These findings establish antibiotic-driven phase separation as a previously unrecognized mechanism to encode cellular signaling and identify antibiotic condensates as a distinct functional unit underlying drug tolerance.
Abstract
The spatial distribution of small molecules within cells shapes their biological activity, yet these distributions are generally assumed to be governed passively by reaction-driven electrochemical gradients. Here we show that aminoglycoside antibiotics actively control their own subcellular organization by undergoing phase separation with RNAs. Combining in vitro reconstitution, bacterial assays, and molecular dynamics simulations, we discovered that aminoglycosides coacervate with RNA through multivalent electrostatic interactions, displacing and releasing RNA-bound Mg2+. This condensate-dependent Mg2+ release remodels the cytosolic labile Mg2+ pool and activates magnesium signaling. This effect dampens the magnesium-starvation regulation, sustains ribosome activity, and shifts the cellular electrochemical state, promoting bacterial fitness. Because condensation occurs only above a defined concentration threshold, it generates a non-monotonic dose-response in which higher antibiotic concentrations paradoxically enhance bacterial survival. This antibiotic condensate-dependent Mg2+ signaling confers tolerance to multiple ribosome-targeting antibiotics simultaneously even in cells lacking resistance gene, while condensate dissolution restores antibiotic efficacy. Our findings establish antibiotic-driven phase separation as a previously unrecognized mechanism to encode cellular signaling and identify antibiotic condensates as a distinct functional unit underlying drug tolerance.
It is shown that aminoglycosides are a class of small-molecule RNA condensers, and neomycin B (neoB), an FDA-approved member of the family, is taken as a representative drug through which to dissect the mechanism.
Julian von Hofe, Mechi Chen, Christine Choi et al.· bioRxiv· 0 citations
Antibiotic tolerance and persistence contribute to the emergence of antimicrobial resistance, yet strategies to reverse these phenotypes remain limited. Our previous work revealed that the naturally occurring nucleoside adenosine can reverse antibiotic tolerance in diverse bacterial strains by modulating cellular energ...
Noah T. Thompson, David A. Kitzenberg, Alexander S. Dowdell et al.· Journal of Biological Chemis...· 0 citations
Antibiotic resistance remains an urgent challenge in medicine, shaped not only by genetic mechanisms but also by adaptation of bacteria under drug exposure. Comprehending these constraints requires integrating how translational capacity, nutrient supply, and global feedback determine recovery and survival. In this work...
Brittany Howell, Matthew Scott· Journal of Theoretical Biolo...· 0 citations
Antibiotic resistance has become a major threat to global public health. It is commonly explained by target mutations, acquisition of resistance genes, drug inactivation, enhanced efflux, and reduced permeability. However, even in an unchanged genetic background, bacterial susceptibility to antibiotics can shift rapidl...
Bacterial proliferation in confined spaces occurs in biofilms, intracellular compartments, or infection sites, generating mechanical constraints. We investigated how growth-induced mechanical pressure affects bacterial physiology using a microfluidic device ensuring nutrient access. We found that proliferating Escheric...
Laure Le Blanc, Baptiste Alric, Romain Rollin et al.· Nature Communications· 0 citations
Artificial membraneless organelles (MLOs) are emerging as spatial organizers in synthetic biology, yet their applications remain largely confined to post-translational regulation. Here, we engineer synthetic condensates that act as modular hubs for targeted mRNA sequestration, enabling programmable post-transcriptional...
Jun-Tao Ke, L. Wan, Ye-Hong Cao et al.· Metabolic Engineering· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.