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Allostery through DNA drives phenotype switching

Biology

Allostery through DNA drives phenotype switching

G. Rosenblum, N. Elad, et al.

Discover how DNA communicates allosteric signals across long distances, enhancing transcription factor binding cooperativity and influencing phenotype switching in Bacillus subtilis. This innovative research by Gabriel Rosenblum, Nadav Elad, Haim Rozenberg, Felix Wiggers, Jakub Jungwirth, and Hagen Hofmann reveals the fascinating interplay between mechanical forces and genetic circuit dynamics.... show more
Abstract
Allostery is a pervasive principle to regulate protein function. Growing evidence suggests that also DNA is capable of transmitting allosteric signals. Yet, whether and how DNA-mediated allostery plays a regulatory role in gene expression remained unclear. Here, we show that DNA indeed transmits allosteric signals over long distances to boost the binding cooperativity of transcription factors. Phenotype switching in Bacillus subtilis requires an all-or-none promoter binding of multiple ComK proteins. We use single-molecule FRET to demonstrate that ComK-binding at one promoter site increases affinity at a distant site. Cryo-EM structures of the complex between ComK and its promoter demonstrate that this coupling is due to mechanical forces that alter DNA curvature. Modifications of the spacer between sites tune cooperativity and show how to control allostery, which allows a fine-tuning of the dynamic properties of genetic circuits.
Publisher
Nature Communications
Published On
May 20, 2021
Authors
Gabriel Rosenblum, Nadav Elad, Haim Rozenberg, Felix Wiggers, Jakub Jungwirth, Hagen Hofmann
Tags
Allostery
DNA
Transcription factors
Bacillus subtilis
Single-molecule FRET
Genetic circuits
Phenotype switching
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