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Hoerndli, F. L.

Publications and source records attributed to Hoerndli, F. L..

2 recordsLinked to original sources

A Dual Role for LAR-RPTP in Regulating Long-distance Transport and Synaptic Retention of AMPARs, Essential for Long Term Associative Memory

The AMPA subtype of ionotropic glutamate receptors (AMPARs) plays an essential role in excitatory synaptic transmission, learning, and memory. The majority of AMPARs are made in the cell body and are transported by molecular motors to synapses. Maintaining the proper number of synaptic receptors requires coordinated regulation of receptor production, export from the soma and delivery at synapses. This major logistical process is essential for circuit function and behavior. Although recent studies have shown that long-distance synaptic transport is regulated by neuronal activity, little is known about the mechanisms that coordinate somatic export or synaptic delivery and removal. Here we show that loss of the PTP-3A isoform of the receptor tyrosine phosphatase PTP-3 (the C. elegans homologue of vertebrate LAR-RPTP) leads to a [~]60% decrease in AMPAR transport; this affects synaptic delivery of AMPARs and synaptic functions necessary for long-term associative olfactory memory in C. elegans. Interestingly, while complete loss of PTP-3A leads to defects in transport and local synaptic trafficking of AMPARs, loss of only PTP-3 phosphatase function affects local synaptic recycling and retention of AMPARs. Finally, we show that the N-terminus of PTP-3A regulates transport, whereas the C-terminal regulates synaptic retention of AMPARs. Altogether, our results suggest a model in which the two domains of PTP-3/LAR-RPTPs have specific, complementary roles in coordinating somatic export and local retention of AMPARs essential for long-term associative memory.

neuroscience↗

Surface Acoustic Wave Integrated Microfluidics for Repetitive and Reversible Temporary Immobilization of C. elegans

Caenorhabditis elegans is an important genetic model for neuroscience studies due to its unique combination of genetics, transparency, complete synaptic connectome, and well-characterized behaviors. These factors, in turn, enable analyses of how genes control connectivity, neuronal function, and behavior. To date, however, most studies of neuronal function in C. elegans are incapable of performing microscopy imaging with subcellular resolution and behavior analysis in the same set of animals. This constraint stems from the immobilization requirement for high-resolution imaging that is incompatible with behavioral analysis. In particular, conventional immobilization methods often lead to either irreversible, partial, or slowly reversible immobilization of animals preventing a multiplexed approach. Here, we present a novel microfluidic device that uses surface acoustic waves (SAW) as a non-contact method to temporarily immobilize worms for a short period (40 seconds). This device allows non-invasive analysis of swimming behavior and high-resolution synaptic imaging in the same animal. In addition, because of the low impact of this SAW approach, the device enables fast, repeated imaging of single neurons and behavior in the same animals for three to four days. We anticipate that this device will enable longitudinal analysis of animal motility and subcellular morphological changes during development and ageing in C. elegans.

neuroscience↗