Please use this identifier to cite or link to this item: https://doi.org/10.1021/acs.biomac.1c00533
Title: Structure of a Minimal alpha-Carboxysome-Derived Shell and Its Utility in Enzyme Stabilization
Authors: Tan, Yong Quan 
Ali, Samson
Xue, Bo 
Teo, Wei Zhe 
Ling, Lay Hiang 
Go, Maybelle Kho 
Lv, Hong
Robinson, Robert C 
Narita, Akihiro
Yew, Wen Shan 
Keywords: Science & Technology
Life Sciences & Biomedicine
Physical Sciences
Biochemistry & Molecular Biology
Chemistry, Organic
Polymer Science
Chemistry
BACTERIAL MICROCOMPARTMENT SHELLS
ESCHERICHIA-COLI
BETA-GALACTOSIDASE
PROTEIN
ENCAPSULATION
IDENTIFICATION
NANOREACTORS
EXPRESSION
EVOLUTION
ALIGNMENT
Issue Date: 12-Aug-2021
Publisher: AMER CHEMICAL SOC
Citation: Tan, Yong Quan, Ali, Samson, Xue, Bo, Teo, Wei Zhe, Ling, Lay Hiang, Go, Maybelle Kho, Lv, Hong, Robinson, Robert C, Narita, Akihiro, Yew, Wen Shan (2021-08-12). Structure of a Minimal alpha-Carboxysome-Derived Shell and Its Utility in Enzyme Stabilization. BIOMACROMOLECULES 22 (10) : 4095-4109. ScholarBank@NUS Repository. https://doi.org/10.1021/acs.biomac.1c00533
Abstract: Bacterial microcompartments are proteinaceous shells that encase specialized metabolic processes in bacteria. Recent advances in simplification of these intricate shells have encouraged bioengineering efforts. Here, we construct minimal shells derived from the Halothiobacillus neapolitanus α-carboxysome, which we term Cso-shell. Using cryogenic electron microscopy, the atomic-level structures of two shell forms were obtained, reinforcing notions of evolutionarily conserved features in bacterial microcompartment shell architecture. Encapsulation peptide sequences that facilitate loading of heterologous protein cargo within the shells were identified. We further provide a first demonstration in utilizing minimal bacterial microcompartment-derived shells for hosting heterologous enzymes. Cso-shells were found to stabilize enzymatic activities against heat shock, presence of methanol co-solvent, consecutive freeze-thawing, and alkaline environments. This study yields insights into α-carboxysome assembly and advances the utility of synthetic bacterial microcompartments as nanoreactors capable of stabilizing enzymes with varied properties and reaction chemistries.
Source Title: BIOMACROMOLECULES
URI: https://scholarbank.nus.edu.sg/handle/10635/238318
ISSN: 1525-7797
1526-4602
DOI: 10.1021/acs.biomac.1c00533
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