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Lavagna, E.

Publications and source records attributed to Lavagna, E..

3 recordsLinked to original sources

Uncovering the thermodynamic principles of enzymaticregulation in biomolecular condensates with reactivesimulations

Biomolecular condensates are dynamic cellular assemblies stabilized by weak intermolecular interactions. Cells regulate condensate formation, composition, and function through energy-consuming processes such as post-translational modifications (PTMs), which modify the physicochemical properties of condensate components, thereby dynamically reshaping these interactions. Here, we investigate how enzymatic reactions regulate phase-separated systems using a thermodynamically consistent particle-based model, which allows sampling of out-of-equilibrium steady states. We find that reaction kinetics are intrinsically coupled to the local molecular environment, leading to the formulation of two general principles. First, reactions that weaken favorable interactions are thermodynamically suppressed within condensates. As a consequence, regulation of condensate solubility is most efficient when PTMs tune interactions to values close to the solubility threshold. In contrast, reaction rates are generally enhanced at condensate interfaces, where the thermodynamic inhibition is relieved, but reactant availability remains high. Higher-resolution simulations of FUS and DDX4 proteins indicate that this interfacial contribution remains substantial even for micron-sized condensates, positioning interfaces as key determinants of biochemical activity in phase-separated systems alongside the properties of the condensate bulk. Together, these findings identify general, thermodynamic principles that govern the regulation of biomolecular condensates and link enzymatic activity with phase separation. Moreover, they provide a thermodynamically consistent molecular framework that can be applied to a broad range of regulatory processes in active phase-separated systems.

biophysics↗

Selective ion binding and uptake shape the microenvironment of biomolecular condensates

Biomolecular condensates modulate various ion-dependent cellular processes and can regulate subcellular ion distributions by selective uptake of ions. However, the molecular grammar governing condensate-ion interactions is poorly understood. Here, we use NMR spectroscopy of ions and model condensate components to quantify and spatially resolve selective ion binding to condensates and show that these interactions follow the law of matching water affinities, resulting in strong binding between proteins and chaotropic anions, and between nucleic acids and kosmotropic cations. Ion uptake into condensates directly follows binding affinities, resulting in selective uptake of strong-binding ions, but exclusion of weak-binding ions. Ion binding further shapes the condensate microenvironment by altering the composition, viscosity and interface potential. Such changes can have profound effects on biochemical processes taking place inside condensates, as we show for RNA duplex formation. Our findings provide a new perspective on the role of condensate-ion interactions in cellular bio- and electrochemistry and may aid design of condensate-targeting therapeutics.

biophysics↗

Ions and lipids drive aggregation of surface-functionalized gold nanoparticles on lipid membranes

The control of the aggregation of biomedical nanoparticles (NP) in physiological conditions is crucial as clustering may change completely the way they interact with the biological environment. Here we show that Au nanoparticles, functionalized by an anionic, amphiphilic shell, spontaneously aggregate in fluid zwitterionic lipid bilayers. We use Molecular Dynamics and enhanced sampling techniques to disentangle the short-range and long-range driving forces of aggregation. At short inter-particle distances, ion-mediated, charge-charge interactions (ion bridging) stabilize the formation of large NP aggregates, as confirmed by cryo-electron microscopy. Lipid depletion and membrane curvature are the main membrane deformations driving long-range NP-NP attraction. Ion bridging, lipid depletion, and membrane curvature stem from the configurational flexibility of the nanoparticle shell. Our simulations show, more in general, that the aggregation of same-charge membrane inclusions can be expected as a result of intrinsically nanoscale effects taking place at the NP-NP and NP-bilayer soft interfaces.

biophysics↗