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Article

Analysis of the Innovation Trend in Cell-Free Synthetic Biology

1
Department of Biomedical Engineering, University of California, Davis, CA 95618, USA
2
Department of Chemical and Biological Engineering and Center for Synthetic Biology, Northwestern University, Evanston, IL 60208, USA
*
Author to whom correspondence should be addressed.
Life 2021, 11(6), 551; https://doi.org/10.3390/life11060551
Submission received: 30 April 2021 / Revised: 5 June 2021 / Accepted: 8 June 2021 / Published: 11 June 2021

Abstract

Cell-free synthetic biology is a maturing field that aims to assemble biomolecular reactions outside cells for compelling applications in drug discovery, metabolic engineering, biomanufacturing, diagnostics, and education. Cell-free systems have several key features. They circumvent mechanisms that have evolved to facilitate species survival, bypass limitations on molecular transport across the cell wall, enable high-yielding and rapid synthesis of proteins without creating recombinant cells, and provide high tolerance towards toxic substrates or products. Here, we analyze ~750 published patents and ~2000 peer-reviewed manuscripts in the field of cell-free systems. Three hallmarks emerged. First, we found that both patent filings and manuscript publications per year are significantly increasing (five-fold and 1.5-fold over the last decade, respectively). Second, we observed that the innovation landscape has changed. Patent applications were dominated by Japan in the early 2000s before shifting to China and the USA in recent years. Finally, we discovered an increasing prevalence of biotechnology companies using cell-free systems. Our analysis has broad implications on the future development of cell-free synthetic biology for commercial and industrial applications.
Keywords: synthetic biology; cell-free protein synthesis; TX-TL; transcription and translation; patent; industry synthetic biology; cell-free protein synthesis; TX-TL; transcription and translation; patent; industry

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MDPI and ACS Style

Meyer, C.; Nakamura, Y.; Rasor, B.J.; Karim, A.S.; Jewett, M.C.; Tan, C. Analysis of the Innovation Trend in Cell-Free Synthetic Biology. Life 2021, 11, 551. https://doi.org/10.3390/life11060551

AMA Style

Meyer C, Nakamura Y, Rasor BJ, Karim AS, Jewett MC, Tan C. Analysis of the Innovation Trend in Cell-Free Synthetic Biology. Life. 2021; 11(6):551. https://doi.org/10.3390/life11060551

Chicago/Turabian Style

Meyer, Conary, Yusuke Nakamura, Blake J. Rasor, Ashty S. Karim, Michael C. Jewett, and Cheemeng Tan. 2021. "Analysis of the Innovation Trend in Cell-Free Synthetic Biology" Life 11, no. 6: 551. https://doi.org/10.3390/life11060551

APA Style

Meyer, C., Nakamura, Y., Rasor, B. J., Karim, A. S., Jewett, M. C., & Tan, C. (2021). Analysis of the Innovation Trend in Cell-Free Synthetic Biology. Life, 11(6), 551. https://doi.org/10.3390/life11060551

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