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Abstract

Synthetic biology enables the creative combination of engineering and molecular biology for exploration of fundamental aspects of biological phenomena. However, there are limited resources available for such applications in the educational context, where straightforward setup, easily measurable phenotypes and extensibility are of particular importance. We developed Unigems, a set of 10 plasmids that enable classroom-based investigation of gene expression control and biological logic gates to facilitate teaching synthetic biology and genetic engineering. It is built on a high-copy plasmid backbone and is easily extensible thanks to a common primer set that facilitates Gibson Assembly of PCR-generated or synthesised DNA parts into the target vector. It includes two reporter genes with either two constitutive (high- or low-level) or two inducible (lactose- or arabinose-) promoters, as well as a single-plasmid implementation of an AND logic gate. The set can readily be employed in undergraduate teaching settings, during outreach events and for training of iGEM teams. All plasmids have been deposited in Addgene.

Funding
This study was supported by the:
  • FP7 People: Marie-Curie Actions (Award 300038)
    • Principle Award Recipient: Jarosław Bryk
  • Wellcome Trust (Award WT103054MA)
    • Principle Award Recipient: Jarosław Bryk
  • Wellcome Trust (Award WT103054MA)
    • Principle Award Recipient: Dean Madden
  • This is an open-access article distributed under the terms of the Creative Commons Attribution License.
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/content/journal/acmi/10.1099/acmi.0.000596.v1
2023-03-16
2024-05-15
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http://instance.metastore.ingenta.com/content/journal/acmi/10.1099/acmi.0.000596.v1
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