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Microbial cellulose utilization: fundamentals and biotechnology.

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TLDR
A concluding discussion identifies unresolved issues pertaining to microbial cellulose utilization, suggests approaches by which such issues might be resolved, and contrasts a microbially oriented cellulose hydrolysis paradigm to the more conventional enzymatically oriented paradigm in both fundamental and applied contexts.
Abstract
Fundamental features of microbial cellulose utilization are examined at successively higher levels of aggregation encompassing the structure and composition of cellulosic biomass, taxonomic diversity, cellulase enzyme systems, molecular biology of cellulase enzymes, physiology of cellulolytic microorganisms, ecological aspects of cellulase-degrading communities, and rate-limiting factors in nature. The methodological basis for studying microbial cellulose utilization is considered relative to quantification of cells and enzymes in the presence of solid substrates as well as apparatus and analysis for cellulose-grown continuous cultures. Quantitative description of cellulose hydrolysis is addressed with respect to adsorption of cellulase enzymes, rates of enzymatic hydrolysis, bioenergetics of microbial cellulose utilization, kinetics of microbial cellulose utilization, and contrasting features compared to soluble substrate kinetics. A biological perspective on processing cellulosic biomass is presented, including features of pretreated substrates and alternative process configurations. Organism development is considered for "consolidated bioprocessing" (CBP), in which the production of cellulolytic enzymes, hydrolysis of biomass, and fermentation of resulting sugars to desired products occur in one step. Two organism development strategies for CBP are examined: (i) improve product yield and tolerance in microorganisms able to utilize cellulose, or (ii) express a heterologous system for cellulose hydrolysis and utilization in microorganisms that exhibit high product yield and tolerance. A concluding discussion identifies unresolved issues pertaining to microbial cellulose utilization, suggests approaches by which such issues might be resolved, and contrasts a microbially oriented cellulose hydrolysis paradigm to the more conventional enzymatically oriented paradigm in both fundamental and applied contexts.

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Synthesis of transportation fuels from biomass: chemistry, catalysts, and engineering.

TL;DR: Hydrogen Production by Water−Gas Shift Reaction 4056 4.1.
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Biomass recalcitrance: engineering plants and enzymes for biofuels production.

TL;DR: Here, the natural resistance of plant cell walls to microbial and enzymatic deconstruction is considered, collectively known as “biomass recalcitrance,” which is largely responsible for the high cost of lignocellulose conversion.
Journal ArticleDOI

Toward an aggregated understanding of enzymatic hydrolysis of cellulose: noncomplexed cellulase systems.

TL;DR: It is suggested that it is timely to revisit and reinvigorate functional modeling of cellulose hydrolysis and that this would be highly beneficial if not necessary in order to bring to bear the large volume of information available on cellulase components on the primary applications that motivate interest in the subject.
Journal ArticleDOI

Trends in biotechnological production of fuel ethanol from different feedstocks.

TL;DR: The different technologies for producing fuel ethanol from sucrose-containing feedstocks (mainly sugar cane, starchy materials and lignocellulosic biomass) are described along with the major research trends for improving them.
Journal ArticleDOI

Ethanol from lignocellulosic biomass: techno-economic performance in short-, middle- and long-term

TL;DR: In this paper, the state of the art of hydrolysis-fermentation technologies to produce ethanol from lignocellulosic biomass, as well as developing technologies, are evaluated.
References
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Journal ArticleDOI

Differential metabolism of cellobiose and glucose by Clostridium thermocellum and Clostridium thermohydrosulfuricum.

T K Ng, +1 more
TL;DR: The general catalytic and kinetic properties of the glucose- and cellobiose-catabolizing enzymes in the two species are described, and a model is proposed to distinguish differential saccharide metabolism by these thermophilic ethanologens.
Journal ArticleDOI

Molecular cloning and expression in Saccharomyces cerevisiae of two Aspergillus nidulans xylanase genes.

TL;DR: Two Aspergillus nidulans genes, xlnA and xlnB, encoding the X22 and X24 xylanases from this fungus, respectively, have been cloned and sequenced, resulting in the construction of recombinant xylanolytic yeast strains.
Book

The Clostridia and biotechnology

D. R. Woods
TL;DR: History and Future Potential of the Clostridia in Biotechnology Biochemistry and Regulation of Acid and Solvent Production in Clostrida Mutagenesis and its Application in biotechnology development and Exploitation of Conjugative Gene Transfer.
Journal ArticleDOI

Structure, organization, and transcription of a cellobiohydrolase gene cluster from Phanerochaete chrysosporium.

TL;DR: Some aspects of the chromosomal organization, structure, and transcription of these genes are unlike those of any previously described cellulase genes.
Book ChapterDOI

Reaction Kinetics, Molecular Action, and Mechanisms of Cellulolytic Proteins

TL;DR: This chapter combines the fundamentals of cellulose structure with enzyme function in a manner that relates the cellulose binding and biochemical kinetics at the catalytic site of the proteins to the macroscopic behavior of cellulase enzyme systems.
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