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the claim

DNA contains computational control structures like conditionals and loops

the verdict
SUPPORTED
the evidence backs this
Recorded sources
5 sources for · 0 against

Counts group repeated records of the same source within each side. They do not measure evidence strength or source independence.

DNA regulation naturally functions through mechanisms analogous to computational control structures, allowing researchers to engineer genetic circuits that perform logic operations, conditionals, and loops.

The analysis

The retrieved papers consistently demonstrate that biological regulatory elements in DNA (such as promoters, operators, transcription factors, and feedback loops) can be analyzed and engineered as computational control structures, including logic gates, switches, and feedback mechanisms. The evidence strongly supports the claim that DNA contains these regulatory analogs.

Evidence for · 5
Recorded source metadata

Max A. English, Raphael V. Gayet, J. Collins. Designing Biological Circuits: Synthetic Biology Within the Operon Model and Beyond.. 2021. https://doi.org/10.1146/annurev-biochem-013118-111914

Reviews how the operon model and regulatory DNA architectures established the foundation for biological circuits and synthetic gene networks.

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More for · 4
Recorded source metadata

M. Müller, Katja M. Arndt, Stefan A Hoffmann. Genetic circuits in synthetic biology: broadening the toolbox of regulatory devices. 2025. https://doi.org/10.3389/fsybi.2025.1548572

Discusses how genetic circuitry—including switches, logic gates, and feedback loops—is constructed from regulatory units operating on DNA sequences.

Recorded source metadata

Samuel Clamons, Richard M. Murray. Modeling Dynamic Transcriptional Circuits with CRISPRi. 2017. https://doi.org/10.1101/225318

Shows that targeted transcriptional repression can be modeled to build classic computational control structures like toggle switches and feed-forward loops.

Recorded source metadata

Ron Weiss, Thomas F. ,Jr., Knight. Cellular Computation and Communication Using Engineered Genetic Regulatory Networks. 2004. https://doi.org/10.1093/oso/9780195155396.003.0012

Demonstrates the feasibility of cellular computation by building in vivo digital logic circuits using DNA segments, DNA-binding proteins, and small molecules.

Recorded source metadata

Bei Zhong, Li Zhou, Rongqi Li, Hui Wang, Wei Li, Fei Teng. Powering next-generation precision therapeutics through integrated synthetic transcriptional systems.. 2026. https://doi.org/10.1016/j.celrep.2026.117308

Highlights how synthetic promoters and transcription factors are integrated to form genetic circuits incorporating logic gates and feedback loops.

The paper trail · every fact has a biography
first checked01 Aug 2026
judged → SUPPORTED · 8601 Aug 2026
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