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ACS Synthetic Biology|July 4, 2019
Inducible Gene Switches with Memory in Human T Cells for Cellular ImmunotherapyDeboki Chakravarti, Leidy D Caraballo, Benjamin H Weinberg, et al.
Plos Computational Biology|December 18, 2020
A mechanistic model of the BLADE platform predicts performance characteristics of 256 different synthetic DNA recombination circuitsJack E Bowyer, Chloe Ding, Benjamin H Weinberg, et al.
Integrative Biology : Quantitative Biosciences From Nano to Macro|April 13, 2016
Synthetic biology approaches in cancer immunotherapy, genetic network engineering, and genome editingDeboki Chakravarti, Jang Hwan Cho, Benjamin H Weinberg, et al.
ACS Synthetic Biology|April 8, 2015
Rationally Designed MicroRNA-Based Genetic Classifiers Target Specific Neurons in the BrainMarianna K Sayeg, Benjamin H Weinberg, Susie S Cha, et al.
Nature Biotechnology|March 28, 2017
Large-scale design of robust genetic circuits with multiple inputs and outputs for mammalian cellsBenjamin H Weinberg, N T Hang Pham, Leidy D Caraballo, et al.
Communications Biology|July 16, 2021
Quantitative characterization of recombinase-based digitizer circuits enables predictable amplification of biological signalsKatherine A Kiwimagi, Justin H Letendre, Benjamin H Weinberg, et al.
Nature Communications|October 26, 2019
High-performance chemical- and light-inducible recombinases in mammalian cells and miceBenjamin H Weinberg, Jang Hwan Cho, Yash Agarwal, et al.
BMC Systems Biology|January 8, 2017
Coordinated regulation of acid resistance in Escherichia coliPatricia Aquino, Brent Honda, Suma Jaini, et al.
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