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"Cell-Free Synthetic Biology": Synthetic Biology Meets Cell-Free Protein Synthesis

Overview
Journal Methods Protoc
Specialty General Medicine
Date 2019 Oct 11
PMID 31597405
Citations 1
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Abstract

Since Nirenberg and Matthaei used cell-free protein synthesis (CFPS) to elucidate the genetic code in the early 1960s [1], the technology has been developed over the course of decades and applied to studying both fundamental and applied biology [2]. Cell-free synthetic biology integrating CFPS with synthetic biology has received attention as a powerful and rapid approach to characterize and engineer natural biological systems. The open nature of cell-free (or in vitro) biological platforms compared to in vivo systems brings an unprecedented level of control and freedom in design [3]. This versatile engineering toolkit has been used for debugging biological networks, constructing artificial cells, screening protein libraries, prototyping genetic circuits, developing biosensors, producing metabolites, and synthesizing complex proteins including antibodies, toxic proteins, membrane proteins, and novel proteins containing nonstandard (unnatural) amino acids. The "Cell-Free Synthetic Biology" Special Issue consists of a series of reviews, protocols, benchmarks, and research articles describing the current development and applications of cell-free synthetic biology in diverse areas. [...].

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References
1.
Martin R, Des Soye B, Kwon Y, Kay J, Davis R, Thomas P . Cell-free protein synthesis from genomically recoded bacteria enables multisite incorporation of noncanonical amino acids. Nat Commun. 2018; 9(1):1203. PMC: 5865108. DOI: 10.1038/s41467-018-03469-5. View

2.
Perez J, Stark J, Jewett M . Cell-Free Synthetic Biology: Engineering Beyond the Cell. Cold Spring Harb Perspect Biol. 2016; 8(12). PMC: 5131772. DOI: 10.1101/cshperspect.a023853. View

3.
Lim H, Kim D . Cell-Free Metabolic Engineering: Recent Developments and Future Prospects. Methods Protoc. 2019; 2(2). PMC: 6632161. DOI: 10.3390/mps2020033. View

4.
Nirenberg M, MATTHAEI J . The dependence of cell-free protein synthesis in E. coli upon naturally occurring or synthetic polyribonucleotides. Proc Natl Acad Sci U S A. 1961; 47:1588-602. PMC: 223178. DOI: 10.1073/pnas.47.10.1588. View

5.
Gao W, Bu N, Lu Y . Efficient Incorporation of Unnatural Amino Acids into Proteins with a Robust Cell-Free System. Methods Protoc. 2019; 2(1). PMC: 6481062. DOI: 10.3390/mps2010016. View