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Small-molecule Inducible Transcriptional Control in Mammalian Cells

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Publisher Informa Healthcare
Date 2020 Sep 1
PMID 32862714
Citations 8
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Abstract

Tools for tuning transcription in mammalian cells have broad applications, from basic biological discovery to human gene therapy. While precise control over target gene transcription dosing with small molecules (drugs) is highly sought, the design of such inducible systems that meets required performance metrics poses a great challenge in mammalian cell synthetic biology. Important characteristics include tight and tunable gene expression with a low background, minimal drug toxicity, and orthogonality. Here, we review small-molecule-inducible transcriptional control devices that have demonstrated success in mammalian cells and mouse models. Most of these systems employ natural or designed ligand-binding protein domains to directly or indirectly communicate with transcription machinery at a target sequence, carefully constructed fusions. Example fusions include those to transcription activator-like effectors (TALEs), DNA-targeting proteins (e.g. dCas systems) fused to transactivating domains, and recombinases. Similar to the architecture of Type I nuclear receptors, many of the systems are designed such that the transcriptional controller is excluded from the nucleus in the absence of an inducer. Techniques that use ligand-induced proteolysis and antibody-based chemically induced dimerizers are also described. Collectively, these transcriptional control devices take advantage of a variety of recently developed molecular biology tools and cell biology insights and represent both proof of concept (e.g. targeting reporter gene expression) and disease-targeting studies.

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References
1.
Maude S, Barrett D, Teachey D, Grupp S . Managing cytokine release syndrome associated with novel T cell-engaging therapies. Cancer J. 2014; 20(2):119-22. PMC: 4119809. DOI: 10.1097/PPO.0000000000000035. View

2.
Heinis C, Johnsson K . Using peptide loop insertion mutagenesis for the evolution of proteins. Methods Mol Biol. 2010; 634:217-32. DOI: 10.1007/978-1-60761-652-8_16. View

3.
Mercer A, Gaj T, Sirk S, Lamb B, Barbas 3rd C . Regulation of endogenous human gene expression by ligand-inducible TALE transcription factors. ACS Synth Biol. 2013; 3(10):723-30. PMC: 4097969. DOI: 10.1021/sb400114p. View

4.
Ruella M, Xu J, Barrett D, Fraietta J, Reich T, Ambrose D . Induction of resistance to chimeric antigen receptor T cell therapy by transduction of a single leukemic B cell. Nat Med. 2018; 24(10):1499-1503. PMC: 6511988. DOI: 10.1038/s41591-018-0201-9. View

5.
Ye H, Xie M, Xue S, Hamri G, Yin J, Zulewski H . Self-adjusting synthetic gene circuit for correcting insulin resistance. Nat Biomed Eng. 2017; 1(1):0005. PMC: 5412959. DOI: 10.1038/s41551-016-0005. View