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Gomez-Bravo, C.

Publications and source records attributed to Gomez-Bravo, C..

2 recordsLinked to original sources

Point contact-restricted cAMP signaling controls ephrin-A5-induced axon repulsion

Signal transduction downstream of axon guidance molecules is essential to steer developing axons. Second messengers including cAMP are key molecules shared by a multitude of signaling pathways and are required for a wide range of cellular processes including axon pathfinding. Yet, how these signaling molecules achieve specificity for each of their downstream pathways remains elusive. Subcellular compartmentation emerged as a flexible strategy to reach such a specificity. Here, we show that point contact-restricted cAMP signals control ephrin-A5-evoked axon repulsion in vitro by modulating Focal Adhesion Kinase phosphorylation and the assembly and disassembly rate of point contacts. Consistently, preventing point contact-specific cAMP signals, in developing retinal ganglion cells in vivo alters the refinement of their terminal axonal arbor in the brain. Altogether, our study identifies point contacts as a compartment containing a local cAMP signal required for ephrin-A5-dependent axon guidance and highlights the crucial role of such subcellularly restricted second messenger signals in the wiring of neuronal circuits.

developmental biology↗

Subcellular second messenger networks drive distinct repellent-induced axon behaviors

AO_SCPLOWBSTRACTC_SCPLOWSecond messengers, including cAMP, cGMP and Ca2+ are often placed in an integrating position to combine the extracellular cues that orient growing axons in the developing brain. This view suggests that axon repellents share the same set of cellular messenger signals and that axon attractants evoke opposite cAMP, cGMP and Ca2+ changes. Investigating the confinement of these second messengers in cellular nanodomains, we instead demonstrate that two repellent cues, ephrin-A5 and Slit1, induce spatially segregated signals. These guidance molecules activate subcellular-specific second messenger crosstalks, each signaling network controlling distinct axonal morphology changes in vitro and pathfinding decisions in vivo.

developmental biology↗