collaborators

15 papers

physics.bio-ph2026

Oscillating concentrations suppress condensate coarsening

Mathias S. Heltberg, Lukas H. Kristensen, Mogens H. Jensen +1

Living cells utilize condensates to spatially concentrate molecules in response to dynamic signals. For instance, nuclear condensates respond to oscillations in transcription facto…

cond-mat.soft2026

Advection selects pattern in multistable emulsions of active droplets

Stefan Köstler, Yicheng Qiang, Guido Kusters +1

Controlling the size of droplets, for example in biological cells, is challenging because large droplets typically outcompete smaller droplets due to surface tension. This coarseni…

physics.bio-ph2026

Intermediate physical interactions induce spatiotemporal dynamics in Turing patterns

Cathelijne ter Burg, David Zwicker

Turing patterns are a central paradigm for describing spatial patterns in nature. The corresponding theory of reaction-diffusion dynamics combines ideal diffusion with nonlinear re…

physics.bio-ph2026

Roadmap for Condensates in Cell Biology

Dilimulati Aierken, Sebastian Aland, Stefano Bo +38

Biomolecular condensates govern essential cellular processes yet elude description by traditional equilibrium models. This roadmap, distilled from structured discussions at a works…

cond-mat.soft2025

Molecular simulations of phase separation in elastic polymer networks

Takahiro Yokoyama, Yicheng Qiang, David Zwicker +1

Phase separation within polymer networks plays a central role in shaping the structure and mechanics of both synthetic materials and living cells, including the formation of biomol…

physics.bio-ph2025

Physical interactions enable energy-efficient Turing patterns

Cathelijne ter Burg, David Zwicker

Patterns are ubiquitous in nature, but how they form is often unclear. Turing developed a seminal theory to explain patterns based on reactions that counteract the equalizing tende…