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FSpatial and Temporal Dynamics of Cellulose Degradation and Biofilm Formation by Caldicellulosiruptor Obsidiansis and Clostridium Thermocellum

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Journal AMB Express
Date 2011 Oct 11
PMID 21982458
Citations 12
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Abstract

Cellulose degradation is one of the major bottlenecks of a consolidated bioprocess that employs cellulolytic bacterial cells as catalysts to produce biofuels from cellulosic biomass. In this study, we investigated the spatial and temporal dynamics of cellulose degradation by Caldicellulosiruptfor obsidiansis, which does not produce cellulosomes, and Clostridium thermocellum, which does produce cellulosomes. Results showed that the degradation of either regenerated or natural cellulose was synchronized with biofilm formation, a process characterized by the formation and fusion of numerous crater-like depressions on the cellulose surface. In addition, the dynamics of biofilm formation were similar in both bacteria, regardless of cellulosome production. Only the areas of cellulose surface colonized by microbes were significantly degraded, highlighting the essential role of the cellulolytic biofilm in cellulose utilization. After initial attachment, the microbial biofilm structure remained thin, uniform and dense throughout the experiment. A cellular automaton model, constructed under the assumption that the attached cells divide and produce daughter cells that contribute to the hydrolysis of the adjacent cellulose, can largely simulate the observed process of biofilm formation and cellulose degradation. This study presents a model, based on direct observation, correlating cellulolytic biofilm formation with cellulose degradation.

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References
1.
Batstone D, Keller J, Angelidaki I, Kalyuzhnyi S, Pavlostathis S, Rozzi A . The IWA Anaerobic Digestion Model No 1 (ADM1). Water Sci Technol. 2002; 45(10):65-73. View

2.
Lynd L, Weimer P, van Zyl W, Pretorius I . Microbial cellulose utilization: fundamentals and biotechnology. Microbiol Mol Biol Rev. 2002; 66(3):506-77, table of contents. PMC: 120791. DOI: 10.1128/MMBR.66.3.506-577.2002. View

3.
Adams J, Pal G, Jia Z, Smith S . Mechanism of bacterial cell-surface attachment revealed by the structure of cellulosomal type II cohesin-dockerin complex. Proc Natl Acad Sci U S A. 2005; 103(2):305-10. PMC: 1326161. DOI: 10.1073/pnas.0507109103. View

4.
Zhang Y, Lynd L . Regulation of cellulase synthesis in batch and continuous cultures of Clostridium thermocellum. J Bacteriol. 2004; 187(1):99-106. PMC: 538832. DOI: 10.1128/JB.187.1.99-106.2005. View

5.
Hamilton-Brehm S, Mosher J, Vishnivetskaya T, Podar M, Carroll S, Allman S . Caldicellulosiruptor obsidiansis sp. nov., an anaerobic, extremely thermophilic, cellulolytic bacterium isolated from Obsidian Pool, Yellowstone National Park. Appl Environ Microbiol. 2009; 76(4):1014-20. PMC: 2820981. DOI: 10.1128/AEM.01903-09. View