Molecular and cellular mechanisms of teneurin signaling in synaptic partner matching.
In developing brains, axons exhibit remarkable precision in selecting synaptic partners among many non-partner cells. Evolutionarily conserved teneurins are transmembrane proteins that instruct synaptic partner matching. However, how intracellular signaling pathways execute teneurins' functions is unclear. Here, we use in situ proximity labeling to obtain the intracellular interactome of a teneurin (Ten-m) in the Drosophila brain. Genetic interaction studies using quantitative partner matching assays in both olfactory receptor neurons (ORNs) and projection neurons (PNs) reveal a common pathway: Ten-m binds to and negatively regulates a RhoGAP, thus activating the Rac1 small GTPases to promote synaptic partner matching. Developmental analyses with single-axon resolution identify the cellular mechanism of synaptic partner matching: Ten-m signaling promotes local F-actin levels and stabilizes ORN axon branches that contact partner PN dendrites. Combining spatial proteomics and high-resolution phenotypic analyses, this study advanced our understanding of both cellular and molecular mechanisms of synaptic partner matching.
Duke Scholars
Altmetric Attention Stats
Dimensions Citation Stats
Published In
DOI
EISSN
Publication Date
Volume
Issue
Start / End Page
Location
Related Subject Headings
- rac1 GTP-Binding Protein
- rac GTP-Binding Proteins
- Tenascin
- Synapses
- Signal Transduction
- Olfactory Receptor Neurons
- Nerve Tissue Proteins
- GTPase-Activating Proteins
- Drosophila melanogaster
- Drosophila Proteins
Citation
Published In
DOI
EISSN
Publication Date
Volume
Issue
Start / End Page
Location
Related Subject Headings
- rac1 GTP-Binding Protein
- rac GTP-Binding Proteins
- Tenascin
- Synapses
- Signal Transduction
- Olfactory Receptor Neurons
- Nerve Tissue Proteins
- GTPase-Activating Proteins
- Drosophila melanogaster
- Drosophila Proteins