257 resultados para Arbuscular mycorrhiza


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The utilization and management of arbuscular mycorrhiza (AM) symbiosis may improve production and sustainability of the cropping system. For this purpose, native AM fungi (AMF) were sought and tested for their efficiency to increase plant growth by enhanced P uptake and by alleviation of drought stress. Pot experiments with safflower (Carthamus tinctorius) and pea (Pisum sativum) in five soils (mostly sandy loamy Luvisols) and field experiments with peas were carried out during three years at four different sites. Host plants were grown in heated soils inoculated with AMF or the respective heat sterilized inoculum. In the case of peas, mutants resistant to AMF colonization were used as non-mycorrhizal controls. The mycorrhizal impact on yields and its components, transpiration, and P and N uptake was studied in several experiments, partly under varying P and N levels and water supply. Screening of native AMF by most probable number bioassays was not very meaningful. Soil monoliths were placed in the open to simulate field conditions. Inoculation with a native AMF mix improved grain yield, shoot and leaf growth variables as compared to control. Exposed to drought, higher soil water depletion of mycorrhizal plants resulted in a haying-off effect. The growth response to this inoculum could not be significantly reproduced in a subsequent open air pot experiment at two levels of irrigation and P fertilization, however, safflower grew better at higher P and water supply by multiples. The water use efficiency concerning biomass was improved by the AMF inoculum in the two experiments. Transpiration rates were not significantly affected by AM but as a tendency were higher in non-mycorrhizal safflower. A fundamental methodological problem in mycorrhiza field research is providing an appropriate (negative) control for the experimental factor arbuscular mycorrhiza. Soil sterilization or fungicide treatment have undesirable side effects in field and greenhouse settings. Furthermore, artificial rooting, temperature and light conditions in pot experiments may interfere with the interpretation of mycorrhiza effects. Therefore, the myc- pea mutant P2 was tested as a non-mycorrhizal control in a bioassay to evaluate AMF under field conditions in comparison to the symbiotic isogenetic wild type of var. FRISSON as a new integrative approach. However, mutant P2 is also of nod- phenotype and therefore unable to fix N2. A 3-factorial experiment was carried out in a climate chamber at high NPK fertilization to examine the two isolines under non-symbiotic and symbiotic conditions. P2 achieved the same (or higher) biomass as wild type both under good and poor water supply. However, inoculation with the AMF Glomus manihot did not improve plant growth. Differences of grain and straw yields in field trials were large (up to 80 per cent) between those isogenetic pea lines mainly due to higher P uptake under P and water limited conditions. The lacking N2 fixation in mutants was compensated for by high mineral N supply as indicated by the high N status of the pea mutant plants. This finding was corroborated by the results of a major field experiment at three sites with two levels of N fertilization. The higher N rate did not affect grain or straw yields of the non-fixing mutants. Very efficient AMF were detected in a Ferric Luvisol on pasture land as revealed by yield levels of the evaluation crop and by functional vital staining of highly colonized roots. Generally, levels of grain yield were low, at between 40 and 980 kg ha-1. An additional pot trial was carried out to elucidate the strong mycorrhizal effect in the Ferric Luvisol. A triplication of the plant equivalent field P fertilization was necessary to compensate for the mycorrhizal benefit which was with five times higher grain yield very similar to that found in the field experiment. However, the yield differences between the two isolines were not always plausible as the evaluation variable because they were also found in (small) field test trials with apparently sufficient P and N supply and in a soil of almost no AMF potential. This similarly occurred for pea lines of var. SPARKLE and its non-fixing mycorrhizal (E135) and non-symbiotic (R25) isomutants, which were tested in order to exclude experimentally undesirable benefits by N2 fixation. In contrast to var. FRISSON, SPARKLE was not a suitable variety for Mediterranean field conditions. This raises suspicion putative genetic defects other than symbiotic ones may be effective under field conditions, which would conflict with the concept of an appropriate control. It was concluded that AMF resistant plants may help to overcome fundamental problems of present research on arbuscular mycorrhiza, but may create new ones.

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Response to mineral fertilization and inoculation with rhizobia and/or arbuscular mycorrhiza fungi (AMF) of the Anadenanthera colubrina, Mimosa bimucronata and Parapiptadenia rigida (Leguminosae-Mimosoideae) native trees from Brazilian riparian forests, were studied in nursery conditions. Each species was submitted to seven treatments, varying nitrogen and phosphorous fertilization and inoculation with rhizobia (r), mycorrhiza (m) or both (rm): NP, P, P + r, P + rm, N, N + m and N + rm. Results showed that AMF inoculations did not enhance the mycorrhizal colonization, and P uptake was not sufficient to sustain good growth of plants. The level of P mineral added affected negatively the AMF colonization in A. colubrina and M. bimucronata, but not in P. rigida. Native fungi infected the three legume hosts. The absence of mineral N limited growth of A. colubrina and P. rigida, but in M. bimucronata the lack of N was corrected by biological nitrogen fixation. N mineral added inhibited the nodulation, although spontaneous nodulation had occurred in A. colubrina and M. bimucronata. Rhizobia inoculation enhanced the number of nodules, nitrogenase activity and leghemoglobin content of these two species. Thus, the extent of rhizobial and mycorrhizal symbiosis in these species under nursery conditions can affect growth and consequently the post-planting success. (C) 2004 Elsevier B.V. All rights reserved.

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Phosphorus and nitrogen are essential nutrient elements that are needed by plants in large amounts. The arbuscular mycorrhizal symbiosis between plants and soil fungi improves phosphorus and nitrogen acquisition under limiting conditions. On the other hand, these nutrients influence root colonization by mycorrhizal fungi and symbiotic functioning. This represents a feedback mechanism that allows plants to control the fungal symbiont depending on nutrient requirements and supply. Elevated phosphorus supply has previously been shown to exert strong inhibition of arbuscular mycorrhizal development. Here, we address to what extent inhibition by phosphorus is influenced by other nutritional pathways in the interaction between Petunia hybrida and R. irregularis. We show that phosphorus and nitrogen are the major nutritional determinants of the interaction. Interestingly, the symbiosis-promoting effect of nitrogen starvation dominantly overruled the suppressive effect of high phosphorus nutrition onto arbuscular mycorrhiza, suggesting that plants promote the symbiosis as long as they are limited by one of the two major nutrients. Our results also show that in a given pair of symbiotic partners (Petunia hybrida and R. irregularis), the entire range from mutually symbiotic to parasitic can be observed depending on the nutritional conditions. Taken together, these results reveal complex nutritional feedback mechanisms in the control of root colonization by arbuscular mycorrhizal fungi.

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Suomen maatalousmaihin kertynyttä fosforia hyödynnetään tehottomasti, ja samalla muokkauskerroksen suuri fosforimäärä on alttiina huuhtoutumiselle. Arbuskelimykorritsaa (AM) hyödyntämällä on mahdollista tehostaa viljelykasvin fosforinottoa ja kasvua, ja siten vähentää fosforin huuhtoutumista. Tämän tutkielman tavoitteena oli selvittää mykorritsan vaikutus kasvin kasvuun ja fosforinottoon karjanlantalannoituksella mineraalilannoitukseen verrattuna sekä näiden lannoitusten pitkäaikaisvaikutusta AM-sieniyhteisöihin. Jotta lannoituskäytäntöjen vaikutus mykorritsaan voitiin suhteuttaa muihin maan laatutekijöihin, näiden käytäntöjen vaikutus myös satomääriin sekä muihin maan laatumittareihin arvioitiin. Pitkäaikainen kenttäkoe perustettiin kolmelle paikkakunnalle Pohjois-Ruotsissa vuosina 1965–66. Kuusivuotinen viljelykierto koostui joko viisivuotisesta nurmesta ja ohrasta tai ohramonokulttuurista. Lannoituskäsittelyt 32-vuoden ajan olivat suositusten mukainen (NPK) ja edelliseen nähden kaksinkertainen (2NPK) mineraalilannoitus sekä karjanlantalannoitus (KL), jonka ravinnemäärä vastasi NPK -käsittelyä. Kolmen lannoituskäsittelyn vaikutusta mykorritsan tehokkuuteen kasvin kasvun ja fosforiravitsemuksen näkökulmasta tutkittiin astiakokeissa. Mykorritsasieniyhteisöjen toiminnallisten erojen selvittämiseksi tehtiin takaisin- ja ristiinsiirrostuskoe. (5 v-%) steriloitua maanäytettä NPK- ja KL -käsittelyistä siirrostettiin käsittelemättömiin maanäytteisiin, jotka olivat samoista lannoituskäsittelyistä. Mykorritsan positiivinen vaikutus kasvin kasvuun ja fosforiravitsemukseen oli suurin kun käytettiin karjanlantaa. NPK ja 2NPK -käsittelyiden välillä ei havaittu eroja. Takaisin- ja ristiinsiirrostuskokeessa ei ollut tilastollisesti merkitseviä eroja. Nurmi- ja ohrasadot olivat suurimmat kun mineraalilannoitetta annettiin suosituksiin nähden kaksinkertainen määrä. Satomäärät olivat yhtä suuret tai suuremmat kun käytettiin karjanlantaa NPK –lannoituksen sijaan. Karjanlantakäsittely lisäsi maaperän kokonaishiili- ja kokonaistyppipitoisuutta verrattuna NPK -käsittelyyn, joka sisälsi saman määrän ravinteita. Samalla huuhtoutumiselle altis liukoisen fosforin pitoisuus säilyi alhaisella tasolla. Karjanlanta edisti mykorritsan toimintaedellytyksiä, ja siksi mykorritsasta saatua hyötyä fosforinotossa ja kasvuvaikutuksena mineraalilannoitteisiin verrattuna, mutta se ei vaikuttanut mykorritsasieniyhteisön toiminnallisiin ominaisuuksiin. Karjanlantalannoitus paransi mitattuja maan ominaisuuksia kokonaisuudessaan, eikä se vähentänyt satoja.

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克隆植物同一基株的相连克隆分株或克隆片段常常生长在资源条件不同的斑块中,分株间形成克隆整合和克隆可塑性以及克隆分工等有效地获取必需资源的生态适应对策,提高在异质性斑块生境中的适合度,适应环境的异质性变化。但在以往的克隆植物生态学的理论研究中,为了研究的简化和方便,往往忽略了土壤中微生物的作用。丛枝菌根(Arbuscular mycorrhiza, AM)真菌是自然界中广泛存在的土壤微生物之一,可与大多数的高等植物形成共生菌根,影响植物的生长、发育及其在生态系统中的作用。 本文应用实验生态学方法,以蛇莓、狗牙根和白三叶为研究对象,在温室受控条件下,对异质养分斑块中的分株对接种AM真菌,探讨AM真菌对资源斑块中克隆植物的影响。 第一个实验设计单一磷养分斑块,以蛇莓(Duchesnea indica)和摩西球囊霉(Glomus mosseae)为研究对象,探讨丛枝AM真菌对克隆整合的影响。将蛇莓相连的两个分株,即分株对,分别种植在两个隔离的花盆中,各施以高磷和低磷营养液,保持或切断分株间匍匐茎连接,即间隔子,再将菌剂接种到低磷斑块中分株。结果发现间隔子状态和接菌处理都显著影响低磷斑块中蛇莓分株的根系生物量分配。对照处理中保持间隔子连接显著减少低磷斑块中分株生物量向根系的分配,接菌后这一差异显著减小。保持间隔子连接或接菌对高磷斑块中分株的根系生物量分配不显著。保持间隔子连接和接菌都显著增加低磷斑块分株的生物量在分株对生物量中所占比例,二者无显著交互作用。 第二个实验设计光照和养分斑块,以狗牙根(Cynodon dactylon)和摩西球囊霉为研究对象,探讨AM真菌对克隆植物非局域反应的影响。将狗牙根分株对的两个分株分别种植在两个花盆中,各施以光照强度与土壤养分交互斑块性环境条件,形成高养低光和高光低养斑块,保持或切断间隔子,再将菌剂接种到目标分株。结果发现对照处理中,间隔子状态显著影响分株的局域反应。高养斑块中保持间隔子连接的分株的根长显著大于间隔子断裂的分株的根长,高光斑块中保持间隔子连接的分株的根长显著小于间隔子断裂的分株的根长。高光斑块中保持间隔子连接的分株的叶面积显著大于间隔子断裂的分株的叶面积,间隔子状态对低光高养斑块分株的叶面积无显著影响。在低光高养斑块中,相对于间隔子断裂的分株,间隔子连接的分株将更多的生物量分配到根系,而在高光斑块中的分株则相反。这些都说明,无AM真菌侵染的情况下,狗牙根分株对的两个分株在实验中各自形成的克隆部分的分株形态反应都受到了克隆整合的作用,表现为非局域反应。接种AM真菌后,高光斑块中分株的根长和高养斑块中分株的叶面积在间隔子连接和断裂处理之间的差异显著减小。生物量分配的差异不受接菌的影响。对照处理中,高养斑块中间隔子连接的分株生物量和分株数显著高于间隔子断裂的分株,但高光斑块中分株之间无显著差异。接种AM真菌显著降低高养斑块中分株的生物量和分株数,对高光斑块中分株无显著影响。 第三个实验设计光照和养分交互斑块,以白三叶(Trifolium repens)和多种AM真菌为研究对象,探讨AM真菌及其多样性对克隆分工的影响。将间隔子连接(整合)或断裂(无整合)的白三叶分株对种植于光照强度和土壤养分交互斑块性资源条件下(即,高光低养和低光高养),向分株对接种灭菌处理、单种或五种AM真菌的菌剂。结果发现,对照处理中,间隔子连接的分株对在光养交互斑块中与间隔子断裂的分株对相比较表现出克隆分工,即高光低养斑块中的分株的根系生物量分配增加,低光高养斑块中的分株的根系生物量分配减少。单菌处理没有影响对照处理中间隔子状态对分株对生物量分配的改变;多菌处理显著减小对照中生物量分配的改变;与单菌处理比较,多菌处理能显著减小生物量分配的改变。在高光低养斑块中,多菌处理显著抑制间隔子断裂分株的根生物量分配的增加。在低光高养斑块中,多菌处理完全抑制在对照处理中间隔子连接的分株的根生物量分配的增加。在对照处理中,间隔子连接分株的单叶面积、总叶面积、叶柄长、根长都与生物量分配趋势一致,表现出对丰富资源的特化。接菌处理能显著抑制这些形态指标的改变。多菌处理显著抑制这些指标的特化,并且抑制效果显著强于单菌处理。间隔子状态和AM真菌处理显著增加高光低养、低光高养斑块中分株及整个克隆片段的生物量和分株数。多菌处理抑制间隔子连接的克隆片段生物量和分株数增加。克隆片段的生物量和分株数在对照和单菌处理间无显著差异,在多菌处理中显著高于在单菌处理中。 以上三个实验说明,(1)AM真菌对克隆植物生长的影响与非克隆植物一样,受到植物种类和环境资源水平的影响;(2)AM真菌对异质性资源环境中克隆植物的影响由于植物不同而产生不同的效应;(3)提高AM真菌的多样性可能增强菌根对克隆植物的作用。 这些研究结果揭示出AM真菌与异质性环境中克隆植物整合作用、非局域反应和克隆分工作用的交互影响,表明克隆生长在生态系统中的重要性可由生物和非生物因素共同决定。