高低密度条件下的根际真菌数量无显著增加,而ECT显著增加了根际真菌数量。  相似文献   

2.
应用自控、封闭、独立的生长室系统,研究了川西亚高山岷江冷杉根际土壤微生物数量对大气CO2浓度升高 (环境CO2浓度+350(±25)μmol·mol-1,EC)和温度升高(环境温度+2.2(±0.5)℃,ET)及其CO2浓度和温度同时升高 (ECT)的响应.结果表明,1)同对照(CK)相比,在6月、8月和10月,EC处理的根际细菌数量分别增加了35%、164%和312%,ET处理增加了30%、115%和209%,而EC和ET处理对根际放线菌和根际真菌数量影响不显著;ECT处理的根际放线菌数量分别增加了49%、50%和96%,根际真菌数量增加了151%、57%和48%,而ECT对根际细菌数量影响不显著.2)3种处理对非根际土壤微生物数量影响均不显著.3)在EC、ET和ECT处理下,微生物总数的根际效应明显,其R/S值分别为1.93、1.37和1.46(CK的R/S值为0.81).  相似文献   

3.
大气CO2浓度升高对稻田根际土壤甲烷氧化细菌丰度的影响   总被引:1,自引:0,他引:1  
甲烷氧化细菌是目前已知的稻田甲烷氧化唯一生物,在减少稻田甲烷排放、降低大气甲烷浓度方面发挥着重要作用.利用中国稻/麦轮作FACE(Free Air Carbon-dioxide Enrichment)试验平台,采用实时荧光定量PCR技术,研究了大气CO2浓度升高下,典型水稻生长期根际土壤甲烷氧化细菌数量的变化规律,及其对不同施肥处理(高氮HN和常氮LN)的响应.2009和2010连续2a的观测结果表明,大气CO2浓度升高促进了2009年秧苗期和分蘖期,2010年秧苗期、拔节期和灌浆期甲烷氧化细菌的生长;并可能对2010年常氮条件下成熟期甲烷氧化细菌产生了较显著(P<0.1)抑制;进一步针对甲烷氧化细菌主要类群的分析表明,高氮条件下大气CO2浓度升高提高了稻田根际土壤中Ⅰ型甲烷氧化细菌的丰度.  相似文献   

4.
大气二氧化碳浓度升高对植物的影响   总被引:36,自引:0,他引:36  
现代人类的活动,特别是矿场燃料的大量使用和植被的破坏,导致大气CO2浓度持续上升。该文阐述了CO2浓度升高对植物的形态、生理、产量和品质,种群消长,群落组成,生态系统结构与功能的影响。  相似文献   

5.
大气CO2浓度升高对土壤微生物的影响   总被引:18,自引:1,他引:18  
自人类进入工业化时代以来,由于化石燃料的燃烧和森林的大面积破坏,大气中CO2的浓度已由工业革命以前的280μl·L-1增加到现在的350μl·L-1,仅从1957年至今的几十年间,大气中CO2的浓度就增加了20%,预计到下个世纪下半叶,大气中CO2的...  相似文献   

6.
冬小麦旺盛生长期间CO2浓度升高对根际呼吸的影响   总被引:6,自引:0,他引:6  
寇太记  朱建国  谢祖彬  刘钢  曾青 《生态学报》2007,27(4):1420-1427
依托FACE(free air carbon dioxide enrichment)技术平台,利用阻断根法,采用H6400红外气体分析仪(IRGA)-田间原位测定的方法,研究了大气CO2浓度升高和不同氮肥水平对水稻/小麦轮作制中冬小麦旺盛生长期间根际呼吸的影响。结果表明,在整个测定期间,大气CO2浓度升高增强了根际呼吸速率,提高了根际呼吸排放量。在高N和低N处理中,高CO2浓度下的根际呼吸总排放量分别比Ambient极显著增加117.0%和90.8%。根际呼吸速率在孕穗初期达到最大值;使根际呼吸在土壤呼吸中的比重由24.5%(LN)~26.7(HN)提高到39.8%(LN)~47.1%(HN)。CO2浓度升高与氮肥用量对根际呼吸产生交互效应。表明大气CO2浓度升高将加快土壤向大气的CO2排放,结果将有助于评价未来高CO2浓度背景下农田生态系统土壤碳的固定潜力。  相似文献   

7.
采用环境控制生长室控制CO2浓度的方法,研究了CO2浓度(350—400μmol mol^-1和680—750μmol mol^-1对植物根内丛枝菌根真菌(arbuscular mycorrhizal fungi,AMF)群落的影响。12种宿主植物于CO2浓度不同的生长室栽培180d后收获取样,通过CTAB法提取共生菌根内丛枝菌根真菌的DNA,由特异引物U1/U2扩增编码核糖体28S大亚基的rDNA部分序列,并进行DGGE电泳分析。结果表明。12种植物根内的AMF存在特异的AMF类群(unique species group,US)和共有类群(common species group,CS),而且CO2浓度倍增使US减少而CS增加。与350μmol mol^-1 对照相比,700μmol mol^-1处理的玉米、刺苋、大豆、陆稻、无芒稗、黑麦草6种植物的AMF群落多样性下降,下降幅度分别达27.12%、16.84%、10.12%、8.62%、8.58%和2.67%;白车轴、牛筋草、早熟禾、鼠曲草、野燕麦、北美车前6种植物的AMF群落多样性上升,分别达76.26%、28.50%、17.60%、15.08%、1.46%和0.96%。CO2倍增处理后12种植物的AMF多样性平均指数略呈上升趋势。研究指出未来环境变化(如CO2增加)将影响AMF群落结构从而影响菌根共生体的形成。  相似文献   

8.
丛枝菌根对植物根际逆境的生态学意义   总被引:1,自引:0,他引:1  
李娇娇  曾明 《应用生态学报》2020,31(9):3216-3226
近年来,我国在菌根分子生物学、菌根营养学、菌根分类学和菌根生态学等方面取得了令人瞩目的研究成果,其中对丛枝菌根真菌(AMF)的研究居多。AMF能与大部分陆地植物根系形成共生关系,促进植物生长发育,提高植物抗逆性,在保持生态平衡、保护生态环境等方面发挥重要作用。本文主要从非生物胁迫(干旱胁迫、重金属污染、盐碱胁迫)和生物胁迫(致病菌和线虫侵染)方面介绍了AMF在植物根际逆境中发挥的生态功能及作用机制,提出了该研究领域尚存的不足之处和研究前景,为AMF后续研究提供参考。  相似文献   

9.
全球大气CO2浓度升高对土壤微生物生态系统的影响已引起广泛关注。本文从土壤微生物群落结构、微生物区系、土壤呼吸、微生物生物量以及土壤酶活性方面对大气高浓度CO2的响应进行了综述。由于提供高浓度CO2的实验系统、所选植物材料以及土壤特性等的不同,大气CO2浓度升高对土壤微生物群落结构、微生物区系、土壤呼吸、微生物生物量以及土壤酶活性的影响并未得出一致结论。但高浓度CO2对土壤微生物生态系统的影响是存在的。  相似文献   

10.
以连续5年不同CO2浓度(开顶箱700μmol·mol-1、500μmol·mol-1、对照箱和裸地)处理的长白赤松和红松幼苗为研究对象,在2003年7~9月分别对幼苗根际土壤细菌、真菌、放线菌数量进行比较研究.结果表明,高浓度CO2处理对长白赤松幼苗根际土壤细菌数量起显著的(P≤0.001)促进作用,对根际真菌和放线菌数量的促进作用却不明显;对红松来说,除8月份700μmol·mol-1CO2处理和7月份500μmol·mol-1CO2处理之外,在各月份中受高浓度CO2处理的根际土壤细菌数量均较对照箱和裸地显著增多(P≤0.001),而根际土壤真菌数量变化除9月份(P≤0.001)外均不明显,放线菌数量受高浓度CO2的影响亦不明显.  相似文献   

11.
微卫星位点获取方法的研究进展   总被引:2,自引:0,他引:2  
微卫星标记(simple sequence repeat,SSR)是进行分子遗传学研究的一种有效手段,并以其多态性高、信息含量大、保守性等特点成为最受人们欢迎的分子标记之一.但微卫星标记具有种族特异性,必须采用特异引物进行PCR检测,因而存在引物开发的问题.本文就筛选基因组文库法、微卫星富集法、数据库查找法、近缘物种筛选法、TOMMI法和FI-ASCO法等具有代表性的微卫星标记开发策略进行了综述,旨在为分子生态学研究过程中微卫星位点筛选方法的选择提供参考.  相似文献   

12.
大气CO2浓度升高对农田土壤微生物及其相关因素的影响   总被引:16,自引:3,他引:16  
李杨  黄国宏  史奕 《应用生态学报》2003,14(12):2321-2325
综述了大气CO2浓度升高条件下,农田土壤微生物区系、土壤呼吸、土壤微生物生物量;植物-微生物共生体--内生菌根、根瘤及其与农田土壤微生物活动相关因素发生的变化。该方面的研究虽然受实验条件限制,在国内外开展研究的持续时间较短,但现有的研究表明,大气CO2浓度升高主要通过影响植物生长而间接影响农田土壤微生物活性。  相似文献   

13.
Arbuscular mycorrhizal (AM) fungi form mutualistic symbioses with the root systems of most plant species. These mutualisms regulate nutrient exchange in the plant–soil interface and might influence the way in which plants respond to increasing atmospheric CO2. In other experiments, mycorrhizal responses to elevated CO2 have been variable, so in this study we test the hypothesis that different genera of AM fungi differ in their response, and in turn alter the plant's response, to elevated CO2. Four species from three genera of AM fungi were tested. Artemisia tridentata Nutt. seedlings were inoculated with either Glomus intraradices Schenck & Smith, Glomus etunicatum Becker & Gerdemann, Acaulospora sp. or Scutellospora calospora (Nicol. & Gerd.) Walker & Sanders and grown at either ambient CO2 (350 ppm) or elevated CO2 (700 ppm). Several significant inter-specific responses were detected. Elevated CO2 caused percent arbuscular and hyphal colonization to increase for the two Glomus species, but not for Acaulospora sp. or S. calospora . Vesicular colonization was not affected by elevated CO2 for any fungal species. In the extra-radical phase, the two Glomus species produced a significantly higher number of spores in response to elevated CO2, whereas Acaulospora sp. and S. calospora developed significantly higher hyphal lengths. These data show that AM fungal taxa differ in their growth allocation strategies and in their responses to elevated CO2, and that mycorrhizal diversity should not be overlooked in global change research.  相似文献   

14.
Five co-occurring plant species from an annual mediterranean grassland were grown in monoculture for 4 months in pots inside open-top chambers at the Jasper Ridge Biological Preserve (San Mateo County, California). The plants were exposed to elevated atmospheric CO2 and soil nutrient enrichment in a complete factorial experiment. The response of root-inhabiting non-mycorrhizal and arbuscular mycorrhizal fungi to the altered resource base depended strongly on the plant species. Elevated CO2 and fertilization altered the ratio of non-mycorrhizal to mycorrhizal fungal colonization for some plant species, but not for others. Percent root infection by non-mycorrhizal fungi increased by over 500% for Linanthus parviflorus in elevated CO2, but decreased by over 80% for Bromus hordeaceus. By contrast, the mean percent infection by mycorrhizal fungi increased in response to elevated CO2 for all species, but significantly only for Avena barbata and B. hordeaceus. Percent infection by mycorrhizal fungi increased, decreased, or remained unchanged for different plant hosts in response to fertilization. There was evidence of a strong interaction between the two treatments for some plant species and non-mycorrhizal and mycorrhizal fungi. This study demonstrated plant species- and soil fertility-dependent shifts in below-ground plant resource allocation to different morpho-groups of fungal symbionts. This may have consequences for plant community responses to elevated CO2 in this California grassland ecosystem. Received: 2 June 1997 / Accepted: 22 August 1997  相似文献   

15.
高CO2浓度对温带三种针叶树光合光响应特性的影响   总被引:13,自引:1,他引:13  
将长白山地区阔叶红松林中主要针叶树种红松、红皮云杉和长白落叶松的幼苗 ,盆栽于模拟自然光照和人工调节CO2 浓度为 70 0和 40 0 μmol·mol-1的气室内两个生长季 ,在各自的生长环境条件下 ,利用CI 30 1PS便携式CO2 分析系统测定针叶的光合光响应曲线 .结果表明 ,不同树种及同一树种的不同CO2浓度处理间差异明显 .比较饱和净光合速率、暗呼吸、光补偿点、光饱和点、及光能利用率 (QUE)的变化可见 ,长白落叶松为阳性树种 ,其光合作用对高CO2 浓度的适应能力较好 ,红松树种次之 ,阴性树种红皮云杉光合作用对高CO2 浓度适应能力最差 .并初步探讨了供试树种光合生理特性及其演替状况间的联系  相似文献   

16.
Mycorrhizas alter the acquisition of carbon and nutrients, thereby affecting numerous plant and ecosystem processes. It is important, therefore, to determine how mycorrhizal populations will change under possible future climate conditions. Individual and interactive effects of elevated atmospheric CO2 concentration and atmospheric temperature were assessed in a 2×2 factorial design [ambient and elevated (200 ppm above ambient) CO2 concentrations, and ambient and elevated (4°C above ambient) temperatures]. In June 1993, 2-year-old Douglas fir (Pseudotsuga menziesii Mirb. Franco) seedlings were planted in 12 environment-tracking chambers (n=3) containing reconstructed, low-nitrogen, native forest soil. Climate treatments were imposed shortly thereafter, and the seedlings grew until June 1997. Soil cores were taken twice per year during the exposure period. We present findings on changes in the community structure of ectomycorrhizal (ECM) root tips, categorized into morphotypes using gross morphological traits. A diverse and stable community of morphotypes (a total of 40) was encountered; no more than 30 of which were seen at any sampling time. In the first sample, there were only 15 morphotypes found in the 12 chambers. Morphotype numbers increased during the first half of the experiment, remaining fairly constant thereafter. Near the end of the exposure, elevated-temperature treatments maintained more morphotypes than ambient treatments. However, overall, absolute measures (number of ECM tips) were affected primarily by CO2 treatment, whereas proportional measures (e.g., Simpson’s index) were affected primarily by temperature. While some morphotypes were negatively affected seasonally by higher temperatures (putative Rhizopogon group), others (Cenococcum) seemed to thrive. Underlying the dominant patterns of change in diversity, driven by the Rhizopogon group, subdominant populations responded slightly differently. Community diversity through time tended to increase at a greater rate for all subdominant populations compared with the rate when dominant populations were included. Received: 16 August 1999 / Accepted: 2 March 2000  相似文献   

17.
Effects of arbuscular mycorrhiza (AM) and phosphorus (P) application on arsenic (As) toxicity were studied in a rhizobox system with As-contaminated soil collected from Shimane Prefecture, Japan. The treatments consisted of a combination of two levels of AM (Glomus aggregatum) inoculation (−AM and +AM) and two levels of P application (−P and +P at 30 mg P kg−1). Sunflower (Helianthus annuus L.) seedlings were cultured in rhizoboxes for 6 weeks. Rates of root AM infection in +AM treatments were about 40% regardless of P application. AM inoculation as well as P application reduced As toxicity symptoms, most clearly so in the +AM−P treatment. Plant growth was highest in the +AM + P treatment. Shoot As concentrations were slightly reduced by AM inoculation but enhanced by P application. Shoot P concentration in the +AM−P treatment was similar to that of +P treatments and was higher than in −AM−P. Analyses of rhizosphere soils at the end of the cultivation period indicated that P application increased water-soluble As (WS−As) in all compartments while AM inoculation increased WS−As in the central compartment only. Both the WS−arsenite [WS−As(III)] and the dominant form, arsenate [WS−As(V)], showed gradients toward the root surface. Dimethylarsine (DMAA) was detected in the +AM treatments only. To our knowledge, this is the first report of the occurrence of DMAA in the mycorrhizosphere. AM inoculation increased WS−P similarly as +P treatments did and promoted acid phosphatase activity in the soil. In conclusion, AM inoculation alleviated the effects of As toxicity by improving P nutrition without increasing As concentrations in the shoots. Moreover, AM appeared to be involved in the transformation of soil inorganic As into less toxic organic forms.  相似文献   

18.
Prunella vulgaris was inoculated with different arbuscular mycorrhizal fungi (AMF) and grown at two concentrations of CO2 (ambient, 350 μl l−1, and elevated, 600 μl l−1) to test whether a plants response to elevated CO2 is dependent on the species of AMF colonizing the roots. Using compartments accessible only to AMF hyphae but not to roots, we also tested whether elevated CO2 affects the growth of external AMF hyphae. Plant biomass was significantly greater at elevated than at ambient CO2; the biomass of the root system, for example, increased by a factor of 2. The colonization of AMF inside the root remained constant, indicating that the total AMF inside the root system also increased by a factor of 2. The length of external AMF hyphae at elevated CO2 was up to 5 times that at ambient CO2, indicating that elevated CO2 promoted allocation of AMF biomass to the external hyphae. The concentration and content of phosphorus in the stolons differed significantly between ambient and elevated CO2 but this resulted in either an increase or a decrease, according to which AMF isolate occupied the roots. We hypothesized that an increase in external hyphal growth at elevated CO2 would result in increased P acquistion by the plant. To test this we supplied phosphorus, in a compartment only accessible to AMF hyphae. Plants did not acquire more phosphorus at elevated CO2 when phosphorus was added to this compartment. Large increases in AMF hyphal growth could, however, play a significant role in the movement of fixed carbon to the soil and increase soil aggregation. Received: 28 March 1998 / Accepted: 27 August 1998  相似文献   

19.
We tested the hypotheses that increased belowground allocation of carbon by hybrid poplar saplings grown under elevated atmospheric CO2 would increase mass or turnover of soil biota in bulk but not in rhizosphere soil. Hybrid poplar saplings (Populus×euramericana cv. Eugenei) were grown for 5 months in open-bottom root boxes at the University of Michigan Biological Station in northern, lower Michigan. The experimental design was a randomized-block design with factorial combinations of high or low soil N and ambient (34 Pa) or elevated (69 Pa) CO2 in five blocks. Rhizosphere microbial biomass carbon was 1.7 times greater in high-than in low-N soil, and did not respond to elevated CO2. The density of protozoa did not respond to soil N but increased marginally (P < 0.06) under elevated CO2. Only in high-N soil did arbuscular mycorrhizal fungi and microarthropods respond to CO2. In high-N soil, arbuscular mycorrhizal root mass was twice as great, and extramatrical hyphae were 11% longer in elevated than in ambient CO2 treatments. Microarthropod density and activity were determined in situ using minirhizotrons. Microarthropod density did not change in response to elevated CO2, but in high-N soil, microarthropods were more strongly associated with fine roots under elevated than ambient treatments. Overall, in contrast to the hypotheses, the strongest response to elevated atmospheric CO2 was in the rhizosphere where (1) unchanged microbial biomass and greater numbers of protozoa (P < 0.06) suggested faster bacterial turnover, (2) arbuscular mycorrhizal root length increased, and (3) the number of microarthropods observed on fine roots rose. Received: 18 March 1997 / Accepted: 5 August 1997  相似文献   

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