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Biology subjects

Josse, O.

Publications and source records attributed to Josse, O..

2 recordsLinked to original sources

SPARC mediates tumour-stroma intercellular communication through endosomal regulation of Delta and Notch signalling

Tumour progression relies on reciprocal communication between genetically altered cancer cells and surrounding stromal cells. While the genetic alterations that initiate tumorigenesis have been extensively studied, the dysregulated feedback signalling provided by co-opted stromal cells remains poorly understood. Here, we used a Drosophila cancer model to address this question and identified the matricellular protein SPARC as a mediator of tumour-stroma communication. SPARC is produced by mesenchymal cells and transferred into epithelial tumour cells, where it is internalized through the endocytic pathway. Following uptake, SPARC accumulates in Rab7 positive late endosomes and colocalize with the Notch ligand Delta. SPARC internalization promotes endosomal enlargement and reduces endosome dynamics. Increased SPARC levels in epithelial tumours indirectly attenuate Notch signalling activity through at least altered Delta trafficking. We further identify the N-terminal acidic domain of SPARC as specifically required for its targeting to Delta-associated endosomes. Together, our findings uncover a stromal feedback mechanism by which SPARC modulates Notch signalling through endosomal regulation during tumour development.

developmental biology↗

Immune tracheal intercellular signalling coordinates the muscle injury response in Drosophila

In skeletal muscle, immune and vascular responses are essential for regeneration, yet the cellular and molecular mechanisms that coordinate their activities to restore tissue function remain unclear. Here, using Drosophila, we uncover a multi-organ signaling program that integrates muscle fibers, macrophages, vascular-like tracheal cells, and the extracellular matrix (ECM) to maintain muscle function in response to acute damage. Muscle injury induces rapid macrophage recruitment and secretion of the FGF-like ligand Branchless (Bnl), which activates FGF/FGFR signalling in tracheal cells and promotes their targeted expansion toward damaged muscle. Concomitantly, macrophages deposit ECM components on the damaged muscle, including Collagen IV, forming a localized microenvironment that restricts Bnl ligand diffusion and facilitates directed tracheal remodelling. Genetic disruption of macrophage-derived Bnl or macrophage-mediated ECM deposition abolishes tracheal remodelling and compromises muscle function following injury. Together, these findings reveal a novel immune-vascular communication program in which macrophages coordinate fibroblast growth factor signalling and ECM organization to shape muscle microenvironment and preserve muscle function following acute damage.

developmental biology↗