Simulating microbial degradation of organic matter in a simple porous system using the 3-D diffusion-based model MOSAIC

This paper deals with the simulation of microbial degradation of organic matter in soil within the pore space at a microscopic scale. Pore space was analysed with micro-computed tomography and described using a sphere network coming from a geometrical modelling algorithm. The biological model was im...

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Main Authors: O. Monga, P. Garnier, V. Pot, E. Coucheney, N. Nunan, W. Otten, C. Chenu
Format: Article
Language:English
Published: Copernicus Publications 2014-04-01
Series:Biogeosciences
Online Access:http://www.biogeosciences.net/11/2201/2014/bg-11-2201-2014.pdf
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spelling doaj-2a78fd8971b14998a2e6bd819a2260802020-11-25T00:16:53ZengCopernicus PublicationsBiogeosciences1726-41701726-41892014-04-011182201220910.5194/bg-11-2201-2014Simulating microbial degradation of organic matter in a simple porous system using the 3-D diffusion-based model MOSAICO. Monga0P. Garnier1V. Pot2E. Coucheney3N. Nunan4W. Otten5C. Chenu6UMMISCO-Cameroun, Unité Mixte Internationale de recherche UMMISCO, Université de Yaoundé 1 (Cameroun), Institut de Recherche pour le Développement (IRD), Université de Paris 6, Paris, FranceINRA, AgroParisTech, UMR1091 EGC, 78850, Thiverval-Grignon, FranceINRA, AgroParisTech, UMR1091 EGC, 78850, Thiverval-Grignon, FranceCNRS, UMR7618 – Biogéochimie et Ecologie des Milieux Continentaux, 78850, Thiverval-Grignon, FranceCNRS, UMR7618 – Biogéochimie et Ecologie des Milieux Continentaux, 78850, Thiverval-Grignon, FranceThe SIMBIOS Centre, University of Abertay Dundee, Kydd Building, Dundee, DD1 1HG, UKAgroParisTech, UMR7618 – Biogéochimie et Ecologie des Milieux Continentaux, 8850, Thiverval-Grignon, FranceThis paper deals with the simulation of microbial degradation of organic matter in soil within the pore space at a microscopic scale. Pore space was analysed with micro-computed tomography and described using a sphere network coming from a geometrical modelling algorithm. The biological model was improved regarding previous work in order to include the transformation of dissolved organic compounds and diffusion processes. We tested our model using experimental results of a simple substrate decomposition experiment (fructose) within a simple medium (sand) in the presence of different bacterial strains. Separate incubations were carried out in microcosms using five different bacterial communities at two different water potentials of −10 and −100 cm of water. We calibrated the biological parameters by means of experimental data obtained at high water content, and we tested the model without changing any parameters at low water content. Same as for the experimental data, our simulation results showed that the decrease in water content caused a decrease of mineralization rate. The model was able to simulate the decrease of connectivity between substrate and microorganism due the decrease of water content.http://www.biogeosciences.net/11/2201/2014/bg-11-2201-2014.pdf
collection DOAJ
language English
format Article
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author O. Monga
P. Garnier
V. Pot
E. Coucheney
N. Nunan
W. Otten
C. Chenu
spellingShingle O. Monga
P. Garnier
V. Pot
E. Coucheney
N. Nunan
W. Otten
C. Chenu
Simulating microbial degradation of organic matter in a simple porous system using the 3-D diffusion-based model MOSAIC
Biogeosciences
author_facet O. Monga
P. Garnier
V. Pot
E. Coucheney
N. Nunan
W. Otten
C. Chenu
author_sort O. Monga
title Simulating microbial degradation of organic matter in a simple porous system using the 3-D diffusion-based model MOSAIC
title_short Simulating microbial degradation of organic matter in a simple porous system using the 3-D diffusion-based model MOSAIC
title_full Simulating microbial degradation of organic matter in a simple porous system using the 3-D diffusion-based model MOSAIC
title_fullStr Simulating microbial degradation of organic matter in a simple porous system using the 3-D diffusion-based model MOSAIC
title_full_unstemmed Simulating microbial degradation of organic matter in a simple porous system using the 3-D diffusion-based model MOSAIC
title_sort simulating microbial degradation of organic matter in a simple porous system using the 3-d diffusion-based model mosaic
publisher Copernicus Publications
series Biogeosciences
issn 1726-4170
1726-4189
publishDate 2014-04-01
description This paper deals with the simulation of microbial degradation of organic matter in soil within the pore space at a microscopic scale. Pore space was analysed with micro-computed tomography and described using a sphere network coming from a geometrical modelling algorithm. The biological model was improved regarding previous work in order to include the transformation of dissolved organic compounds and diffusion processes. We tested our model using experimental results of a simple substrate decomposition experiment (fructose) within a simple medium (sand) in the presence of different bacterial strains. Separate incubations were carried out in microcosms using five different bacterial communities at two different water potentials of −10 and −100 cm of water. We calibrated the biological parameters by means of experimental data obtained at high water content, and we tested the model without changing any parameters at low water content. Same as for the experimental data, our simulation results showed that the decrease in water content caused a decrease of mineralization rate. The model was able to simulate the decrease of connectivity between substrate and microorganism due the decrease of water content.
url http://www.biogeosciences.net/11/2201/2014/bg-11-2201-2014.pdf
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