2011Unpublished venueRequires access

Cellulosomes - A Robust Machinery for Cellulose Degradation

Vijay Kothari, Parini Surti, Devanshi Kapadia

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Abstract

Cellulose is the most abundant polymer in nature. It is the chief component of huge amount of agricultural waste generated every year. Cellulosomes are the multicomponent, multienzyme complexes of anaerobic cellulolytic bacteria, which employ the synergistic activity of various resident enzymes that efficiently degrade cellulose and other components of plant cell wall. The cellulolytic enzyme complexes of anaerobes, Clostridium thermocellum and Clostridium cellulovorans have been studied widely. To understand the complex phenomena between the plant cell wall polymers, cellulolytic microbes and their enzymes, a highly integrated approach is required. Designer cellulosomes may prove a useful tool for economic conversion of cellulosic biomass to biofuels. Efficient cellulosome application will provide dual benefits of cellulosic waste disposal as well as conversion of cellulose into fermentable sugars for ethanol production for solving fuel crisis.

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What this paper is about

Cellulose is the most abundant polymer in nature. It is the chief component of huge amount of agricultural waste generated every year. Cellulosomes are the multicomponent, multienzyme complexes of anaerobic cellulolytic bacteria, which employ the synergistic activity of various resident enzymes that efficiently degrade cellulose and other components of plant cell wall. The cellulolytic enzyme complexes of anaerobes, Clostridium thermocellum and Clostridium cellulovorans have been studied widely. To understand the complex phenomena between the plant cell wall polymers, cellulolytic microbes and their enzymes, a highly integrated approach is required. Designer cellulosomes may prove a useful tool for economic conversion of cellulosic biomass to biofuels. Efficient cellulosome application will provide dual benefits of cellulosic waste disposal as well as conversion of cellulose into fermentable sugars for ethanol production for solving fuel crisis.

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Available abstract

Cellulose is the most abundant polymer in nature. It is the chief component of huge amount of agricultural waste generated every year. Cellulosomes are the multicomponent, multienzyme complexes of anaerobic cellulolytic bacteria, which employ the synergistic activity of various resident enzymes that efficiently degrade cellulose and other components of plant cell wall. The cellulolytic enzyme complexes of anaerobes, Clostridium thermocellum and Clostridium cellulovorans have been studied widely. To understand the complex phenomena between the plant cell wall polymers, cellulolytic microbes and their enzymes, a highly integrated approach is required. Designer cellulosomes may prove a useful tool for economic conversion of cellulosic biomass to biofuels. Efficient cellulosome application will provide dual benefits of cellulosic waste disposal as well as conversion of cellulose into fermentable sugars for ethanol production for solving fuel crisis.

Key concepts: Cellulosome, Clostridium thermocellum, Cellulosic ethanol, Cellulose, Cellulase, Pulp and paper industry, Biomass (ecology), Chemistry

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