Search bioRxiv⌕ Search

Biology subjects

Padeste, C.

Publications and source records attributed to Padeste, C..

2 recordsLinked to original sources

Phase separation of a microtubule plus-end tracking protein into a fluid fractal network

Microtubule plus-end tracking proteins (+TIPs) are involved in virtually all microtubule-based cellular processes, and it has been recently proposed that they function as liquid condensates. However, the formation process and internal organization of +TIP condensates are poorly understood. Here, we have investigated the phase separation of the CLIP-170 family member Bik1, a key +TIP implicated in budding yeast cell division. We found that Bik1 is a rod-shaped dimer whose conformation is dominated by its central coiled-coil domain. Liquid condensation is accompanied by Bik1 conformational rearrangements, leading to a 2-3-fold rise in interactions between the proteins folded and disordered domains. In contrast to classical liquids, the supramolecular structure of the Bik1 condensate is heterogeneous, with a fractal structure of protein-rich and protein-free domains. This observation provides structural evidence in support of recent models of biomolecular condensates based on percolation. More broadly, our results provide insights into the structure, dynamic rearrangement, and organization of a complex, multidomain protein in its dilute and condensed phases. Our experimental framework can be extended to other biomolecular condensates, including more intricate +TIP networks.

biochemistry↗

Fixed-target time-resolved crystallography at XFELs: the scourge of light contamination but reduced sample consumption

X-ray free electron laser (XFEL) light sources have allowed for the rapid growth of time-resolved structural experiments, which provide crucial information on the function of biological machines and their mechanisms. We set out to commission the SwissMX fixed-target sample delivery system at the SwissFEL Cristallina experimental station using the PSI developed MISP-chip for pump-probe time-resolved experiments. To characterise the system, we used the light-sensitive protein crystals of the Light-Oxygen-Voltage domain 1 (LOV1) from Chlamydomonas reinhardtii. Using different experimental settings, the adjacent-well light contamination was carefully assessed, indicating that it is crucial to control the light scattering from solid supports otherwise significant contamination can occur. However, our results show that, after the initial experiments and parameter refinement, the opaque MISP-chips are suitable for pump-probing a light-sensitive protein. This crystallographic experiment also probed the sub-millisecond structural dynamics of the LOV1 and indicated that at {Delta}t=10 s the covalent thioether bond is already established between the reactive Cys57 and FMN cofactor. This experiment validated the crystals to be suitable for in-depth follow up studies of the still poorly understood signal transduction mechanism. Importantly, the fixed-target delivery system also permitted a tenfold reduction in protein sample consumption compared to the most successful system used at XFEL, the high-viscosity extruder. This development creates the prospect of an exciting increase in XFEL project throughput for the field.

biophysics↗