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Gungordu, L.

Publications and source records attributed to Gungordu, L..

2 recordsLinked to original sources

Rebalancing the motor circuit restores movement in a Caenorhabditis elegans model for TDP-43-toxicity

Amyotrophic lateral sclerosis (ALS) and frontotemporal dementia are caused by the abnormal accumulation of TAR DNA-binding protein 43 (TDP-43) in the cytoplasm of neurons. How TDP-43 accumulation leads to disease symptoms is not well-characterized. Here, we use a C. elegans model for TDP-43-induced toxicity to identify the biological mechanisms that lead to disease-related phenotypes. By applying deep behavioral phenotyping, we established a phenotypic fingerprint of TDP-43 worms. This fingerprint was compared to that of 294 C. elegans mutants, in which genes were mutated that are important for nervous system and muscle functioning. By using a computational clustering approach, we found that the release of acetylcholine and GABA was the primary defect in TDP-43 worms. We then functionally dissected the neuromuscular circuit to show that GABA transmission was more severely diminished compared to acetylcholine. Whereas the loss of GABA transmission was caused by a profound loss of GABA synapses, acetylcholine neurons appeared to be functionally silenced. Enhancing functional output of repressed acetylcholine neurons at the level of G-protein coupled receptors or through optogenetic stimulation restored neurotransmission, but inefficiently rescued locomotion. Surprisingly, rebalancing the excitatory and inhibitory input by simultaneous stimulation of GABA and acetylcholine input into muscles not only synergized the effects of boosting individual neurotransmitter systems, but instantaneously improved movement. Our results suggest that interventions accounting for the altered connectome may be more efficient in restoring motor function than those solely focusing on diseased neuron populations.

cell biology↗

Assessment of endocytic traffic and Ocrl function in the developing zebrafish neuroepithelium

Endocytosis is a vital process, required during development and for maintenance of tissue homeostasis, that allows cells to internalize a wide range of molecules from their environment as well maintain their plasma membrane composition. The ability to visualise endocytosis in vivo requires suitable assays to monitor the process. Here, we describe imaging-based assays to visualize endocytosis in the neuroepithelium of living zebrafish embryos. These assays rely on injection of fluorescent tracers into the brain ventricles followed by live imaging and can be used to study fluid-phase or receptor-mediated endocytosis, for which we use receptor-associated protein (RAP) as a ligand for LDL receptor-related protein (LRP) receptors expressed at the neuroepithelium. Using dual colour imaging combined with transient or stable expression of endocytic markers, it is possible to track the progression of endocytosed tracers and to monitor trafficking dynamics. Using these assays, we reveal a role for the Lowe syndrome protein Ocrl in endocytic trafficking within the neuroepithelium. We also find that the RAP binding receptor Lrp2 appears to only partially contribute to neuroepithelial RAP endocytosis. Altogether, our results provide a basis to track endocytosis within the neuroepithelium in vivo, and support a role for Ocrl in this process. Summary statementWe describe live imaging assays to analyse endocytosis in the zebrafish neuroepithelium and show involvement of the inositol phosphatase OCRL in this process

cell biology↗