genetic switches
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Life ◽  
2021 ◽  
Vol 11 (11) ◽  
pp. 1255
Author(s):  
Pei Du ◽  
Chunbo Lou ◽  
Xuejin Zhao ◽  
Qihui Wang ◽  
Xiangyu Ji ◽  
...  

CRISPR-based enzymes have offered a unique capability to the design of genetic switches, with advantages in designability, modularity and orthogonality. CRISPR-based genetic switches operate on multiple levels of life, including transcription and translation. In both prokaryotic and eukaryotic cells, deactivated CRISPR endonuclease and endoribonuclease have served in genetic switches for activating or repressing gene expression, at both transcriptional and translational levels. With these genetic switches, more complex circuits have been assembled to achieve sophisticated functions including inducible switches, non-linear response and logical biocomputation. As more CRISPR enzymes continue to be excavated, CRISPR-based genetic switches will be used in a much wider range of applications.


Author(s):  
Masahiro Tominaga ◽  
Akihiko Kondo ◽  
Jun Ishii

Genetic switches can be utilized for many purposes in synthetic biology including the assembly of complex genetic circuits to achieve sophisticated cellular systems and the construction of biosensors for real-time monitoring of intracellular metabolite concentrations. Although genetic switches have mainly been developed in prokaryotes to date, eukaryotic genetic switches are increasingly being reported as both rational and irrational engineering technologies mature. In this review, we describe genetic switches in yeast based on synthetic transcription factors and/or synthetic promoters. We also discuss directed evolution technologies for the rapid and robust construction of yeast genetic switches.


2021 ◽  
Vol 15 ◽  
Author(s):  
Jang Soo Yook ◽  
Jihyun Kim ◽  
Jinhyun Kim

Understanding the complex neural circuits that underpin brain function and behavior has been a long-standing goal of neuroscience. Yet this is no small feat considering the interconnectedness of neurons and other cell types, both within and across brain regions. In this review, we describe recent advances in mouse molecular genetic engineering that can be used to integrate information on brain activity and structure at regional, cellular, and subcellular levels. The convergence of structural inputs can be mapped throughout the brain in a cell type-specific manner by antero- and retrograde viral systems expressing various fluorescent proteins and genetic switches. Furthermore, neural activity can be manipulated using opto- and chemo-genetic tools to interrogate the functional significance of this input convergence. Monitoring neuronal activity is obtained with precise spatiotemporal resolution using genetically encoded sensors for calcium changes and specific neurotransmitters. Combining these genetically engineered mapping tools is a compelling approach for unraveling the structural and functional brain architecture of complex behaviors and malfunctioned states of neurological disorders.


BIOspektrum ◽  
2021 ◽  
Vol 27 (3) ◽  
pp. 269-273
Author(s):  
Monika Finke ◽  
Maike Spöring ◽  
Jörg S. Hartig

AbstractRNA-based gene control mechanisms pose an elegant and straightforward way to switch on, off, or fine-tune transgene expression without the need for expressing regulatory proteins. A small molecule effector binds directly to a ligand-binding aptamer RNA structure and thereby modulates expression of an associated target gene. We established genetic switches based on regulation of self-cleaving ribozymes and polyadenylation that allow for control of transgene expression in bacteria, yeast, human cell lines and Caenorhabditis elegans in a robust and dose-dependent manner.


2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Masahiro Tominaga ◽  
Kenta Nozaki ◽  
Daisuke Umeno ◽  
Jun Ishii ◽  
Akihiko Kondo

AbstractA wide repertoire of genetic switches has accelerated prokaryotic synthetic biology, while eukaryotic synthetic biology has lagged in the model organism Saccharomyces cerevisiae. Eukaryotic genetic switches are larger and more complex than prokaryotic ones, complicating the rational design and evolution of them. Here, we present a robust workflow for the creation and evolution of yeast genetic switches. The selector system was designed so that both ON- and OFF-state selection of genetic switches is completed solely by liquid handling, and it enabled parallel screen/selection of different motifs with different selection conditions. Because selection threshold of both ON- and OFF-state selection can be flexibly tuned, the desired selection conditions can be rapidly pinned down for individual directed evolution experiments without a prior knowledge either on the library population. The system’s utility was demonstrated using 20 independent directed evolution experiments, yielding genetic switches with elevated inducer sensitivities, inverted switching behaviours, sensory functions, and improved signal-to-noise ratio (>100-fold induction). The resulting yeast genetic switches were readily integrated, in a plug-and-play manner, into an AND-gated carotenoid biosynthesis pathway.


2021 ◽  
Vol 12 (7) ◽  
pp. 2646-2654
Author(s):  
Avishek Paul ◽  
Jingyi Huang ◽  
Yanxiao Han ◽  
Xintong Yang ◽  
Lela Vuković ◽  
...  

Controlling gene expression by light with fine spatiotemporal resolution not only allows understanding and manipulating fundamental biological processes but also fuels the development of novel therapeutic strategies.


2020 ◽  
Vol 132 (46) ◽  
pp. 20508-20512
Author(s):  
Avishek Paul ◽  
Eliza M. Warszawik ◽  
Mark Loznik ◽  
Arnold J. Boersma ◽  
Andreas Herrmann
Keyword(s):  

2020 ◽  
Vol 59 (46) ◽  
pp. 20328-20332 ◽  
Author(s):  
Avishek Paul ◽  
Eliza M. Warszawik ◽  
Mark Loznik ◽  
Arnold J. Boersma ◽  
Andreas Herrmann
Keyword(s):  

2020 ◽  
Vol 3 (1) ◽  
Author(s):  
Mayna S. Gomide ◽  
Thais T. Sales ◽  
Luciana R. C. Barros ◽  
Cintia G. Limia ◽  
Marco A. de Oliveira ◽  
...  

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