Simple biological controllers drive the evolution of soft modes

C Christopher Joel Russo (Division of Physical Sciences, Program in Biophysical Sciences) K Kabir Husain (Division of Physical Sciences, James Franck Institute) R Rama Ranganathan (Evozyne, Inc.) D David Pincus (Division of Physical Sciences, Center for Physics of Evolving Systems) A Arvind Murugan (Department of Physics)

Abstract

Biological systems, with many interacting components, face high-dimensional environmental fluctuations, ranging from diverse nutrient deprivations to toxins, drugs, and physical stresses. Yet, many biological control mechanisms are “simple,” i.e., restoring homeostasis through low-dimensional representations of the system’s high-dimensional state. How do low-dimensional controllers maintain homeostasis in high-dimensional systems? We develop an analytically tractable model of integral feedback for complex systems in fluctuating environments. We find that selection for homeostasis leads to the emergence of a soft mode that provides the dimensionality reduction required for the functioning of simple controllers. Our theory predicts that simple controllers that buffer environmental perturbations (e.g., stress response pathways) will also buffer mutational perturbation, an equivalence we test using experimental data across 5,000 strains in the yeast knockout collection. We also predict, counterintuitively, that knocking out a simple controller will decrease the dimensionality of the response to environmental change; we outline transcriptomics tests to validate this. Our work suggests an evolutionary origin of soft modes, with implications ranging from cryptic genetic variation to global epistasis.

Article Details

Volume / Issue Vol. 123, Issue 17
Published April 28, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (5)

C

Christopher Joel Russo

Division of Physical Sciences, Program in Biophysical Sciences

K

Kabir Husain

Division of Physical Sciences, James Franck Institute

R

Rama Ranganathan

Evozyne, Inc.

D

David Pincus

Division of Physical Sciences, Center for Physics of Evolving Systems

A

Arvind Murugan

Department of Physics