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Elucidating structure-performance relationships in whole-cell cooperative enzyme catalysis.


ABSTRACT: Cooperative enzyme catalysis in nature has long inspired the application of engineered multi-enzyme assemblies for industrial biocatalysis. Despite considerable interest, efforts to harness the activity of cell-surface displayed multi-enzyme assemblies have been based on trial and error rather than rational design due to a lack of quantitative tools. In this study, we developed a quantitative approach to whole-cell biocatalyst characterization enabling a comprehensive study of how yeast-surface displayed multi-enzyme assemblies form. Here we show that the multi-enzyme assembly efficiency is limited by molecular crowding on the yeast cell surface, and that maximizing enzyme density is the most important parameter for enhancing cellulose hydrolytic performance. Interestingly, we also observed that proximity effects are only synergistic when the average inter-enzyme distance is > ~130 nm. The findings and the quantitative approach developed in this work should help to advance the field of biocatalyst engineering from trial and error to rational design.

SUBMITTER: Smith MR 

PROVIDER: S-EPMC7597743 | biostudies-literature | 2019

REPOSITORIES: biostudies-literature

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Elucidating structure-performance relationships in whole-cell cooperative enzyme catalysis.

Smith Mason R MR   Gao Hui H   Prabhu Ponnandy P   Bugada Luke F LF   Roth Cori C   Mutukuri Deepika D   Yee Christine M CM   Lee Lester L   Ziff Robert M RM   Lee Jung-Kul JK   Wen Fei F  

Nature catalysis 20190722 9


Cooperative enzyme catalysis in nature has long inspired the application of engineered multi-enzyme assemblies for industrial biocatalysis. Despite considerable interest, efforts to harness the activity of cell-surface displayed multi-enzyme assemblies have been based on trial and error rather than rational design due to a lack of quantitative tools. In this study, we developed a quantitative approach to whole-cell biocatalyst characterization enabling a comprehensive study of how yeast-surface  ...[more]

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