Literature DB >> 26292344

A Cytomorphic Chip for Quantitative Modeling of Fundamental Bio-Molecular Circuits.

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Abstract

We describe a 0.35 μm BiCMOS silicon chip that quantitatively models fundamental molecular circuits via efficient log-domain cytomorphic transistor equivalents. These circuits include those for biochemical binding with automatic representation of non-modular and loading behavior, e.g., in cascade and fan-out topologies; for representing variable Hill-coefficient operation and cooperative binding; for representing inducer, transcription-factor, and DNA binding; for probabilistic gene transcription with analogic representations of log-linear and saturating operation; for gain, degradation, and dynamics of mRNA and protein variables in transcription and translation; and, for faithfully representing biological noise via tunable stochastic transistor circuits. The use of on-chip DACs and ADCs enables multiple chips to interact via incoming and outgoing molecular digital data packets and thus create scalable biochemical reaction networks. The use of off-chip digital processors and on-chip digital memory enables programmable connectivity and parameter storage. We show that published static and dynamic MATLAB models of synthetic biological circuits including repressilators, feed-forward loops, and feedback oscillators are in excellent quantitative agreement with those from transistor circuits on the chip. Computationally intensive stochastic Gillespie simulations of molecular production are also rapidly reproduced by the chip and can be reliably tuned over the range of signal-to-noise ratios observed in biological cells.

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Year:  2015        PMID: 26292344     DOI: 10.1109/TBCAS.2015.2446431

Source DB:  PubMed          Journal:  IEEE Trans Biomed Circuits Syst        ISSN: 1932-4545            Impact factor:   3.833


  6 in total

1.  A Digitally Programmable Cytomorphic Chip for Simulation of Arbitrary Biochemical Reaction Networks.

Authors:  Sung Sik Woo; Jaewook Kim; Rahul Sarpeshkar
Journal:  IEEE Trans Biomed Circuits Syst       Date:  2018-04       Impact factor: 3.833

2.  An Artificial Tissue Homeostasis Circuit Designed via Analog Circuit Techniques.

Authors:  Jonathan J Y Teo; Ron Weiss; Rahul Sarpeshkar
Journal:  IEEE Trans Biomed Circuits Syst       Date:  2019-03-25       Impact factor: 3.833

3.  Cytomorphic Electronic Systems: A review and perspective.

Authors:  Douglas Raymond Beahm; Yijie Deng; Tanner G Riley; Rahul Sarpeshkar
Journal:  IEEE Nanotechnol Mag       Date:  2021-10-04

4.  Measuring and modeling energy and power consumption in living microbial cells with a synthetic ATP reporter.

Authors:  Yijie Deng; Douglas Raymond Beahm; Steven Ionov; Rahul Sarpeshkar
Journal:  BMC Biol       Date:  2021-05-17       Impact factor: 7.431

5.  Exploiting the dynamic properties of covalent modification cycle for the design of synthetic analog biomolecular circuitry.

Authors:  Mathias Foo; Rucha Sawlekar; Declan G Bates
Journal:  J Biol Eng       Date:  2016-11-14       Impact factor: 4.355

6.  Rapid modeling of experimental molecular kinetics with simple electronic circuits instead of with complex differential equations.

Authors:  Yijie Deng; Douglas Raymond Beahm; Xinping Ran; Tanner G Riley; Rahul Sarpeshkar
Journal:  Front Bioeng Biotechnol       Date:  2022-09-28
  6 in total

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