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Ijavi, M.

Publications and source records attributed to Ijavi, M..

2 recordsLinked to original sources

A solid beta-sheet structure is formed at the surface of FUS liquid droplets during aging

Insights into liquid droplet formation via liquid-liquid phase separation and the subsequent liquid-to-solid phase transition are important for understanding cell dynamics, as well as a number of neurodegenerative disorders. We report here, using the example of the FUsed in Sarcoma (FUS) protein, an investigation of the liquid droplet maturation process combining solution- and solid-state NMR spectroscopy, Raman spectroscopy, and light and electron microscopies. Our study reveals that the surface of the droplets plays a critical role in this process. Indeed, when comparing a biphasic sample, in which liquid droplets are stabilized in an agarose matrix, with a pure monophasic condensed phase sample, we find that the liquid-droplet maturation kinetics is faster in the biphasic FUS sample, owing to the larger surface-to-volume ratio. In addition, using Raman spectroscopy, we observe structural differences upon liquid-droplet maturation between the inside and the surface of liquid droplets, which is of {beta}-sheet content as revealed by solid-state NMR. This is detected very early on and increases over time. In agreement with these observations, a solid crust-like shell is visually seen by microaspiration experiments. After several months, electron microscopy reveals that the matured FUS droplets have converted into solid linear fibrils distinct from the fibril core of seeded fibrils reported previously, as arginine side-chains from the arginine-and-glycine-rich domain (RGG) motif are partially rigidified, highlighting the participation of this motif in the liquid-to-solid transition. In presence of RNA, this aging process is not taking place.

biochemistry↗

High interaction valency ensures cohesion and persistence of a microtubule +TIP body at the plus-end of a single specialized microtubule in yeast

Microtubule plus-end tracking proteins (+TIPs) control microtubule specialization and are as such essential notably during eukaryotic cell division. Here, we investigated interactions and functions of the budding yeast Kar9 network consisting of the core +TIPs components Kar9 (functional homologue of APC, MACF, and SLAIN), Bim1 (orthologue of EB1), and Bik1 (orthologue of CLIP-170). Our data indicate that a redundant, multivalent web of interactions links the three +TIPs together to form a "Kar9 body" at the tip of a single cytoplasmic microtubule. They further suggest that this body is a liquid-like condensate, allowing it to persist on both growing and shrinking microtubule tips, and functions as a mechanical coupling device between microtubules and actin cables during mitosis. Our study underlines the power of dissecting the web of low-affinity interactions driving liquid-liquid phase separation of proteins in order to demonstrate the importance and establish the functional roles of condensation processes in vivo.

cell biology↗