A simple regulatory architecture allows learning the statistical structure of a changing environment

Author:

Landmann Stefan1,Holmes Caroline M2ORCID,Tikhonov Mikhail3ORCID

Affiliation:

1. Institute of Physics, Carl von Ossietzky University of Oldenburg, Oldenburg, Germany

2. Department of Physics, Princeton University, Princeton, United States

3. Department of Physics, Center for Science and Engineering of Living Systems, Washington University in St. Louis, St. Louis, United States

Abstract

Bacteria live in environments that are continuously fluctuating and changing. Exploiting any predictability of such fluctuations can lead to an increased fitness. On longer timescales, bacteria can ‘learn’ the structure of these fluctuations through evolution. However, on shorter timescales, inferring the statistics of the environment and acting upon this information would need to be accomplished by physiological mechanisms. Here, we use a model of metabolism to show that a simple generalization of a common regulatory motif (end-product inhibition) is sufficient both for learning continuous-valued features of the statistical structure of the environment and for translating this information into predictive behavior; moreover, it accomplishes these tasks near-optimally. We discuss plausible genetic circuits that could instantiate the mechanism we describe, including one similar to the architecture of two-component signaling, and argue that the key ingredients required for such predictive behavior are readily accessible to bacteria.

Funder

Deutsche Forschungsgemeinschaft

National Science Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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4. Strong turing completeness of continuous chemical reaction networks and compilation of mixed analog-digital programs;Fages,2017

5. Two-component signaling circuit structure and properties;Goulian;Current Opinion in Microbiology,2010

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