Assembly of Minicellulosomes on the Surface of Bacillus subtilis

Author:

Anderson Timothy D.1,Robson Scott A.,Jiang Xiao Wen1,Malmirchegini G. Reza1,Fierobe Henri-Pierre2,Lazazzera Beth A.34,Clubb Robert T.153

Affiliation:

1. Department of Chemistry and Biochemistry, University of California, Los Angeles, 611 Charles E. Young Drive, Los Angeles, California 90095-1570

2. Laboratoire de Chimie Bactérienne, IFR88-CNRS Marseille, France

3. Molecular Biology Institute, University of California, Los Angeles, 611 Charles E. Young Drive, Los Angeles, California 90095-1570

4. Department of Microbiology, Immunology and Molecular Genetics, University of California, Los Angeles, 611 Charles E. Young Drive, Los Angeles, California 90095-1570

5. UCLA-DOE Institute for Genomics and Proteomics, University of California, Los Angeles, 611 Charles E. Young Drive, Los Angeles, California 90095-1570

Abstract

ABSTRACT To cost-efficiently produce biofuels, new methods are needed to convert lignocellulosic biomass into fermentable sugars. One promising approach is to degrade biomass using cellulosomes, which are surface-displayed multicellulase-containing complexes present in cellulolytic Clostridium and Ruminococcus species. In this study we created cellulolytic strains of Bacillus subtilis that display one or more cellulase enzymes. Proteins containing the appropriate cell wall sorting signal are covalently anchored to the peptidoglycan by coexpressing them with the Bacillus anthracis sortase A (SrtA) transpeptidase. This approach was used to covalently attach the Cel8A endoglucanase from Clostridium thermocellum to the cell wall. In addition, a Cel8A-dockerin fusion protein was anchored on the surface of B. subtilis via noncovalent interactions with a cell wall-attached cohesin module. We also demonstrate that it is possible to assemble multienzyme complexes on the cell surface. A three-enzyme-containing minicellulosome was displayed on the cell surface; it consisted of a cell wall-attached scaffoldin protein noncovalently bound to three cellulase-dockerin fusion proteins that were produced in Escherichia coli . B. subtilis has a robust genetic system and is currently used in a wide range of industrial processes. Thus, grafting larger, more elaborate minicellulosomes onto the surface of B. subtilis may yield cellulolytic bacteria with increased potency that can be used to degrade biomass.

Publisher

American Society for Microbiology

Subject

Ecology,Applied Microbiology and Biotechnology,Food Science,Biotechnology

Reference72 articles.

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