Comparing chemistry and bioactivity of burned vs. decomposed plant litter: different pathways but same result?. Issue 1 (27th November 2017)
- Record Type:
- Journal Article
- Title:
- Comparing chemistry and bioactivity of burned vs. decomposed plant litter: different pathways but same result?. Issue 1 (27th November 2017)
- Main Title:
- Comparing chemistry and bioactivity of burned vs. decomposed plant litter: different pathways but same result?
- Authors:
- Bonanomi, Giuliano
Incerti, Guido
Abd El‐Gawad, Ahmed M.
Cesarano, Gaspare
Sarker, Tushar C.
Saulino, Luigi
Lanzotti, Virginia
Saracino, Antonio
Rego, Francisco C.
Mazzoleni, Stefano - Abstract:
- Abstract: Litter burning and biological decomposition are oxidative processes co‐occurring in many terrestrial ecosystems, producing organic matter with different chemical properties and differently affecting plant growth and soil microbial activity. We tested the chemical convergence hypothesis, i.e., materials with different initial chemistry converge toward a common profile, with similar biological effects, as the oxidative process advances, for burning and decomposition. We compared the molecular composition, assessed by 13 C NMR, of seven plant litter types either fresh, decomposed for 30, 90, 180 d in a microcosms incubation experiment, or heated at 100°C, 200°C, 300°C, 400°C, 500°C for 30 minutes. We used litter water extracts (5% dry weight) as treatments in bioassays on plant ( Lepidium sativum ) and fungal ( Aspergillus niger ) growth, and a washed quartz sand amended with litter (0.5% dw) to assess heterotrophic respiration by flux chamber (i.e., [μg of CO2 released]·[g added litter] −1 ·d −1 ). We observed different molecular variations for materials either burning (i.e., a sharp increase of aromatic C and a decrease of other fractions above 200°C) or decomposing (i.e., early increase of alkyl, methoxyl, and N ‐alkyl C and decrease of O ‐alkyl and di‐ O ‐alkyl C fractions). Soil respiration and fungal growth decreased with litter age and heating severity, down to 20% relative to fresh litter. Plants were inhibited on fresh litter (on average 13% of the control),Abstract: Litter burning and biological decomposition are oxidative processes co‐occurring in many terrestrial ecosystems, producing organic matter with different chemical properties and differently affecting plant growth and soil microbial activity. We tested the chemical convergence hypothesis, i.e., materials with different initial chemistry converge toward a common profile, with similar biological effects, as the oxidative process advances, for burning and decomposition. We compared the molecular composition, assessed by 13 C NMR, of seven plant litter types either fresh, decomposed for 30, 90, 180 d in a microcosms incubation experiment, or heated at 100°C, 200°C, 300°C, 400°C, 500°C for 30 minutes. We used litter water extracts (5% dry weight) as treatments in bioassays on plant ( Lepidium sativum ) and fungal ( Aspergillus niger ) growth, and a washed quartz sand amended with litter (0.5% dw) to assess heterotrophic respiration by flux chamber (i.e., [μg of CO2 released]·[g added litter] −1 ·d −1 ). We observed different molecular variations for materials either burning (i.e., a sharp increase of aromatic C and a decrease of other fractions above 200°C) or decomposing (i.e., early increase of alkyl, methoxyl, and N ‐alkyl C and decrease of O ‐alkyl and di‐ O ‐alkyl C fractions). Soil respiration and fungal growth decreased with litter age and heating severity, down to 20% relative to fresh litter. Plants were inhibited on fresh litter (on average 13% of the control), but recovered on aged (180 d) and heated (30 min at 500°C) materials, up to 126% and 63% of the control, respectively. Correlation between the intensity of 13 C NMR signals in litter spectra and bioassay results showed that O ‐alkyl, methoxyl, and aromatic C fractions are crucial to understand organic matter effects, with plant response negatively affected by labile C but positively associated to lignification and pyrogenic C. The pattern of association of soil respiration and fungal growth to these C fractions was essentially opposite to that observed for plant root growth. Our findings suggest a functional convergence of decomposed and burned organic substrates, emerging from the balance between the bioavailability of labile C sources and the presence of recalcitrant and pyrogenic compounds, oppositely affecting different trophic levels. … (more)
- Is Part Of:
- Ecology. Volume 99:Issue 1(2018)
- Journal:
- Ecology
- Issue:
- Volume 99:Issue 1(2018)
- Issue Display:
- Volume 99, Issue 1 (2018)
- Year:
- 2018
- Volume:
- 99
- Issue:
- 1
- Issue Sort Value:
- 2018-0099-0001-0000
- Page Start:
- 158
- Page End:
- 171
- Publication Date:
- 2017-11-27
- Subjects:
- allelopathy -- char -- fire -- plant–soil feedback -- pyrogenic organic matter -- soil respiration -- 13C‐CPMAS
Ecology -- Periodicals
Ecology -- Periodicals
Écologie -- Périodiques
Ecologie
Écologie
Écologie animale
Écologie végétale
Ecology
Periodicals
577.05 - Journal URLs:
- http://www.jstor.org/journals/00129658.html ↗
http://www.esajournals.org/perlserv/?request=get-archive&issn=0012-9658 ↗
http://esajournals.onlinelibrary.wiley.com/hub/journal/10.1002/(ISSN)1939-9170/ ↗
http://onlinelibrary.wiley.com/ ↗ - DOI:
- 10.1002/ecy.2053 ↗
- Languages:
- English
- ISSNs:
- 0012-9658
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 3650.000000
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- 7708.xml