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1.
本试验采用U207均匀设计方案,通过无土栽培方法研究酸铝耦合处理对银杏幼株生长的效应。结果表明,在pH 4.5~5.5范围内,能耐铝(AlCl3)浓度可达0.4 mmol/L,而高浓度(0.8~1.2 mmol/L)的铝对银杏有毒害作用;pH高于5.0时,提高培养液中铝浓度对银杏生长无明显影响。总之,酸铝耦合加剧对银杏植株的毒害作用,尤其对根系的伤害更为明显,甚至导致烂根死根,从而使地上部停止生长。  相似文献   

2.
张群  陈鹏程  郑璞 《微生物学报》2018,58(7):1255-1265
【目的】通过琥珀酸放线杆菌Actinobacillus succinogenes CGMCC1593对酸胁迫的生理应答和转录组学分析,探究琥珀酸放线杆菌酸胁迫的机制。【方法】测定不同pH对细胞生长、H+-ATPase、细胞内pH的影响;测定酸胁迫前后细胞膜和谷氨酸脱氢酶的变化、谷氨酸对琥珀酸放线杆菌生长的影响;通过RNA-seq测序分析酸胁迫条件下的差异表达基因。【结果】随pH值的降低,细胞生长受抑制,H+-ATPase的活性下降。pH 4.7酸胁迫后,细胞膜受到严重损伤,谷氨酸对酸胁迫后的细胞有保护作用,GDH酶活响应酸胁迫后略有增加。酸胁迫后,39个基因差异表达较为显著,其中49%基因属于应激蛋白、转运蛋白,小部分基因与代谢相关。【结论】本文探究了琥珀酸放线杆菌酸胁迫下的生理及转录应答,研究结果可为寻找增强琥珀酸放线杆菌耐酸性策略提供参考。  相似文献   

3.
冯婧玮  冯万艳  孙学广 《菌物学报》2022,41(7):1055-1067
低磷和酸铝胁迫是酸性土壤限制植物生长的主要因素。有研究指出外生菌根(ectomycorrhiza,ECM)可提高宿主植物对铝毒害和低磷胁迫的适应性。然而,目前有关ECM真菌自身对低磷和酸铝环境的适应机理还不清楚。基于此,本研究以我国南方酸性土壤广泛分布的ECM真菌——粘盖乳牛肝菌Suillus bovinus为研究对象,在纯培养条件下研究了低磷、酸铝胁迫对其生长、营养吸收及菌丝分泌物的影响。结果表明,粘盖乳牛肝菌是一种耐铝型真菌,酸铝胁迫(1 mmol/L)不影响其菌丝生长,而低磷胁迫(20 μmol/L)则显著限制其菌丝生长(P<0.05)。值得注意的是,低磷胁迫的抑制效应可被酸铝胁迫逆转。低磷胁迫显著降低了粘盖乳牛肝菌对磷的吸收(P<0.05),而酸铝胁迫则对菌丝钾的吸收有促进作用。低磷、酸铝胁迫同样改变了菌丝分泌物组成。在低磷胁迫下,大量酚酸类、有机酸及脂质代谢物的积累量下调;而酸铝胁迫下则有大量酚酸类物质上调,有机酸和脂质中上调代谢物数量也高于下调数量;低磷酸铝复合胁迫下酚酸和有机酸类代谢物积累量均显著上调。另外,吲哚-3-乙酸(IAA)在各胁迫下均显著上调。以上结果可在一定程度上解释粘盖乳牛菌对低磷、酸铝环境的适应机理,并对后续进一步阐明ECM的共生适应机理有一定指导意义。  相似文献   

4.
以燕麦品种‘白燕2号’为材料,试验分别设置0、50、100、150、200 mmol/L盐胁迫(NaCl∶Na2SO4=5∶1)和碱胁迫(NaHCO3∶Na2CO3=5∶1)处理的温室内盆栽试验,观测燕麦植株生长速率、植株含水率、叶片离子含量及叶片各类有机酸含量,分析不同盐胁迫、碱胁迫对燕麦离子平衡的影响,并比较燕麦对两类胁迫的适应性差异。结果显示:(1)燕麦植株生长速率和植株含水率在低浓度(50和100 mmol/L)盐胁迫下均升高,而高浓度(150和200 mmol/L)盐胁迫下则降低;燕麦植株生长速率和植株含水率均随碱胁迫浓度增加而降低;在相同胁迫浓度下,碱胁迫对植株生长率、植株含水率的影响大于盐胁迫。(2)燕麦叶片K+、Ca2+、Mg2+、H3PO-4、NO-3 含量均随盐、碱浓度升高而降低,而Na+、Cl-、SO2-4含量在盐、碱胁迫下均大幅上升;200 mmol/L盐、碱胁迫下,Na+ 含量分别较对照增加367.15%和518.41%,Cl- 含量分别较对照增加785.07%和52.59%,SO2-4 分别较对照增加142.01%和52.86%。(3)200 mmol/L盐、碱胁迫下,有机酸分别较对照增加74.52%和1 232.34%;碱胁迫及高浓度盐胁迫下燕麦叶片的柠檬酸、乌头酸、琥珀酸和苹果酸含量均高于对照,且乌头酸是燕麦响应盐胁迫、碱胁迫的主要有机酸成分,柠檬酸和琥珀酸略有变化,而甲酸、乙酸、乳酸、苹果酸、草酸含量均相对较低。研究表明,碱胁迫对燕麦植株生长速率、植株含水率、叶片离子含量及叶片各类有机酸含量的影响大于盐胁迫;盐胁迫与碱胁迫均引起燕麦叶片阳离子(Na+)大量积累,而K+、Ca2+、Mg2+、H3PO-4及NO-3吸收受阻;燕麦叶片在盐胁迫下主要通过积累Cl-调节叶片离子平衡,而碱胁迫下主要通过积累有机酸来调节离子平衡;有机酸是燕麦叶片响应碱胁迫的特异代谢物,其中乌头酸是其有机酸的主要成分。  相似文献   

5.
城市地表硬化对银杏生境及生理生态特征的影响   总被引:2,自引:0,他引:2  
宋英石  李锋  王效科  付芝红  赵丹 《生态学报》2014,34(8):2164-2171
城市大规模的地表硬化改变了城市环境,影响了城市中植物的正常生长。利用土壤水分温度仪ECH2O测定了不同硬化地表下土壤含水率(WCS)和土壤温度(Ts),利用LI-6400光合仪,并配备荧光叶室,测定了银杏生长的环境因子和银杏生理生态参数。研究结果表明,城市地表硬化对银杏生长环境的影响主要表现为空气温度(Ta)和土壤温度(Ts)升高,空气相对湿度(RH)和土壤含水率(WCS)下降,银杏对地表硬化的生理生态响应表现为净光合速率(Pn)、蒸腾速率(Tr)、气孔导度(Gs)降低,叶面饱和水汽压亏缺(VPDL)增大,叶片含水率(LWC)下降;最大光化学效率(Fv/Fm)和PSⅡ实际光合电子传递量子效率(ΦPSⅡ)下降,硬化程度越高,银杏受到的胁迫越重;受城市地表硬化的影响,银杏吸收的光能用于光化学反应的比例减少,而用于热耗散和荧光耗散的比例增加,城市硬化地表上银杏的水分利用效率(WUE)、光能利用效率(LUE)和CO2利用效率(CUE)明显下降。  相似文献   

6.
酸铝胁迫是限制植物正常生长发育的重要非生物胁迫因子,严重制约了我国酸性土壤地区的农业生产水平。植物抵御酸铝胁迫的形式复杂多样,如分泌有机酸、提高根际pH、分泌黏液、细胞壁对Al3+的固定、有机酸对细胞溶质中Al3+的螯合与液泡区隔化等。现有研究多集中于常规生理特征分析,缺乏深入的分子生物学解析。基于此,本文对国内外植物适应酸铝胁迫机理的相关研究进行了归纳和总结,从酸铝胁迫对植物生长与生理代谢的影响、植物适应酸铝胁迫最主要的两种生理机制(Al排除机制、Al耐受机制)以及分子水平上调控相关耐铝基因进行了综述。最后针对现有研究的不足提出了展望,以期为深入揭示植物适应酸铝胁迫的机理以及挖掘适于酸土生长的优质作物资源提供理论依据。  相似文献   

7.
以‘日本晴’水稻为试验材料,研究铝胁迫对水稻幼苗生长的影响,及铝胁迫下其根系和功能叶片中脂质含量及组分的变化。结果表明Al处理显著抑制了水稻根尖的伸长和生长,降低了植株的生物量以及叶绿素含量。铝胁迫后,半乳糖脂含量变化显著,根和叶中的单半乳糖甘油二酯(MGDG)和双半乳糖甘油二酯(DGDG)含量均降低;而磷脂(PL)及硫代异鼠李糖甘油二酯(SQDG)的含量在根中表现为上升,在叶中则显著降低。此外,根和叶中的脂肪酸不饱和度均降低。由此可见,铝胁迫引起水稻膜脂组分和含量的变化,这种变化可能是铝抑制植物生长的重要原因之一。  相似文献   

8.
探讨了铝胁迫对入侵植物北美车前生长特性和生物量分配的影响.结果表明:低浓度( 100 mg/L)的铝胁迫处理对北美车前的生长无显著影响,高浓度(2 000 mg/L)使植株叶片数减少、叶面积变小;短时间高浓度铝胁迫促进北美车前的抽穗数,长时间(30 d)铝胁迫处理后穗生长受到抑制,这种抑制作用在高浓度铝胁迫处理下表现尤...  相似文献   

9.
以4年生银杏幼苗为材料,进行不同浓度盐胁迫(50、100、200 mmol·L-1)处理,叶片喷施和土壤浇灌外源褪黑素溶液(0、0.02、0.1、0.5 mmol·L-1),研究外源褪黑素对盐胁迫下银杏幼苗渗透调节和抗氧化能力的影响。结果表明:盐胁迫显著抑制银杏幼苗渗透调节和抗氧化能力,而在盐胁迫下施用适宜浓度(0.02、0.1 mmol·L-1)的外源褪黑素能够促进植株生长,降低电解质外渗率,减少黄酮和丙二醛含量,促进叶片中过氧化物酶、超氧化物歧化酶(SOD)活性的提高,但高浓度(0.5 mmol·L-1)外源褪黑素会进一步加剧氧化胁迫和渗透胁迫。0.02和0.1 mmol·L-1外源褪黑素处理缓解了盐胁迫下银杏幼苗的渗透胁迫和氧化胁迫,且0.02 mmol·L-1外源褪黑素处理对盐胁迫缓解效果最佳。地径、枝条宽度、枝条长度、电解质外渗率、SOD活性和黄酮含量可作为快速鉴定银杏受盐胁迫程度的关键指标。  相似文献   

10.
模拟酸雨对油菜(Brassica napus L.)生长、产量及品质的影响   总被引:3,自引:0,他引:3  
以油菜为供试材料,通过田间试验方法研究了酸雨对农作物生长、产量及品质的胁迫效应.研究结果表明,模拟酸雨胁迫对油菜的生长发育有较大的影响,具体表现为株高、叶面积生长受抑,叶单面鲜重明显降低,且在pH3.1时开始出现外观上的可见伤害;产量的分析结果表明,pH4.1可作为酸雨对油菜产量的影响阈限;品质特征指标分析结果表明,酸雨胁迫会导致油菜粗脂肪含量降低,使可溶性糖含量减少,而且随着酸度增强,粗脂肪与可溶性糖降低幅度越大;酸雨胁迫对可溶性蛋白质的影响阈限在pH5.1与pH4.1之间,对游离氨基酸总量的影响阈限在pH4.1与pH3.1之间,而对还原性糖、总酸度的影响阈限则在pH3.1与pHl.5之间,但以上各指标的确切阈值及酸雨对其影响的具体机理还有待进一步研究.  相似文献   

11.
为研究模拟酸雨和铝(Al)对茶叶主要化学品质与Al积累的影响及其交互作用,采用3个酸度水平(pH 3.0、4.0、5.0)和4种Al浓度水平(0、10、20、30 mg L-1),用溶液培养法研究茶叶的主要化学指标和Al含量的异同.结果表明,在模拟酸雨下,茶叶的茶多酚和咖啡碱含量随酸度增加先增加后下降,氨基酸、儿茶素和...  相似文献   

12.
植物残茬对土壤酸度的影响及其作用机理   总被引:10,自引:0,他引:10  
土壤强酸性是作物生长的最主要限制因子之一,某些植物残茬可以有效地提高土壤pH,降低活性铝含量,提高作物产量。植物残茬改良土壤酸度的效能因种而异,最高土壤pH升幅可达4.53个单位,多种豆科植物材料可使土壤pH提高2个单位以上,当pH>5时,土壤溶液活性铝降至极低水平,从而消除铝害。植物残茬改良土壤酸度的效能受植物残茬自身特性与土壤特性的影响,而且pH的上升通常在几个月后消失,但这种效能对当季作物有效。植物体内有机酸根的去羧化作用被认为是pH上升的主要机理之一,去羧化机理存在的主要证据是,随着土壤pH升高,植物材料内的可溶性有机成分下降,CO2排放与pH上升高度相关,以及杀菌条件下土壤pH上升速度显著减慢。超量碱机理是植物残茬导致pH上升的又一可能的重要机理,亦即有机盐的作用,有机盐分解转化为碳酸盐,其作用与石灰完全相似,有机盐水解也可导致土壤溶液的碱性反应。铵化作用与硝化作用是高氮植物材料影响土壤酸度的重要机理,有机氮的铵化直接消耗质子,铵的硝化则产生质子,pH的变化与这些氮过程高度相关。含硫植物材料及有机物质分解过程产生的氧化还原条件的变化,也可对土壤pH产生影响,但它们的作用较小。综合来看,去羧化作用机理基于间接证据,没有得到严格验证,超量碱机理可能是土壤pH上升的主要原因,超量碱只能转移,不能制造,含超量碱高的外源性有机材料施入耕地,将是改良土壤酸度,提高作物产量的一种有效途径。  相似文献   

13.
钙离子对紫花苜蓿及苜蓿根瘤菌耐酸能力的影响   总被引:2,自引:0,他引:2  
土壤酸性是阻碍苜蓿根瘤菌与其宿主紫花苜蓿之间高效共生固氮的重要环境因子.本文研究了Ca2 对紫花苜蓿及苜蓿根瘤菌耐酸能力的影响.结果表明:加入一定浓度的Ca2 (5和10mmol·L-1)能提高苜蓿根瘤菌的生长速率,使苜蓿根瘤菌提前进入对数生长期.中性pH条件下,Ca2 的加入对苜蓿根毛变形率无显著影响;低pH条件下,加入2、5和10mmol·L-1的Ca2 均可提高根毛变形率,Ca2 浓度越高,其影响越显著,说明低pH下Ca2 可能会促进苜蓿根瘤菌与其宿主之间的识别.低pH条件下加入Ca2 可以使苜蓿结瘤提前,结瘤率提高;结瘤动力学检测结果表明,加入一定浓度的Ca2 可以使同期结瘤数增加,越是结瘤后期,环境pH越低,这种表现越明显.  相似文献   

14.
施用尿素引起红壤pH及铝活性的短期变化   总被引:18,自引:1,他引:17  
酸性红壤在我国南方广泛分布,其酸性是限制大多数作物生长的一个主要环境胁迫因子,主要原因是低pH条件下土壤中Al的溶解所导致的毒性.对3种红壤施用不同浓度的尿素,其pH值在短期内都随着施入尿素浓度的增大而急剧上升,交换性Al随着施用尿素浓度的增大而急剧下降.交换性Al含量与土壤pH值变化呈显著负相关.动态试验表明,pH值上升的现象是短期的,pH值在达最大值后缓慢下降,下降幅度最大的阶段在第2~4周.短期内,施用尿素能显著降低酸性土壤对玉米的铝毒效应.  相似文献   

15.
The contribution of Mg deficiency to Al stress in twelve different sorghum (Sorghum bicolor (L.) Moench) genotypes was investigated in nutrient solution culture under conditions of low Mg supply (between 50 and 1000 M) at two pH values. At pH 4.2, 30 M Al strongly inhibited Mg uptake. When dry matter yield was plotted as a function of the plant Mg concentration, similar response curves were obtained in the absence and the presence of Al with three genotypes. With many other genotypes dry matter yields of the control (without Al treatment) and Al-stressed plants were remarkably different at similar internal Mg concentrations, suggesting that growth had been suppressed not by Mg deficiency but by another factor, i.e. Al-induced root damage. At pH 4.8, 30 M Al hardly induced root damage but reduced Mg uptake and Al-induced Mg deficiency could almost completely account for the growth reaction of all genotypes. Therefore, at this pH the efficiency of uptake or use of Mg in different genotypes was the basis of their respective susceptibility to Al toxicity. When specific root length surpassed a certain critical range below 80–100 m per g dry root, growth control by Al-induced Mg deficiency was nearly abolished. The pH and Al concentration where this range was reached depended on the Al sensitivity of the genotypes.  相似文献   

16.
The aluminium tolerance of several tree species was studied in a cloud forest in Northern Venezuela, growing on a very acid soil and rich in soluble Al. The Al-accumulator species (>1000 ppm in leaves) were compared to non-accumulator ones in relation to total Al concentration in xylem sap, pH and Al concentration in vacuoles, and rhizosphere alkalinization capacity. The Al3+ concentration in the soil solution and the xylem sap were also measured. The results show that in the Al-accumulator plant Richeria grandis, xylem sap is relatively rich in Al and about 35% of it is present in ionic form. In the non-accumulator plant studied (Guapira olfersiana) there is no Al detectable in xylem sap. The pH of vacuolar sap of several Al-accumulator species studied was very acidic and ranged between 2.6–4.8, but the presence of Al in vacuoles was not correlated with the acidity of the vacuolar sap. Both Al-accumulator and non accumulator plants had the capacity to reduce acidity of the rhizosphere and increased the pH of the nutrient solution by one unit within the first 24 hours. Trees growing in natural, high acidity-high Al3+ environment show a series of tolerance mechanisms, such as deposition of Al in vacuoles, Al chelation and rhizosphere alkalinization. These partially ameliorate the toxic effects of this element, but they probably impose a high ecological cost in terms of photosynthate allocation and growth rate.  相似文献   

17.
The effects of Al, Cd and pH on growth, photosynthesis, malondialdehyde (MDA) content, and some antioxidant enzyme activities of the two soybean cultivars with different Al tolerance were determined using a hydroponic culture. There were six treatments as follows: pH 6.5; pH 4.0; pH 6.5 + 1.0 μM Cd; pH 4.0 + 1.0 μM Cd; pH 4.0 + 150 μM Al; pH 4.0 + 1.0 μM Cd + 150 μM Al. The results showed that the low pH (4.0) and Al treatments caused marked reduction in the growth (root and shoot length and dry mass), chlorophyll content (SPAD value) and net photosynthetic rate. Higher malondialdehyde content, superoxide dismutase (SOD) and peroxidase (POD) activities were detected in the plants exposed to both Al and Cd than in those exposed to Al treatment alone. An expressive enhancement of SOD and POD was observed in the plants exposed to 150 μM Al in the comparison with the control plants, especially in Al-sensitive cv. Zhechun 2 which had also significantly higher Al and Cd content than Al tolerant cv. Liao-1. Cd addition increased Al content in the plants exposed to Al + Cd stress, and cv. Zhechun 2 had relatively lower Al content. The present research indicated that Al and Cd are synergistic in their effects on plant growth and some physiological traits.  相似文献   

18.
The growth of four tropical legumes (Cajanus cajan, Sesbania aculeata, S. rostrata, and S. speciosa) used as green manures in the tropics was studied in a glasshouse experiment. Two acid sulfate soils (Typic Sulfaquept, Bang Pakong Series; and Sulfic Tropaquept, Rangsit Series) were adjusted to four pH levels: 3.8 or 4.0 (original soil pH), 4.5, 5.5, and 6.5 (amended with lime). Dry weight was determined 49 days after sowing. Concentrations of N, P, K, Ca, Mg, Fe, Mn, and Al were also determined in aerial plant parts at harvest.The legumes responded differently to soil acidity and liming, but not to soil type. Cajanus cajan had the highest biomass production, followed by S. aculeata, S. rostrata and S. speciosa, in this order. The N concentration closely paralleled biomass production, suggesting that the growth of symbiotic rhizobia and nodulation were perhaps more susceptible to soil acidity than were the host plants. Liming to pH 5.5–6.0 was recommended for the legumes' growth based on the quadratic relationships between dry-matter yield and soil pH. In the unlimed soils, the Ca concentration in C. cajan and S. aculeata (0.32%) was twice as high as that in the two low-yielding legumes (0.15%). Furthermore, plant Ca increased exponentially (or quadratically in case of S. speciosa) as lime additions increased. It was estimated that for adequate growth, the Ca requirement in the shoot dry matter was approximately: C. cajan 1.2% Ca, S. aculeata 0.8%, S. rostrata 0.6%, and S. speciosa 0.4%. In contrast with Ca, the concentration of Fe, and to a lesser extent Mn, was significantly lower in C. cajan and S. aculeata than in S. rostrata and S. speciosa. The ratio of Ca to Al in plant tops was used to characterize plant tolerance to soil acidity, and to quantify the critical Al concentration in the plants. It appears that 90% maximum growth was attained only when Ca/Al was 150 for C. cajan and S. speciosa, 200 for S. rostrata, and 300 for S. aculeata. Cajanus cajan tolerated up to 80 mg Al kg-1 in the shoot dry matter, whereas significant growth reduction occurred in the Sesbania species at levels > 30 mg Al kg-1.  相似文献   

19.
为探究不同改良剂对酸性土壤铝(Al)胁迫条件下镉(Cd)锌(Zn)超积累植物伴矿景天Sedum plumbizincicola生长以及镉和锌吸取修复效率的影响,分别添加不同种类改良剂(钙镁磷肥(CMP)、MgCO3、KH2PO4)和不同浓度CMP进行温室盆栽试验。结果表明,CMP能够一定程度上提高土壤pH值并降低土壤交换性Al的浓度,MgCO3能够显著提高土壤pH值和降低土壤交换性Al的浓度,KH2PO4能够降低土壤中交换性Al浓度但未改变土壤pH值。施用适量的CMP(9.39 mg/kg)能够提高伴矿景天生物量和Cd、Zn吸取修复效率,用量过高会抑制伴矿景天生长和Cd、Zn修复效率;施用MgCO3可增大伴矿景天生物量和Cd、Zn修复效率,施用KH2PO4反而抑制了伴矿景天生长。酸性土壤上施用适量的CMP和MgCO3能够缓解伴矿景天的铝毒作用,维持较高的重金属吸收效率。  相似文献   

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