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Lenninger, Z.

Publications and source records attributed to Lenninger, Z..

2 recordsLinked to original sources

Activity-Dependent Postsynaptic Mitochondrial ROS Signaling Drives Avoidance Plasticity in C. elegans

Reactive oxygen species (ROS) are signaling molecules involved in neuronal excitatory function, with mitochondrial ROS (mitoROS) playing key roles in metabolic regulation and stress responses. Studies have shown that neuronal activity upregulates mitoROS production through oxidative phosphorylation, but it remains unclear if and how acute elevations in mitoROS influence synaptic plasticity. Here, we develop an avoidance sensitization paradigm in C. elegans using optogenetic excitation and training of nociceptive ASH neurons to initiate avoidance reversals by downstream activation of the AVA command interneurons. Using this paradigm, we show that the probability of reversal to light stimulation increases 4-hours after optogenetic training, indicating behavioral sensitization. This avoidance sensitization is accompanied by an increase of surface glutamate receptor (GLR-1) levels at ASH-AVA synapses which is dependent on postsynaptic expression of GLR-1 and active transcription. Interestingly, we find that somatic and nerve ring mitochondria produce ROS after optogenetic training. We show that this mitochondrial ROS (mitoROS) peak is dependent on postsynaptic GLR-1 and MCU-1 function during optogenetic training and is necessary for avoidance sensitization. Finally, we demonstrate that postsynaptic signaling by mitoROS in AVA is sufficient to induce avoidance sensitization. Postsynaptic photoactivation of mitochondria-targeted Killer Red in AVA, calibrated to produce the mitoROS peak observed during training, induces avoidance sensitization bypassing optogenetic training and MCU-1 requirement. Our results indicate that activity-dependent mitoROS signaling can instruct synaptic strengthening and directly modulate circuit function and behavior. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/730457v2_ufig1.gif" ALT="Figure 1"> View larger version (113K): org.highwire.dtl.DTLVardef@91f9bborg.highwire.dtl.DTLVardef@1a274b1org.highwire.dtl.DTLVardef@9b394forg.highwire.dtl.DTLVardef@cf8b7d_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

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↗