Bioactivity of Chemically Transformed Humic Matter from Vermicompost on Plant Root Growth

Chemical reactions (hydrolysis, oxidation, reduction, methylation, alkyl compounds detachment) were applied to modify the structure of humic substances (HS) isolated from vermicompost. Structural and conformational changes of these humic derivatives were assessed by elemental analyses, size exclusio...

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Veröffentlicht in:Journal of agricultural and food chemistry 2010-03, Vol.58 (6), p.3681-3688
Hauptverfasser: Dobbss, Leonardo Barros, Pasqualoto Canellas, Luciano, Lopes Olivares, Fábio, Oliveira Aguiar, Natália, Peres, Lázaro Eustáquio Pereira, Azevedo, Mariana, Spaccini, Riccardo, Piccolo, Alessandro, Façanha, Arnoldo R
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Sprache:eng
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Zusammenfassung:Chemical reactions (hydrolysis, oxidation, reduction, methylation, alkyl compounds detachment) were applied to modify the structure of humic substances (HS) isolated from vermicompost. Structural and conformational changes of these humic derivatives were assessed by elemental analyses, size exclusion chromatography (HPSEC), solid-state nuclear magnetic resonance (13C CPMAS-NMR), and diffusion ordered spectroscopy (DOSY-NMR), whereas their bioactivity was evaluated by changes in root architecture and proton pump activation of tomato and maize. All humic derivatives exhibited a large bioactivity compared to original HS, both KMnO4-oxidized and methylated materials being the most effective. Whereas no general relationship was found between bioactivity and humic molecular sizes, the hydrophobicity index was significanty related with proton pump stimulation. It is suggested that the hydrophobic domain can preserve bioactive molecules such as auxins in the humic matter. In contact with root-exuded organic acids the hydrophobic weak forces could be disrupted, releasing bioactive compounds from humic aggregates. These findings were further supported by the fact that HS and all derivatives used in this study activated the auxin synthetic reporter DR5::GUS.
ISSN:0021-8561
1520-5118
DOI:10.1021/jf904385c