Literature DB >> 16102601

Clostridium cellulolyticum: model organism of mesophilic cellulolytic clostridia.

Mickaël Desvaux1.   

Abstract

Clostridium cellulolyticum ATCC 35319 is a non-ruminal mesophilic cellulolytic bacterium originally isolated from decayed grass. As with most truly cellulolytic clostridia, C. cellulolyticum possesses an extracellular multi-enzymatic complex, the cellulosome. The catalytic components of the cellulosome release soluble cello-oligosaccharides from cellulose providing the primary carbon substrates to support bacterial growth. As most cellulolytic bacteria, C. cellulolyticum was initially characterised by limited carbon consumption and subsequent limited growth in comparison to other saccharolytic clostridia. The first metabolic studies performed in batch cultures suggested nutrient(s) limitation and/or by-product(s) inhibition as the reasons for this limited growth. In most recent investigations using chemostat cultures, metabolic flux analysis suggests a self-intoxication of bacterial metabolism resulting from an inefficiently regulated carbon flow. The investigation of C. cellulolyticum physiology with cellobiose, as a model of soluble cellodextrin, and with pure cellulose, as a carbon source more closely related to lignocellulosic compounds, strengthen the idea of a bacterium particularly well adapted, and even restricted, to a cellulolytic lifestyle. The metabolic flux analysis from continuous cultures revealed that (i) in comparison to cellobiose, the cellulose hydrolysis by the cellulosome introduces an extra regulation of entering carbon flow resulting in globally lower metabolic fluxes on cellulose than on cellobiose, (ii) the glucose 1-phosphate/glucose 6-phosphate branch point controls the carbon flow directed towards glycolysis and dissipates carbon excess towards the formation of cellodextrins, glycogen and exopolysaccharides, (iii) the pyruvate/acetyl-CoA metabolic node is essential to the regulation of electronic and energetic fluxes. This in-depth analysis of C. cellulolyticum metabolism has permitted the first attempt to engineer metabolically a cellulolytic microorganism.

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Year:  2004        PMID: 16102601     DOI: 10.1016/j.femsre.2004.11.003

Source DB:  PubMed          Journal:  FEMS Microbiol Rev        ISSN: 0168-6445            Impact factor:   16.408


  35 in total

1.  Application of molecular techniques to elucidate the influence of cellulosic waste on the bacterial community structure at a simulated low-level-radioactive-waste site.

Authors:  Erin K Field; Seth D'Imperio; Amber R Miller; Michael R VanEngelen; Robin Gerlach; Brady D Lee; William A Apel; Brent M Peyton
Journal:  Appl Environ Microbiol       Date:  2010-03-19       Impact factor: 4.792

2.  Evolution of acetoclastic methanogenesis in Methanosarcina via horizontal gene transfer from cellulolytic Clostridia.

Authors:  Gregory P Fournier; J Peter Gogarten
Journal:  J Bacteriol       Date:  2007-11-30       Impact factor: 3.490

Review 3.  Germinants and Their Receptors in Clostridia.

Authors:  Disha Bhattacharjee; Kathleen N McAllister; Joseph A Sorg
Journal:  J Bacteriol       Date:  2016-09-22       Impact factor: 3.490

4.  Comparison of microbial communities during the anaerobic digestion of Gracilaria under mesophilic and thermophilic conditions.

Authors:  Aqil Azizi; Wonduck Kim; Jung Hyun Lee
Journal:  World J Microbiol Biotechnol       Date:  2016-08-25       Impact factor: 3.312

Review 5.  Cellulosomes: bacterial nanomachines for dismantling plant polysaccharides.

Authors:  Lior Artzi; Edward A Bayer; Sarah Moraïs
Journal:  Nat Rev Microbiol       Date:  2016-12-12       Impact factor: 60.633

6.  A structural and kinetic survey of GH5_4 endoglucanases reveals determinants of broad substrate specificity and opportunities for biomass hydrolysis.

Authors:  Evan M Glasgow; Elias I Kemna; Craig A Bingman; Nicole L Ing; Kai Deng; Christopher M Bianchetti; Taichi E Takasuka; Trent R Northen; Brian G Fox
Journal:  J Biol Chem       Date:  2020-10-16       Impact factor: 5.157

7.  Butanol production from crystalline cellulose by cocultured Clostridium thermocellum and Clostridium saccharoperbutylacetonicum N1-4.

Authors:  Shunichi Nakayama; Keiji Kiyoshi; Toshimori Kadokura; Atsumi Nakazato
Journal:  Appl Environ Microbiol       Date:  2011-07-15       Impact factor: 4.792

8.  Efficient Genome Editing in Clostridium cellulolyticum via CRISPR-Cas9 Nickase.

Authors:  Tao Xu; Yongchao Li; Zhou Shi; Christopher L Hemme; Yuan Li; Yonghua Zhu; Joy D Van Nostrand; Zhili He; Jizhong Zhou
Journal:  Appl Environ Microbiol       Date:  2015-04-24       Impact factor: 4.792

9.  Functional Analysis of the Glucan Degradation Locus in Caldicellulosiruptor bescii Reveals Essential Roles of Component Glycoside Hydrolases in Plant Biomass Deconstruction.

Authors:  Jonathan M Conway; Bennett S McKinley; Nathaniel L Seals; Diana Hernandez; Piyum A Khatibi; Suresh Poudel; Richard J Giannone; Robert L Hettich; Amanda M Williams-Rhaesa; Gina L Lipscomb; Michael W W Adams; Robert M Kelly
Journal:  Appl Environ Microbiol       Date:  2017-12-01       Impact factor: 4.792

10.  Third generation biofuels via direct cellulose fermentation.

Authors:  Carlo R Carere; Richard Sparling; Nazim Cicek; David B Levin
Journal:  Int J Mol Sci       Date:  2008-07-22       Impact factor: 6.208

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