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Priest, J. M.

Publications and source records attributed to Priest, J. M..

3 recordsLinked to original sources

Structural insights into wiring specificity in the neuromuscular system through the Beat-Side complex

Nervous system assembly is guided by the actions of cell surface receptors. In Drosophila, members of the Beaten Path (Beat) and Sidestep (Side) protein families have been described as axon guidance receptor-cue pairs, in addition to roles in specifying synaptic connectivity in the optic lobe. To understand the molecular basis and specificity of Beat-Side interactions, we report here the first Beat-Side structure, Beat-Vc bound to Side-VI. The structure showed a binding topology similar to other neuronal immunoglobulin superfamily receptors, especially Nectins, SynCAMs, Dprs and DIPs, despite lack of established evolutionary relationships. Using a structure-based rational approach, we engineered and validated point mutations to break the binding between Beats and Sides. Using these mutant variants, we demonstrated in developing Drosophila larvae that the interaction between Beat-Ia and Side is required for establishing proper connectivity of motor neurons with muscles.

neuroscience↗

Repulsive interactions instruct synaptic partner matching in an olfactory circuit

Neurons exhibit extraordinary precision in selecting synaptic partners. Although cell-surface proteins (CSPs) mediating attractive interactions between developing axons and dendrites have been shown to instruct synaptic partner matching1,2, the degree to which repulsive interactions play a role is less clear. Here, using a genetic screen guided by single-cell transcriptomes3,4, we identified three CSP pairs--Toll2-Ptp10D, Fili-Kek1, and Hbs/Sns- Kirre--in mediating repulsive interactions between non-partner olfactory receptor neuron (ORN) axons and projection neuron (PN) dendrites in the developing Drosophila olfactory circuit. Each CSP pair exhibits inverse expression patterns in the select ORN-PN partners. Loss of each CSP in ORNs led to similar synaptic partner matching deficits as the loss of its partner CSP in PNs, and mistargeting phenotypes caused by overexpressing one CSP could be suppressed by loss of its partner CSP. All CSP pairs are also differentially expressed in other brain regions. Together, our data reveal that multiple repulsive CSP pairs work together to ensure precise synaptic partner matching during development by preventing neurons from forming connections with non-cognate partners.

neuroscience↗

Structural insights into the formation of repulsive Netrin guidance complexes

Netrins can dictate attractive and repulsive responses during axon growth and cell migration, where presence of the receptor UNC-5 on target cells results in Netrin-mediated repulsion. Molecular details of Netrin-UNC-5 interactions and how they signal remain elusive. Here, we show that nematode UNC-5 is a heparin-binding protein, and the UNC-5-heparin affinity can be modulated using directed evolution or via rational design using our novel structure of UNC-5 with a heparin fragment. Furthermore, UNC-5 and nematode UNC-6/Netrin form a large, stable and rigid oligomeric complex in the presence of heparin, which can incorporate the attractive UNC-40/DCC receptor, demonstrating binary and ternary ectodomain complexes at preparative scale. C. elegans with a heparin-binding deficient UNC-5 fail to establish proper gonad morphology due to abrogated distal tip cell migration, which relies on repulsive UNC-5 signaling in response to UNC-6. Our findings establish Netrin responses to be mediated through glycosaminoglycan-regulated large macromolecular complexes.

biochemistry↗