984 resultados para AFFINE ROOT SYSTEMS
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La phytoremédiation constitue une technologie alternative pour le traitement de sols contaminés en métaux. Toutefois, la biodisponibilité des métaux dans le sol peut limiter l’efficacité de cette approche. Nous émettons l’hypothèse que diverses espèces de plante, caractérisées par systèmes racinaires différents, peuvent affecter différemment la biodisponibilité des éléments traces (ET) dans le sol. Une étude utilisant un dispositif expérimental en bloc aléatoire complet avec cinq réplicats a été conduite entre le 6 juin et le 3 septembre 2014, sur le site du Jardin botanique de Montréal. Dans ce contexte, l’impact de la présence de huit espèces de plantes, herbacées ou ligneuses, sur le pool labile de six métaux (Ag, Cu, Pd, Zn, Ni et Se) dans la rhizosphère de celles-ci a été étudié. Après trois mois de culture, la biomasse aérienne et souterraine de chaque espèce a été mesurée et la concentration en ET dans les tissus des plantes a été analysée. La fraction labile de ces ET dans la rhizosphère (potentiellement celle qui serait biodisponible) de même que d’autres paramètres édaphiques (le pH, la conductivité, le pourcentage de matière organique et le carbone organique dissous (COD)) ont aussi été mesurés et comparés en fonction de la présence d’une ou l’autre des espèces utilisées. Les résultats montrent que pour la plupart des plantes testées, les plus fortes concentrations en ET ont été trouvées dans les racines alors que les plus faibles niveaux s’observaient dans les parties aériennes, sauf pour le Ni dans le Salix nigra. Ceci suggère que le Ni peut être extrait du sol par des récoltes régulières des tiges et des feuilles de cette espèce de saule. Les pools labiles de l’Ag, Ni et du Cu dans la rhizosphère étaient significativement et différemment affectés par la présence des plantes. Toutefois, la présence des plantes testées n’a pas affecté certains paramètres clés de la rhizosphère (ex. le pH, conductivité, et le pourcentage de matière organique). À l’opposé, les niveaux de COD dans la rhizosphère de toutes les plantes testées se sont révélés supérieurs en comparaison des témoins (sols non plantés). De plus, une corrélation positive a pu être établie entre la concentration disponible du Ni et la concentration en COD. Une relation similaire a été déterminée pour le Cu. Ceci suggère que certains systèmes racinaires pourraient modifier les niveaux de COD et avoir un impact indirect sur les pools labiles des ET dans le sol.
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Aquest treball es centra en l'estudi de la regeneració vegetativa en els estadis inicials del desenvolupament de Quercus coccifera, Q. humilis, Q. ilex i Q. suber, analitzant la capacitat de rebrotada després de l'eliminació de la biomassa aèria. S'ha realitzat una descripció, a nivell histològic, de l'ontogènesi del nus cotiledonar des de l'embrió fins a la plàntula de mig any d'edat de Q. coccifera, Q. humilis i Q. ilex. Així mateix, s'ha analitzat el contingut de midó i de nitrogen a la primavera, l'estiu i l'hivern en diferents parts de les plàntules de les quatre espècies, avaluant, alhora, l'efecte de la tala. D'altra banda, també s'ha estudiat la biometria de les glans, la capacitat de germinació i el creixement de les plàntules de les quatre espècies de Quercus. A partir dels resultats s'ha comprovat que les glans de Q. suber, en general, són més grans, tant en diàmetre com en longitud, i tenen un pes superior, mentre que les de Q. ilex són més petites i pesen menys. En les quatre espècies estudiades, el pes de la llavor està determinat per la longitud i el diàmetre, si bé, també hi ha un cert efecte de l'espècie. Amb les dades obtingudes de les tres variables de la gla s'ha calculat una funció discriminant a partir de la qual es pot determinar, amb un alt grau d'encert, a quina espècie pertany una determinada gla coneixent la mida i el pes. En relació a la capacitat de germinació, en Q. coccifera i Q. ilex la germinació depèn del pes de la gla, mentre que en Q. humilis i Q. suber és independent. Així mateix, també s'ha comprovat que el pes de la llavor afecta positivament en el creixement de les plàntules de tres i sis mesos d'edat. Possiblement un major pes de la gla implica un contingut de substàncies de reserva més elevat, i per tant representa un major subministrament de nutrients cap a la planta, repercutint així en el seu creixement inicial. En plàntules de nou mesos d'edat ja no s'ha trobat relació entre el pes de la gla i el creixement de la planta, la qual cosa es podria explicar pel fet que les substàncies de reserva de la llavor s'han esgotat. Pel que fa al creixement de la plàntula, les plàntules de Q. ilex han tingut la major taxa de creixement per quasi totes les variables estudiades. En aquesta espècie, al principi de l'experiment la grandària de les plàntules ha estat baixa, però al final han crescut més que les de les altres espècies. Les plàntules de Q. coccifera han presentat la menor taxa. En les plàntules de les quatre espècies s'ha constatat, també, que la biomassa del sistema radicular és superior a la de l'aeri. Les plàntules de Q. coccifera i Q. humilis han tingut una relació BA/BR (biomassa aèria/biomassa radicular) més baixa que les de Q. ilex i Q. suber. En espècies mediterrànies s'ha relacionat sovint una baixa relació BA/BR com una adaptació a la sequera. No obstant això, Q. humilis és una espècie que viu en zones més humides que la resta d'espècies estudiades. En referència a la regeneració vegetativa, amb aquest estudi es demostra que les plàntules de les quatre espècies tenen una elevada capacitat d'emissió de rebrots, quan s'elimina la biomassa aèria per sobre la zona d'inserció dels cotilèdons. Tanmateix, el grau de supervivència difereix segons l'espècie i la intervenció. Així, per exemple, les plàntules de Q. ilex han presentat una major mortalitat tant en la primera com en la segona tala, mentre que en Q. humilis i Q. suber la supervivència de les plàntules ha disminuït després de talar dues vegades. En el cas de Q. coccifera el grau de supervivència és bastant similar tant en la primera com en la segona intervenció. La tala successiva afecta negativament al vigor dels rebrots en Q. coccifera, Q. humilis i Q. ilex. Ara bé, en el cas de Q. suber s'ha trobat que els rebrots emesos després de talar dues vegades han estat més grans que els obtinguts després d'una sola tala. Després de tallar la biomassa aèria per sobre la zona d'inserció dels cotilèdons, els rebrots s'originen a partir de les gemmes del nus cotiledonar. L'estudi de l'ontogènesi del nus cotiledonar ens ha permès de constatar que el patró de desenvolupament d'aquest en Q. coccifera, Q. humilis i Q. ilex és similar, però difereix del descrit per a Q. suber. En les tres primeres espècies el nus cotiledonar pràcticament no s'allarga i només es desenvolupen gemmes cotiledonars just en l'axil·la del pecíol cotiledonar. En aquest sentit, cal ressaltar que en el cas de Q. coccifera i Q. ilex les gemmes es formen després de germinar la gla, mentre que en Q. humilis i Q. suber són ja presents en l'embrió. Tal i com també s'ha descrit en Q. suber, en l'estadi de plàntula, en Q. coccifera, Q. humilis i Q. ilex a l'axil·la de la gemma cotiledonar proliferen noves gemmes, de tal manera que es formen plaques de gemmes. Les anàlisis del contingut de midó han permès de determinar que el sistema radicular de les plàntules de Q. coccifera, Q. humilis, Q. ilex i Q. suber conté aproximadament un 90% del midó de tota la planta. Concretament de les diferents fraccions del sistema radicular (nus cotiledonar, 11 pimers centímetres de l'arrel i resta de l'arrel) la major concentració de midó es troba ens els 11 primers cm de l'arrel, que en el cas de Q. suber correspon al nus cotiledonar. Quant a les estacions, a l'estiu la concentració de midó de la part aèria i radicular disminueix en Q. coccifera, Q. humilis i Q. ilex, si bé es recuperen a l'hivern. En canvi en el cas de Q. suber els nivells més baixos de midó s'han obtingut a l'hivern. La tala provoca una disminució dels nivells de midó, ja que una part d'aquest és mobilitzat per a la síntesi dels nous brots. En les quatre espècies la major proporció de midó mobilitzat és en els primers 11 cm de l'arrel, és a dir, el nus cotiledonar en el cas de Q. suber. Per tant, amb aquest estudi es reafirma que el nus cotiledonar de Q. suber és un lignotúber. Tanmateix, Q. coccifera, Q. humilis i Q. ilex no presenten cap lignotúber o estructura especialitzada en la rebrotada, si bé el fet de tenir gemmes i substàncies de reserva els confereix igualment una elevada capacitat per rebrotar. En relació al nitrogen, en les quatre espècies el sistema radicular presenta aproximadament el 70% del nitrogen total de la planta. A l'estiu, la concentració de nitrogen del sistema radicular de Q. humilis i Q. suber és més baixa que a l'hivern, mentre que en Q. coccifera i Q. ilex els valors són bastant similars en ambdues estacions. La tala no provoca una davallada dels nivells de midó, això possiblement es degui a que les plàntules van rebre continuament un aport de nitrogen a través de l'aigua de reg.
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An increasing importance is assigned to the estimation and verification of carbon stocks in forests. Forestry practice has several long-established and reliable methods for the assessment of aboveground biomass; however we still miss accurate predictors of belowground biomass. A major windthrow event exposing the coarse root systems of Norway spruce trees allowed us to assess the effects of contrasting soil stone and water content on belowground allocation. Increasing stone content decreases root/shoot ratio, while soil waterlogging leads to an increase in this ratio. We constructed allometric relationships for belowground biomass prediction and were able to show that only soil waterlogging significantly impacts model parameters. We showed that diameter at breast height is a reliable predictor of belowground biomass and, once site-specific parameters have been developed, it is possible to accurately estimate belowground biomass in Norway spruce.
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A new automatic feedback potometer for physiological studies of water uptake by root systems is described. A dual-optical-fibre amplitude-modulating displacement transducer of improved sensitivity is employed to detect the changes in liquid level. The merits of optimal double-cut fibres, which make full use of the critical angle and improve coupling between the emitter and the receiver, have resulted in a sensor that is 64 times more responsive than the simple emitter - detector probe. Positioning the optical fibre transducer in a narrow capillary and using feedback to control the liquid level allows continuous measurement of volumes in the nanolitre range. The optical sensor used does not need re-calibration for the different salt solutions used in such studies.
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A rain shelter experiment was conducted in a 90-year-old Norway spruce stand, in the Kysucké Beskydy Mts (Slovakia). Three rain shelters were constructed in the stand to prevent the rainfall from reaching the soil and to reduce water availability in the rhizosphere. Fine root biomass and necromass were repeatedly measured throughout a growing season by soil coring. We established the quantities of fine root biomass (live) and necromass (dead) at soil depths of 0-5, 5-15, 15-25, and 25-35 cm. Significant differences in soil moisture contents between control and drought plots were found in the top 15 cm of soil after 20 weeks of rainfall manipulation (lasting from early June to late October). Our observations show that even relatively light drought decreased total fine root biomass from 272.0 to 242.8 g m-2 and increased the amount of necromass from 79.2 to 101.2 g m-2 in the top 35 cm of soil. Very fine roots, i.e. those with diameter up to 1 mm, were more affected than total fine roots defined as 0-2 mm. The effect of reduced water availability was depth-specific, as a result we observed a modification of vertical distribution of fine roots. More roots in drought treatment were produced in the wetter soil horizons at 25-35 cm depth than at the surface. We conclude that fine and very fine root systems of Norway spruce have the capacity to re-allocate resources to roots at different depths in response to environmental signals, resulting in changes in necromass to biomass ratio.
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Soils most obviously contribute to food security in their essential role in crop and fodder production, so affecting the local availability of particular foods. They also have a direct influence on the ability to distribute food, the nutritional value of some foods and, in some societies, the access to certain foods through local processes of allocation and preferences. The inherent fertility of some soils is greater than that of others, so that crop yields vary greatly under semi-natural conditions. Husbandry practices, including the use of manures and fertilisers, have evolved to improve biological, chemical and physical components of soil fertility and thereby increase crop production. The challenge for the future is to sustain soil fertility in ways that increase the yield per unit area while simultaneously avoiding other detrimental environmental consequences. This will require increased effort to develop practices that use inputs such as nutrients, water and energy more efficiently. Opportunities to achieve this include adopting more effective ways to apply water and nutrients, adopting tillage practices that promote water infiltration and increase of organic matter, and breeding to improve the effectiveness of root systems in utilising soil-based resources.
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Sustainable intensification is seen as the main route for meeting the world’s increasing demands for food and fibre. As demands mount for greater efficiency in the use of resources to achieve this goal, so the focus on roots and rootstocks and their role in acquiring water and nutrients, and overcoming pests and pathogens, is increasing. The purpose of this review is to explore some of the ways in which understanding root systems and their interactions with soils could contribute to the development of more sustainable systems of intensive production. Physical interactions with soil particles limit root growth if soils are dense, but root–soil contact is essential for optimal growth and uptake of water and nutrients. X-ray microtomography demonstrated that maize roots elongated more rapidly with increasing root–soil contact, as long as mechanical impedance was not limiting root elongation, while lupin was less sensitive to changes in root–soil contact. In addition to selecting for root architecture and rhizosphere properties, the growth of many plants in cultivated systems is profoundly affected by selection of an appropriate rootstock. Several mechanisms for scion control by rootstocks have been suggested, but the causal signals are still uncertain and may differ between crop species. Linkage map locations for quantitative trait loci for disease resistance and other traits of interest in rootstock breeding are becoming available. Designing root systems and rootstocks for specific environments is becoming a feasible target.
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The root endophytic fungus Piriformospora indica (Sebacinacea) forms mutualistic symbioses with a broad range of host plants, increasing their biomass production and resistance to fungal pathogens. We evaluated the effect of P. indica on Fusarium crown rot disease of wheat, under in vitro and glasshouse conditions. Interaction of P. indica and Fusarium isolates under axenic culture conditions indicated no direct antagonistic activity of P. indica against Fusarium isolates. Seedlings of wheat were inoculated with P. indica and pathogenic Fusarium culmorum or F. graminearum and grown in sterilised soil-free medium or in a non-sterilised mix of soil and sand. Fusarium alone reduced emergence and led to visible browning and reduced root growth. Roots of seedlings in pots inoculated with both Fusarium isolates and P. indica were free of visible symptoms; seed emergence and root biomass were equivalent to the uninoculated. DNA was quantified by real-time polymerase chain reaction (qPCR). The ratio of Fusarium DNA to wheat DNA rose rapidly in the plants inoculated with Fusarium alone; isolates and species were not significantly different. P. indica inoculation reduced the ratio of Fusarium to host DNA in the root systems. The reduction increased with time. The ratio of P. indica to wheat DNA initially rose but then declined in root systems without Fusarium. With Fusarium, the ratio rose throughout the experiment. The absolute amount of Fusarium DNA in root systems increased in the absence of P. indica but was static in plants co-inoculated with P. indica.
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Background Plants form the base of the terrestrial food chain and provide medicines, fuel, fibre and industrial materials to humans. Vascular land plants rely on their roots to acquire the water and mineral elements necessary for their survival in nature or their yield and nutritional quality in agriculture. Major biogeochemical fluxes of all elements occur through plant roots, and the roots of agricultural crops have a significant role to play in soil sustainability, carbon sequestration, reducing emissions of greenhouse gasses, and in preventing the eutrophication of water bodies associated with the application of mineral fertilisers. ● Scope This article provides the context for a Special Issue of Annals of Botany on ‘Matching Roots to Their Environment’. It first examines how land plants and their roots evolved, describes how the ecology of roots and their rhizospheres contributes to the acquisition of soil resources, and discusses the influence of plant roots on biogeochemical cycles. It then describes the role of roots in overcoming the constraints to crop production imposed by hostile or infertile soils, illustrates root phenotypes that improve the acquisition of mineral elements and water, and discusses high-throughput methods to screen for these traits in the laboratory, glasshouse and field. Finally, it considers whether knowledge of adaptations improving the acquisition of resources in natural environments can be used to develop root systems for sustainable agriculture in the future.
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Most terrestrial plants form mutually beneficial symbioses with specific soil-borne fungi known as mycorrhiza. In a typical mycorrhizal association, fungal hyphae colonize plant roots, explore the soil beyond the rhizosphere and provide host plants with nutrients that might be chemically or physically inaccessible to root systems. Here, we combined nutritional, radioisotopic (33P) and genetic approaches to describe a plant growth promoting symbiosis between the basidiomycete fungus Austroboletus occidentalis and jarrah (Eucalyptus marginata), which has quite different characteristics. We show that the fungal partner does not colonize plant roots; hyphae are localized to the rhizosphere soil and vicinity and consequently do not transfer nutrients located beyond the rhizosphere. Transcript profiling of two high-affinity phosphate (Pi) transporter genes (EmPHT1;1 and EmPHT1;2) and hyphal-mediated 33Pi uptake suggest that the Pi uptake shifts from an epidermal to a hyphal pathway in ectomycorrhizal plants (Scleroderma sp.), similar to arbuscular mycorrhizal symbioses, whereas A. occidentalis benefits its host indirectly. The enhanced rhizosphere carboxylates are linked to growth and nutritional benefits in the novel symbiosis. This work is a starting point for detailed mechanistic studies on other basidiomycete–woody plant relationships, where a continuum between heterotrophic rhizosphere fungi and plant beneficial symbioses is likely to exist.
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The plants are often exposed to variations in environmental conditions that may trigger metabolic disturbances leading to a consequent loss in productivity of crops. These stressful conditions usually induce an accumulation of reactive oxygen species (ROS) in the cell, a condition known how oxidative stress. Among these species, hydrogen peroxide (H2O2) is an important molecule involved in numerous signaling mechanisms. The present study aimed to understand the relationship between the different enzymatic mechanisms of elimination of H2O2 by catalase (CAT) and ascorbate peroxidase (APX) in leaf tissues of seedlings of the species Vigna unguiculata L. Walp, under conditions of oxidative stress induced by application of CAT inhibitor, 3-amino-1,2,4-triazole (3-AT), and H2O2 itself on the roots. Three experiments were conducted. The first experiment was performed applying the compound 3-AT (5 mM) during the time (hours). In the second experiment, seedlings were exposed to different concentrations of H2O2 (2.5, 5.0, 7.5, 10 mM) for 48 h. The third strategy included the pre-treatment with H2O2 (2.5 mM) for 24 h, followed by subsequent treatment with the inhibitor 3-AT and recovery control condition. Treatment with 3-AT causes a strong inhibition of CAT activity in leaf tissues accompanied by an increase of activity of APX. However a decrease in oxidative damage to lipids is not observed as indicated by TBARS. It was observed that activity of APX is directly linked to the content of peroxide. Inductions in the activities of CAT and APX were observed mainly in the seedlings treated with 2.5 mM H2O2. This can be associated with a decrease in oxidative damage to lipids. In contrast, one same tendency was not observed in treatments with higher concentrations of this ROS. These results suggest that the concentration of 2.5 mM H2O2 can induce responses antioxidants later in seedling cowpea. This concentration when applied as pre-treatment for 24 h promoted an induction systems removers CAT and APX, both in activity and in terms of gene expression. However this increment was not observed in the recovered plants and the plants subsequently subjected to 3-AT. Additionally, the pretreatment was not sufficient to attenuate the inhibition of CAT activity and oxidative damage to lipids caused by the subsequent application of this inhibitor. The results showed that the application of 3-AT and H2O2 in the root systems of seedlings of cowpea promote changes in the parameters analyzed in leaf tissues that indicate a direct response to the presence of these factors or systemic signaling mecanisms. H2O2 appears to activate the responses of two antioxidant systems in this study thar does not promote greater protection in case of additional treatment with 3-AT. This demonstrates the importance of the CAT system. In this work, complete results indicate that there is a difference between the signaling and the effects caused by exposure to H2O2 and by treatment with 3-AT
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The aim of this study was to evaluate the efficiency of antagonistic plants on nematode control in vegetables growing areas. The experiment was conducted in two periods in randomized complete block design in plots 1.5 x 1.4 m, corresponding to experimental units and randomly cultivated with the different plants. From each plot 100 cm(3) of soil and 10 g of tomato root were collected for estimating the initial population of the first and second experiment, respectively. Sixteen antagonistic plant seedlings of velvet bean (Stizolobium aterrimum), sunn plant (Crotalaria spectabilis) and pigeon pea (Cajanus cajan) were transferred to the plots and tomato (Solanun lycopersicum) cultivar Santa Clara was used as a control. After 116 days, two root systems and 100 cm(3) of soil were collected from each plot for a final nematode population analysis. Lettuce seedlings (Lactuca sativa) were transferred to the plots and evaluated after 28 and 42 days, respectively, for galls and eggs on the root system and fresh and dry weight of shoots,. Each treatment consisted of 6 replicates and the means were compared by LSD test (p<0.05). Meloidogyne incognita was found in the first survey. After the crop of the antagonistic plants, the M. incognita population in the root systems and the final population (soil + root) were statistically lower than in the control, which demonstrates the antagonistic effect of these plants on the nematode population. There were also a reduced number of galls on the lettuce cultivated after the antagonistic plants when compared to the control. The velvet bean and sunn plant showed an increase in dry shoot weight of the lettuce cultivated after the antagonists, respectively, in the first and second experiments.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Nos solos com restrições físicas e, ou, físico-hídricas ao crescimento de raízes, aumentar o potencial de armazenagem de água por meio de melhorias na infiltração pode ser uma estratégia viável para aumento da produtividade das culturas. Nesse sentido, este trabalho teve como objetivo avaliar a infiltração de água em um Nitossolo Vermelho distrófico, com três sistemas de rotação de culturas sob semeadura direta com e sem escarificação inicial. O sistema de rotação de culturas constou de: (1) milheto/soja/sorgo/milho/sorgo (M/S/So/Mi/So), (2) milheto/soja/Brachiaria ruziziensis/milho/Brachiaria ruziziensis (M/S/B/Mi/B) e (3) milheto/soja/Brachiaria ruziziensis + mamona/milho/Brachiaria ruziziensis + mamona (M/S/B+Ma/Mi/B+Ma). A infiltração de água no solo foi avaliada em campo com anéis concêntricos instalados na superfície, a 0,10 e 0,20 m de profundidade, em 2006 e 2007. Após o primeiro ano, o manejo com escarificação inicial do solo apresentou a maior infiltração de água. A rotação Brachiaria ruziziensis + mamona proporcionou maior infiltração da água no solo. A atividade do sistema radicular das espécies nas parcelas sem escarificação inicial aumentou a velocidade de infiltração da água no solo.
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O objetivo deste trabalho foi avaliar o desenvolvimento aéreo e radicular de duas cultivares de milho (Zea mays L.), em solo submetido a quatro níveis de compactação. Utilizou-se um Latossolo Vermelho-Escuro distroférrico de textura média, em vasos montados com anéis de PVC sobrepostos, com diâmetro interno de 14,5 cm e altura de 35 cm. Os níveis de compactação utilizados em subsuperfície foram caracterizados pelas densidades do solo de 1,28, 1,42, 1,56 e 1,69 Mg m³. As cultivares de milho foram o híbrido AG-5011 e a variedade Sol da Manhã. Aos 40 dias após a emergência das plantas, determinaram-se as massas da matéria seca da parte aérea e das raízes, a densidade do comprimento radicular e o diâmetro médio radicular. A compactação do solo comprometeu o desenvolvimento das plantas de milho híbrido e da variedade na mesma intensidade. Apesar de alterar a distribuição do sistema radicular ao longo do perfil do solo, o impedimento físico em subsuperfície não diminuiu a produção total de raízes de milho. O diâmetro médio radicular apresentou alta correlação com o crescimento de raízes no solo compactado. O sistema radicular do milho não é capaz de romper uma camada compactada de solo com resistência mecânica da ordem de 1,4 MPa.