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Porfirio-Rodrigues, P.

Publications and source records attributed to Porfirio-Rodrigues, P..

2 recordsLinked to original sources

Axon-specific microtubule regulation drives asymmetric regeneration of sensory neuron axons

Sensory dorsal root ganglion (DRG) neurons have a unique pseudo-unipolar morphology in which a stem axon bifurcates into a peripheral and a central axon, with different regenerative abilities. Whereas peripheral DRG axons regenerate, central axons are unable to regrow. Central axon regeneration can however be elicited by a prior conditioning lesion to the peripheral axon. How DRG axon asymmetry is established, remains unknown. Here we developed a rodent in vitro system replicating DRG pseudo-unipolarization and asymmetric axon regeneration. Using this model, we observed that from early development, central DRG axons have a higher density of growing microtubules. This asymmetry was also present in vivo and was abolished by a conditioning lesion that decreased microtubule polymerization of central DRG axons. An axon-specific microtubule-associated protein (MAP) signature, including the severases spastin and katanin and the microtubule regulators CRMP5 and tau, was found and shown to adapt upon conditioning lesion. Supporting its significance, interfering with the DRG MAP signature either in vitro or in vivo, readily abolished central-peripheral asymmetries in microtubule dynamics and regenerative ability. In summary, our data unveil that axon-specific microtubule regulation drives asymmetric regeneration of sensory neuron axons. Impact statementSensory neurons have a stem axon that bifurcates originating two axons with different properties. This work shows that DRG axons have a specific protein signature underlying microtubule and regeneration asymmetries. It also provides an in vitro system replicating DRG biology.

neuroscience↗

Dachsous is a key player in epithelial wound closure by modulating cell shape changes and cytoskeleton dynamics

Epithelia are vital tissues in multicellular organisms, acting as barriers between external and internal environments. Simple epithelia, such as those in embryos and the adult gut, have the remarkable ability to repair wounds efficiently, making them ideal for studying epithelial repair mechanisms. In these tissues, wound closure involves the coordinated action of a contractile actomyosin cable at the wound edge and collective cell movements around the wound. However, the dynamics of cell-cell interactions during this process remain poorly understood. Here, we demonstrate that Dachsous (Ds), an atypical cadherin associated with Planar Cell Polarity, is crucial for efficient epithelial repair in the Drosophila embryonic epidermis. We show that the absence of Ds leads to delayed wound closure, impaired actomyosin cable formation, and altered cell shape changes. Additionally, we reveal that Occluding Junctions are necessary for the proper apical localization of Ds, suggesting an unanticipated interaction between these two molecular complexes. This study identifies Ds as a novel player in epithelial repair and highlights the need for further investigating the molecular mechanisms by which Ds modulates cell shape and tissue morphogenesis. Summary statementThis study shows that the atypical cadherin Dachsous is essential for epithelial wound closure, influencing cytoskeletal dynamics and cell morphology, with Occluding Junctions regulating its subcellular localization.

cell biology↗