Thecollective dynamics of subcellular biological processes is often difficult to assess experimentally, due to the challenges associated with spatial and temporal resolution, labelling or multiple scattering. X-ray photon correlation spectroscopy (XPCS) is in principle well suited to probe collective dynamics by quantifying dispersion relations in complex fluids in general, and biomolecular systems in particular. However, the low scattering signal and the sensitivity to radiation damage set stringent limits to many applications. Probing the dynamics of vesicles in protein-induced condensates is a case in point. Here we use lipid vesicles with a hard silica core, called colloid supported lipid bilayers (CSLBs), as labelled vesicles for enhanced X-ray contrast. We then probe structure and dynamics in solutions of vesicles and synapsin, a protein known for its property of inducing liquid-liquid phase separation, and forming condensates which recruit vesicles, organizing them into clusters in presynaptic nerve terminals. The dynamics in these systems is found to exhibit evidence for both liquid-like and network-like phases. Our results reveal distinct effective diffusion constants at varying protein concentrations. At the same time the stretched exponential decay of the correlation functions provide clear evidence for non-diffusive behaviour within the condensates.
Czajka et al. (Sun,) studied this question.
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