Fast decisions with biophysically constrained gene promoter architectures

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Tohme, Tarek, Vergassola, Massimo, Mora, Thierry, Walczak, Aleksandra M.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866908578625880064
author Tohme, Tarek
Vergassola, Massimo
Mora, Thierry
Walczak, Aleksandra M.
author_facet Tohme, Tarek
Vergassola, Massimo
Mora, Thierry
Walczak, Aleksandra M.
contents Cells integrate signals and make decisions about their future state in short amounts of time. A lot of theoretical effort has gone into asking how to best design gene regulatory circuits that fulfill a given function, yet little is known about the constraints that performing that function in a small amount of time imposes on circuit architectures. Using an optimization framework, we explore the properties of a class of promoter architectures that distinguish small differences in transcription factor concentrations under time constraints. We show that the full temporal trajectory of gene activity allows for faster decisions than its integrated activity represented by the total number of transcribed mRNA. The topology of promoter architectures that allow for rapidly distinguishing low transcription factor concentrations result in a low, shallow, and non cooperative response, while at high concentrations, the response is high and cooperative. In the presence of non-cognate ligands, networks with fast and accurate decision times need not be optimally selective, especially if discrimination is difficult. While optimal networks are generically out of equilibrium, the energy associated with that irreversibility is only modest, and negligible at small concentrations. Instead, our results highlight the crucial role of rate-limiting steps imposed by biophysical constraints.
format Preprint
id arxiv_https___arxiv_org_abs_2507_03720
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Fast decisions with biophysically constrained gene promoter architectures
Tohme, Tarek
Vergassola, Massimo
Mora, Thierry
Walczak, Aleksandra M.
Molecular Networks
Subcellular Processes
Cells integrate signals and make decisions about their future state in short amounts of time. A lot of theoretical effort has gone into asking how to best design gene regulatory circuits that fulfill a given function, yet little is known about the constraints that performing that function in a small amount of time imposes on circuit architectures. Using an optimization framework, we explore the properties of a class of promoter architectures that distinguish small differences in transcription factor concentrations under time constraints. We show that the full temporal trajectory of gene activity allows for faster decisions than its integrated activity represented by the total number of transcribed mRNA. The topology of promoter architectures that allow for rapidly distinguishing low transcription factor concentrations result in a low, shallow, and non cooperative response, while at high concentrations, the response is high and cooperative. In the presence of non-cognate ligands, networks with fast and accurate decision times need not be optimally selective, especially if discrimination is difficult. While optimal networks are generically out of equilibrium, the energy associated with that irreversibility is only modest, and negligible at small concentrations. Instead, our results highlight the crucial role of rate-limiting steps imposed by biophysical constraints.
title Fast decisions with biophysically constrained gene promoter architectures
topic Molecular Networks
Subcellular Processes
url https://arxiv.org/abs/2507.03720