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.
Yuefeng Ma, Wen Yu, E. Moon et al.· bioRxiv· 0 citations
Biomolecular condensates, which regulate diverse cellular processes, exhibit distinct electric potential profiles. This potential gradient between the dilute and the dense phases serves as the underlying driving force mediating the unique microenvironment and electrochemical activity of condensates. However, the molecular principles encoding the electric potential profiles of condensates remain unclear. In this study, we show that molecular asymmetry is a unifying origin of electric polarization in condensates. Asymmetric protein–cation and protein–anion affinities alone generate an interfacial electric double layer and a finite potential even in condensates formed by charge-free proteins. The sign of potential gradient follows the direction of the affinity bias, and the magnitude collapses onto a single linear function of dense-phase protein volume fraction across changes in chain length, interaction strength and salt concentration. Further, chain termini preferentially occupy the condensate interface, so charges positioned asymmetrically with respect to the termini create spatial charge separation even in neutral polyampholytes. These interaction-encoded and sequence architecture-encoded asymmetries can reinforce, screen or reverse one another, allowing the magnitude and polarity of the interphase potential to be tuned through sequence design or solvent environments.
Fangke Chen, Runchen Xia, Yifan Dai et al.· bioRxiv· 0 citations
This chapter describes synthetic gene circuit-based methods for applying synthetic condensates in E. coli to regulate transcription and translation and demonstrates how engineering synthetic condensates offers a new layer of cellular control for synthetic biology.