Quantitative characterization of recombinase-based digitizer circuits enables predictable amplification of biological signals
Kiwimagi & Letendre et al. present a workflow to quantitatively define recombinase-based digitizer and predict responses to different input signals. With a mechanistic/phenotypic model that can predict circuit performance, they generate a synthetic cell-cell communication device that amplifies a...
Saved in:
Main Authors: | Katherine A. Kiwimagi, Justin H. Letendre, Benjamin H. Weinberg, Junmin Wang, Mingzhe Chen, Leandro Watanabe, Chris J. Myers, Jacob Beal, Wilson W. Wong, Ron Weiss |
---|---|
Format: | article |
Language: | EN |
Published: |
Nature Portfolio
2021
|
Subjects: | |
Online Access: | https://doaj.org/article/d4030bb1a2c34df186adb664ad87a908 |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
Similar Items
-
High-performance chemical- and light-inducible recombinases in mammalian cells and mice
by: Benjamin H. Weinberg, et al.
Published: (2019) -
Protein or ribonucleoprotein-mediated blocking of recombinase polymerase amplification enables the discrimination of nucleotide and epigenetic differences between cell populations
by: Toshitsugu Fujita, et al.
Published: (2021) -
Recombinase polymerase amplification (RPA) with lateral flow detection for three Anaplasma species of importance to livestock health
by: Andrea Salazar, et al.
Published: (2021) -
A recombinase polymerase amplification assay for rapid detection of rabies virus
by: Martin Faye, et al.
Published: (2021) -
Recombinase Polymerase Amplification Assay with and without Nuclease-Dependent-Labeled Oligonucleotide Probe
by: Aleksandr V. Ivanov, et al.
Published: (2021)