4.7 Article

Construction of an organelle-like nanodevice via supramolecular self-assembly for robust biocatalysts

期刊

MICROBIAL CELL FACTORIES
卷 17, 期 -, 页码 -

出版社

BIOMED CENTRAL LTD
DOI: 10.1186/s12934-018-0873-3

关键词

Nanodevice; Self-assembly; (+)-gamma-lactamase; Biocatalysis; Nanocompartments; Synthetic biology; Protein dodecahedron; Nanoreactor

资金

  1. National Natural Science Foundation of China (NSFC) [21706005]
  2. China Postdoctoral Science Foundation [2017M610747]
  3. Fundamental Research Funds for the Central Universities [ZY1713]

向作者/读者索取更多资源

Background: When using the microbial cell factories for green manufacturing, several important issues need to be addressed such as how to maintain the stability of biocatalysts used in the bioprocess and how to improve the synthetic efficiency of the biological system. One strategy widely used during natural evolution is the creation of organelles which can be used for regional control. This kind of compartmentalization strategy has inspired the design of artificial organelle-like nanodevice for synthetic biology and green chemistry. Results: Mimicking the natural concept of functional compartments, here we show that the engineered thermostable ketohydroxyglutarate aldolase from Thermotoga maritima could be developed as a general platform for nanoreactor design via supramolecular self-assembly. An industrial biocatalyst-(+)-gamma-lactamase was selected as a model catalyst and successful encapsulated in the nanoreactor with high copies. These nanomaterials could easily be synthesized by Escherichia coli by heterologous expression and subsequently self-assembles into the target organelle-like nanoreactors both in vivo and in vitro. By probing their structural characteristics via transmission electronic microscopy and their catalytic activity under diverse conditions, we proved that these nanoreactors could confer a significant benefit to the cargo proteins. The encapsulated protein exhibits significantly improved stability under conditions such as in the presence of organic solvent or proteases, and shows better substrate tolerance than free enzyme. Conclusions: Our biodesign strategy provides new methods to develop new catalytically active protein-nanoreactors and could easily be applied into other biocatalysts. These artificial organelles could have widely application in sustainable catalysis, synthetic biology and could significantly improve the performance of microbial cell factories.

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