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Biology subjects

Naghilou, A.

Publications and source records attributed to Naghilou, A..

2 recordsLinked to original sources

Synthesis and Characterization of Phase-Separated Extracellular Condensates in Interactions with Cells

Biomolecular condensates formed through liquid-liquid phase separation play key roles in intracellular organization and signaling, yet their function in extracellular environments remains largely unexplored. Here, we establish a model using heparan sulfate, a key component of the extracellular matrix, to study extracellular condensate-cell interactions. We demonstrate that heparan sulfate can form condensates with a positively charged counterpart in serum-containing solutions, mimicking the complexity of extracellular fluid, and supporting cell viability. We observe that these condensates adhere to cell membranes and remain stable, enabling a versatile platform for examining extracellular condensate dynamics and quantifying their rheological properties as well as their adhesion forces with cellular surfaces. Our findings and methodology open new avenues for understanding the organizational roles of condensates beyond cellular boundaries.

biophysics↗

Scanning probe microscopy elucidates gelation and rejuvenation of biomolecular condensates

Comprehensive understanding of dynamics and disease-associated solidification of biomolecular condensates is closely tied to analysis of their mechanical characteristics. Despite recent technical advances in rheological studies of condensates, these still vastly rely on methods restricted to small forces, rendering measurements of droplets with higher elasticities and after transition to solid challenging. Here, we develop assays for in-depth mechanical characterization of biomolecular condensates by scanning probe microscopy. We demonstrate this technique by measuring the rheological behavior of heterotypic poly-L-lysine heparin condensates, showcasing their multi-route liquid to gel transition, as well as their rejuvenation by chemical alterations to the medium. Due to the wide-spread application of scanning probe microscopy in biological fields, its capability for rapid, high throughput, high force range studies, and integration with nanoscale morphological measurements, our probe-based method is a significant breakthrough in investigating condensate behavior, leading to accelerated development of therapies.

biophysics↗