3 resultados para plants-composition
em Biblioteca Digital da Produção Intelectual da Universidade de São Paulo
Resumo:
O objetivo do presente trabalho foi avaliar a composição química e a produtividade de grãos de soja, em resposta à aplicação de biorregulador na cultura da soja. Para tanto, sementes de soja da cultivar BRS 246 RR foram semeadas no mês de outubro dos anos agrícolas de 2007/2008 e 2008/2009, no delineamento experimental em blocos completos com os tratamentos casualizados, com quatro repetições. Os tratamentos, arranjados em esquema fatorial, foram compostos pela combinação do tratamento de sementes com o biorregulador (sem e com 0,500 L 100 kg-1 de sementes) e cinco doses do produto (0; 0,125; 0,250; 0,375 e 0,500 L ha-1) aplicadas via foliar, em dois estádios de desenvolvimento da cultura (V5 ou R3). Utilizou-se um biorregulador líquido da Stoller do Brasil Ltda., denominado de Stimulate®, composto por três reguladores vegetais na seguinte concentração: 0,005% do ácido indolbutirico - IBA (análogo de auxina), 0,009% de cinetina (citocinina) e 0,005% de ácido giberélico - GA3 (giberelina). O uso do biorregulador influenciou no incremento da produtividade; os teores de óleo e proteínas foram alterados pela ação do biorregulador, com tendência de favorecimento do conteúdo proteico.
Resumo:
In this study, Canoparmelia texana lichenized fungi species was used as a passive biomonitor of the atmospheric pollution from the industrial city of So Mateus do Sul, PR, Brazil. Lichen samples collected from tree barks were cleaned, freeze-dried and analyzed by neutron activation analysis. Comparisons were made between the element concentrations obtained in lichens from this city and that from a clean area of Atlantic Forest in Intervales Park, SP. The high concentrations of elements As, Ca, Co, Cr, Fe, Hf, Sb, and Th found in lichens could be attributed to the emissions from a ceramic and an oil shale plants.
Resumo:
Abstract Background The recalcitrance of lignocellulosic materials is a major limitation for their conversion into fermentable sugars. Lignin depletion in new cultivars or transgenic plants has been identified as a way to diminish this recalcitrance. In this study, we assessed the success of a sugarcane breeding program in selecting sugarcane plants with low lignin content, and report the chemical composition and agronomic characteristics of eleven experimental hybrids and two reference samples. The enzymatic digestion of untreated and chemically delignified samples was evaluated to advance the performance of the sugarcane residue (bagasse) in cellulosic-ethanol production processes. Results The ranges for the percentages of glucan, hemicellulose, lignin, and extractive (based on oven-dry biomass) of the experimental hybrids and reference samples were 38% to 43%, 25% to 32%, 17% to 24%, and 1.6% to 7.5%, respectively. The samples with the smallest amounts of lignin did not produce the largest amounts of total polysaccharides. Instead, a variable increase in the mass of a number of components, including extractives, seemed to compensate for the reduction in lignin content. Hydroxycinnamic acids accounted for a significant part of the aromatic compounds in the samples, with p-coumaric acid predominating, whereas ferulic acid was present only in low amounts. Hydroxycinnamic acids with ester linkage to the hemicelluloses varied from 2.3% to 3.6%. The percentage of total hydroxycinnamic acids (including the fraction linked to lignin through ether linkages) varied from 5.0% to 9.2%, and correlated to some extent with the lignin content. These clones released up to 31% of glucose after 72 hours of digestion with commercial cellulases, whereas chemically delignified samples led to cellulose conversion values of more than 80%. However, plants with lower lignin content required less delignification to reach higher efficiencies of cellulose conversion during the enzymatic treatment. Conclusion Some of the experimental sugarcane hybrids did have the combined characteristics of high biomass and high sucrose production with low lignin content. Conversion of glucan to glucose by commercial cellulases was increased in the samples with low lignin content. Chemical delignification further increased the cellulose conversion to values of more than 80%. Thus, plants with lower lignin content required less delignification to reach higher efficiencies of cellulose conversion during the enzymatic treatment.