Search bioRxiv⌕ Search

Biology subjects

Beke-Somfai, T.

Publications and source records attributed to Beke-Somfai, T..

2 recordsLinked to original sources

Phase transition drives bacterial single-stranded DNA binding (SSB) protein mobilization during stress response and metabolic adaptation

Single-stranded DNA-binding proteins (SSBs) are ubiquitous factors of genome metabolism, recently recognized for their ability to undergo liquid-liquid phase separation (LLPS). While Escherichia coli SSB (EcSSB) has emerged as a model for bacterial LLPS in vitro, its phase behavior and functional dynamics in vivo have remained largely unexplored. Here, we define the subcellular organization of EcSSB under diverse physiological and stress conditions using super-resolution microscopy coupled with newly developed image analysis tools. We show that EcSSB forms dynamic intracellular assemblies during exponential growth, which partially dissolve in response to DNA damage, oxidative stress, antibiotic exposure, and metabolic adaptation. In contrast, these dynamic reorganizations are attenuated in stationary phase cells. Moreover, we show that EcSSB foci exhibit limited overlap with nucleoid regions under stress-free conditions, whereas stress induction is accompanied by increased DNA association. These in vivo observations are consistent with stress- and growth-phase dependent modulation of EcSSB organization and together with biophysical characterization of EcSSB condensation in vitro suggest a role for LLPS-based dynamic storage and mobilization in response to physiological demands. Our work provides a quantitative framework for analyzing the cellular organization of bacterial proteins and the spatial regulation of genome maintenance factors in changing environments. This knowledge may also support future strategies targeting SSB organization pathways for antimicrobial development.

biochemistry↗

Residual flexibility in the topologically constrained multivalent complex between the GKAP scaffold and LC8 hub proteins

Guanylate kinase-associated protein (GKAP) is a large postsynaptic scaffold protein bearing two closely spaced noncanonical binding sites for the bivalent dynein light chain LC8 hub protein. This might allow the formation of heterogeneous complexes with different sizes and topologies. Here, we show that a well-defined hexameric complex is formed, composed of 2 GKAP molecules and 2 LC8 dimers. Using NMR spectroscopy, we demonstrate that the LC8-binding segment of GKAP is intrinsically disordered and the flexibility of the linker region is largely retained even in the complex form. Molecular dynamics calculations suggest that besides the tightly bound residues, the hexamer also exhibits several dynamically interchanging interactions. The flanking regions of the two binding sites on GKAP exhibit different interaction patterns, hinting at additional contacts that might explain the fixed stoichiometry of the assembly. Our results demonstrate that constrained stoichiometry can coexist with substantial flexibility in a multivalent system.

molecular biology↗