HEIndividual fellowship2023–2024

BiophInLLPSInt · Biophysical investigation of the liquid-liquid phase separation solvent interface.

Horizon Europe — Marie Skłodowska-Curie Actions

Duration
2023-01-01 → 2024-12-31
EU contribution
€195,915
Participants
3
Scheme
HORIZON-TMA-MSCA-PF-EF

Lines connect the coordinator with its partners.

Results in brief

Biophysical investigation of the liquid-liquid phase separation solvent interface.

Liquid-liquid phase separation (LLPS) is a biophysical phenomenon through which biomolecules condense and accumulate locally. This effect has been linked to a high increase of activity for enzymatic systems in vitro. To form LLPS, biomolecules interact through a mix of specific and/or non-specific interactions, often transient in nature and involving multivalency. In vitro models of biological LLPS often rely on molecular crowders to induce condensation. Akin to many other phase-separating biological systems, several elements of the DNA double-strand break repair pathway of non-homologous end-joining (NHEJ) have been shown in our lab to undergo phase separation in vitro in presence of crowding agents. The NHEJ process involves the sequential collective action of numerous proteins to successively tether the severed DNA ends, form synapsis, and ligate the DNA. Of interest to our project are the scaffolding protein homodimers XRCC4 and XLF, and the DNA ligase IV. These proteins consist of both folded and very dynamic intrinsically disordered domains, and are involved in in-cis and in-trans interactions. These three proteins are together already sufficient to form condensates in vitro and in presence of crowding agents – which strongly increases ligation activity in presence of blunt-end linear DNA. However, there is a conundrum: although these three components can condense at low concentrations, slightly below one micromolar, they are present in sub-LLPS concentrations in vivo. How do they get recruited to the NHEJ complex during DNA-repair? How do components issued from the dilute phase enter condensates? What happens at the surface of the condensates? We aimed to use the molecular insider’s view provided by NMR and especially Relaxation and high-resolution relaxometry (HRR) to study the behaviour of an NHEJ component interacting with condensates at atomic resolution.

Data: CORDIS, © European Union

Project objective

Liquid-liquid phase separation (LLPS) is central to compartmentalisation of biochemical processes and allows co-localisation of a whole biological machine and its substrates at high local concentrations. This often dynamic and reversible assembly is formed by multivalent interactions between several biomolecules, and some instances involve low complexity sequences that have been linked to amyloid fibre formation. While the biophysical understanding of this phenomenon has recently been of high interest in the scientific community, the interactions of LLPS-forming proteins from the dilute phase with the interface to the condensed phase remain elusive. In this project we aim to dissect these transient interactions using state-of-the-art biophysical techniques. More specifically, we will use nuclear magnetic resonance (NMR), high-resolution-relaxometry (HRR) and an array of single-molecule fluorescence techniques to dissect up to atomic resolution and at multiple time-scales the transient interactions of the dilute phase proteins with the interface of the condensed state. We shall rely on the non-homologous end joining (NHEJ) system, that our laboratory has recently shown to exhibit LLPS in a broad range of conditions. Atomic-level dynamic information on the mechanisms for NHEJ phase separation and assembly could prove crucial both in the fundamental understanding of LLPS formation and growth, and in rational drug design aimed at preventing double-strand break repair by NHEJ in the frame of cancer treatment.

Original text from CORDIS.

Participants

  • ECOLE NORMALE SUPERIEURE · ParisCoordinatorFrance
  • NEW YORK UNIVERSITY · NEW YORKUnited States
  • UNIVERSITE D'AIX MARSEILLE · MarseilleFrance

Links

Data: CORDIS, © European Union