Glutamate is the major excitatory neurotransmitter in our brain that is used by more than 70% of the synapses. We found that the vesicular transporters for glutamate (VGluTs, three isoforms) exhibit surprisingly complex features including shifting between different transport modes during vesicle filling and switching between ion preferences. Also, during filling the size of the synaptic vesicles increase substantially and increases the ability of the vesicle to undergo exocytosis. This unusual elasticity depends on synaptophysin, an abundant vesicle protein with hitherto unknown function. Moreover, we established that all three VGLUT isoforms also operate as sodium-dependent transporters for inorganic phosphate that are influencing phosphate homeostasis in neurons (Preobraschenski et al., 2018, Cheret et al., 2021, and Preobraschenski et al., submitted).
While some synapses can store and release several different transmitters, it is debated whether this is also true for individual synaptic vesicles. We found that only few percent of all synaptic vesicles contain multiple vesicular transporters, with no obvious preference for any specific combination. The sole exception is a transporter for zinc ions (ZnT3) that resides only on glutamatergic vesicles. ZnT3 not only transports Zn2+-ions but enhances glutamate transport, thus regulating vesicle filling. Structural studies show that ZnT3 operates as a dimer and structurally resembles other related transporters (Upmanyu et al., 2022, and manuscript in preparation).
We also studied the function of several other vesicular transporters using reconstitution of purified proteins in artificial vesicles. Using newly established assays we characterized vesicular acetylcholine and monoamine transporters, showing that no other components are needed. In contrast, we were unable to confirm that the putative vesicular nucleotide transporter does indeed actively transport ATP.
The energy for loading synaptic vesicles with neurotransmitters is derived from an ion pump that transports protons across the vesicle membrane, leading to the generation of an electrochemical proton potential. This pump is responsible for a large share of the energy consumption of our brain. We found that the pump can be reversibly switched on and off multiple times without loss of activity. In collaboration with the group of D. Stamou (Copenhagen) it was also observed that the pump cycles between rather long-lasting on and off states, which may provide another regulatory mechanism for transmitter loading (Kosmidis et al., 2022)
Several new methods were developed for studying ion gradients and transport activities of synaptic vesicles. These include new procedures for loading vesicles with fluorescent reporter dyes, either in living neurons or in artificial vesicles in the test tube, and a microfluidics system in which immobilized vesicles can be exposed to rapidly switching different solutions, allowing for high-resolution kinetic measurements.
Parts of the results of this project have been published in scientific journals, are submitted for publication, or are being prepared for publication in the near future