A cellulosomal double‐dockerin module from Clostridium thermocellum shows distinct structural and cohesin‐binding features

Author:

Chen Chao1234,Yang Hongwu1,Dong Sheng1234,You Cai123,Moraïs Sarah5,Bayer Edward A.56,Liu Ya‐Jun1234,Xuan Jinsong7,Cui Qiu12348,Mizrahi Itzhak5,Feng Yingang1234ORCID

Affiliation:

1. CAS Key Laboratory of Biofuels, Shandong Provincial Key Laboratory of Synthetic Biology Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences Qingdao China

2. Shandong Energy Institute Qingdao China

3. Qingdao New Energy Shandong Laboratory Qingdao China

4. University of Chinese Academy of Sciences Beijing China

5. Department of Life Sciences and the National Institute for Biotechnology in the Negev Ben‐Gurion University of the Negev Beer‐Sheva Israel

6. Department of Biomolecular Sciences The Weizmann Institute of Science Rehovot Israel

7. Department of Biological Science and Engineering, School of Chemical and Biological Engineering University of Science and Technology Beijing Beijing China

8. State Key Laboratory of Microbial Technology Shandong University Qingdao China

Abstract

AbstractCellulosomes are intricate cellulose‐degrading multi‐enzymatic complexes produced by anaerobic bacteria, which are valuable for bioenergy development and biotechnology. Cellulosome assembly relies on the selective interaction between cohesin modules in structural scaffolding proteins (scaffoldins) and dockerin modules in enzymes. Although the number of tandem cohesins in the scaffoldins is believed to determine the complexity of the cellulosomes, tandem dockerins also exist, albeit very rare, in some cellulosomal components whose assembly and functional roles are currently unclear. In this study, we characterized the structure and mode of assembly of a tandem bimodular double‐dockerin, which is connected to a putative S8 protease in the cellulosome‐producing bacterium, Clostridium thermocellum. Crystal and NMR structures of the double‐dockerin revealed two typical type I dockerin folds with significant interactions between them. Interaction analysis by isothermal titration calorimetry and NMR titration experiments revealed that the double‐dockerin displays a preference for binding to the cell‐wall anchoring scaffoldin ScaD through the first dockerin with a canonical dual‐binding mode, while the second dockerin module was unable to bind to any of the tested cohesins. Surprisingly, the double‐dockerin showed a much higher affinity to a cohesin from the CipC scaffoldin of Clostridium cellulolyticum than to the resident cohesins from C. thermocellum. These results contribute valuable insights into the structure and assembly of the double‐dockerin module, and provide the basis for further functional studies on multiple‐dockerin modules and cellulosomal proteases, thus highlighting the complexity and diversity of cellulosomal components.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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