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TOPICAL COLLECTIONS

Biophysical Methods for Characterizing Protein-RNA Condensates
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Frédéric Allain

Frédéric Allain

ETH Zürich

Frédéric Allain is a full professor at ETH Zürich, where he has led research in biomolecular NMR since 2001. He earned his PhD from the University of Cambridge in 1997, followed by postdoctoral research at UCLA under Prof. Juli Feigon and Prof. Doug Black. His work focuses on the structural analysis of protein-RNA complexes in solution to understand key mechanisms of post-transcriptional gene regulation, including alternative splicing, RNA editing, and translation regulation. These studies have significant implications for uncovering the molecular basis of genetic diseases such as spinal muscular atrophy and amyotrophic lateral sclerosis.In recent years, his lab has also explored the role of liquid-liquid phase separation in RNA-protein interactions. Elected to the European Molecular Biology Organization (EMBO) in 2009, Prof. Allain has also served as co-director of the Swiss National Science Foundation’s NCCR on RNA and Disease since 2014. His research integrates structural biology with molecular genetics to address fundamental biomedical questions.

Collection Overview

Cells use various strategies to organize biochemical processes in both space and time. In addition to membrane-bound organelles, proteins and nucleic acids can undergo liquid-liquid phase separation (LLPS) to form dynamic, membraneless compartments known as biomolecular condensates. These micron-sized, liquid-like structures are particularly enriched in RNA-binding proteins that contain RNA-binding domains (RBDs) and intrinsically disordered regions (IDRs) that are prone to LLPS. Such condensates play crucial roles in RNA metabolism. They are also linked to neurodegenerative diseases like amyotrophic lateral sclerosis (ALS) and frontotemporal dementia, where stress conditions may lead to their abnormal maturation into solid aggregates.


Despite the increasing interest in this area, much remains unknown about the fundamental biophysical properties of multi-component protein-RNA condensates, especially in complex biological environments. The challenge is further complicated by the limitations of any single technique to fully capture the behavior and dynamics of these systems. Therefore, an integrative approach combining various methods and theoretical frameworks is essential for comprehensively characterizing these condensates.


This Methods Collection aims to present a diverse range of biophysical and imaging techniques for probing multi-component biomolecular condensates, both in vitro and in vivo. These standardized protocols are designed to serve as practical tools for investigating the formation, composition, material properties, and dynamics of these condensates, providing cross-disciplinary insights into the role of LLPS in health and disease.

Articles

Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device
11:08

Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device

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2025

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Abstracts

Micropipette Aspiration and Whole-Cell Patch Clamp (MAPAC) for Quantifying the Material Properties of Biomolecular Condensates in Live Cells

Zheng Shi*1,

Yuzhou Xia1

1Rutgers University-New Brunswick

Microinjection-based single-molecule fluorescence spectroscopy: probing protein conformations and dynamics in live cells

Benjamin Schuler*1,

Yuhan Wang1

1University of Zurich