Metabolic burden is a critical limiting factor in the design of synthetic circuits, affecting both their reliability and performance. To mitigate its effects, distributing control functions across different cell populations within a multicellular control architecture offers a promising solution, while simultaneously enhancing modularity and re-usability of the circuits. We first present a model that explicitly accounts for limited ribosome availability within cells. Using this framework, we then derive a mathematical model of a multicellular antithetic integral controller that incorporates these shared resources. Through numerical bifurcation analysis and in silico agent-based experiments in BSim, we compare the multicellular controller against its traditional single-cell (embedded) implementation, evaluating both resource utilization and stability.

In silico analysis of metabolic burden effects on a multicellular integral controller / Campanile, G.; Martinelli, V.; Salzano, D.; Fiore, D.; Di Bernardo, M.. - In: EUROPEAN JOURNAL OF CONTROL. - ISSN 0947-3580. - (2025). [10.1016/j.ejcon.2025.101322]

In silico analysis of metabolic burden effects on a multicellular integral controller

Campanile G.;Martinelli V.;Salzano D.;Fiore D.;di Bernardo M.
2025

Abstract

Metabolic burden is a critical limiting factor in the design of synthetic circuits, affecting both their reliability and performance. To mitigate its effects, distributing control functions across different cell populations within a multicellular control architecture offers a promising solution, while simultaneously enhancing modularity and re-usability of the circuits. We first present a model that explicitly accounts for limited ribosome availability within cells. Using this framework, we then derive a mathematical model of a multicellular antithetic integral controller that incorporates these shared resources. Through numerical bifurcation analysis and in silico agent-based experiments in BSim, we compare the multicellular controller against its traditional single-cell (embedded) implementation, evaluating both resource utilization and stability.
2025
In silico analysis of metabolic burden effects on a multicellular integral controller / Campanile, G.; Martinelli, V.; Salzano, D.; Fiore, D.; Di Bernardo, M.. - In: EUROPEAN JOURNAL OF CONTROL. - ISSN 0947-3580. - (2025). [10.1016/j.ejcon.2025.101322]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/1009788
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