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Tsytsyura, Y.

Publications and source records attributed to Tsytsyura, Y..

3 recordsLinked to original sources

Optical recordings of synaptic vesicle fusion reveal diffusional dispersion

The primary unit of exocytosis, the synaptic vesicle, is replete with proteins which enable vesicle fusion. For maintaining synaptic transmission the vesicle proteins have to be rapidly cleared from the active zone. The immediate fate of the cargo post-fusion and the precise mechanism of its resorting into a readily retrievable pool (RRetP) for endocytosis remains unclear. To address this, we developed a purely presynaptic preparation, the xenapse, presynaptic boutons formed en face directly onto a glass coverslip enabling optical single vesicle recording by total internal reflection microscopy (TIRFM). Electron microscopy showed xenapses contain a few hundred synaptic vesicles (SVs), of which [~]40 SVs are primed (readily releasable pool, RRP), as revealed by single vesicle recordings using the pH-sensitive fluorescent protein pHluorin. Single fusion events synchronous with action potentials could be localized with [~]20 nm precision and rapid post-fusion diffusional dispersion of vesicular proteins observed with diffusion constants in the order of 0.1 {micro}m2/s. Unroofing of xenapses revealed numerous Clathrin-coated structures, enriched for vesicle cargo and numerically equivalent to about twice the measured RRP size. In this way SV proteins are rapidly cleared from the release site into this RRetP of pre-assembled pits to allow for rapid re-docking and re-priming at vacated release sites in synapses tuned for high-fidelity fast signaling.

neuroscience↗

Non-canonical role for ATPase HSC70 in driving Clathrin remodeling during compensatory endocytosis in synapse

Neurons use Clathrin-mediated endocytosis to retrieve synaptic vesicle (SV) proteins during compensatory endocytosis after presynaptic SV fusion. We have shown SV cargo to be re-sorted and pre-assembled outside the active zone into Clathrin-coated structures (CCS) of variable size and curvature, constituting a readily retrievable pool. During compensatory endocytosis CCS of the readily retrievable pool must be remodeled swiftly into spherical vesicles within 10 seconds at physiological temperature. How this is achieved remains elusive. Here we performed live-cell imaging on intact as well as scanning electron microscopy on unroofed hippocampal Xenapses, TIRFM-amenable presynaptic boutons formed en-face on microstructured and functionalized coverslips. While CCS can slowly remodel into spherical pits in unroofed Xenapses within tens of minutes, this process is highly accelerated in intact Xenapses, as evidenced by the rapid (< 10 seconds) exchange of EGFP-labelled Clathrin and AP2 adaptor after photo-bleaching. This fast remodeling of CCS was observed in the absence of stimulation and cannot be explained by constitutive endocytosis. Hence, this process must be driven by cytosolic factors which are lost during unroofing. Using membrane-permeant interfering peptides we identify Hsc70, the ATPase which along with Auxilin drives uncoating of endocytosed Clathrin-coated vesicles, to have an additional role in driving curvature of invaginating CCS.

neuroscience↗

Slow scission of single synaptic vesicles by Dynamin at physiological temperature

Compensatory endocytosis is crucial for the presynapse to maintain a functional pool of fusion-competent vesicles. Slow Clathrin-mediated endocytosis has been widely regarded as the primary mechanism of retrieval but this has been challenged by competing Clathrin-independent endocytic models, most notably sub-second ultra-fast endocytosis, reported to be predominant at physiological temperature. Here, we sought to resolve the salience of the respective endocytic modes by using a purely presynaptic preparation, the Xenapse, amenable to total internal reflection fluorescence microscopy (TIRFM). While the role of Clathrin is in dispute, Dynamin is widely acknowledged to figure as the scission protein at the invaginated vesicle neck. Hence, we labelled the endogenous Dynamin I with EGFP by CRISPR-Cas9 techniques and visualized single synaptic Dynamin-mediated scission events at very high temporal resolution. This revealed only a single slow mode of Dynamin-dependent retrieval with a half time of [~] 9 seconds at physiological temperature. Cross-correlational analysis with fluorescently labelled Clathrin confirmed these Dynamin events to be Clathrin-dependent. We thereby affirm Clathrin-mediated endocytosis as the primary mode of compensatory retrieval.

neuroscience↗