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Mahabaleshwar, H.

Publications and source records attributed to Mahabaleshwar, H..

2 recordsLinked to original sources

Echolocation-like model of directed cell migrationwithin growing tissues

During development and regeneration, cells migrate to specific locations within growing tissues. These cells can respond to both biochemical signals and mechanical cues, resulting in directed migration. Such migration is often highly stereotypic. Yet, how cells respond to migratory signals in a robust manner within a growing domain remains an open problem. Here, we propose a model of directed migration in growing tissues motivated by echolocation. The migrating cells generate a signaling gradient that induces a response signal from the moving system boundary. This response signal mediates cellular adhesion to the surrounding matrix and hence modulates the cell migration. We find that such a mechanism can align a series of cells at stable positions within growing systems and can effectively scale to system size. Finally, we discuss the relevance of such a model to fibroblast migration and location within the developing zebrafish caudal fin, which may be regulated by opposing signaling gradients of Slit-Robo pathway components. Significance StatementHow do cells reliably migrate within growing environments? Here, we show that cells can take advantage of an echolocation-like process, whereby they induce a response from the tissue boundary. As they approach the boundary, the response signal strengthens and brings the cell to a fixed position from the boundary. This simple system may be applicable to fibroblast migration in the fin.

biophysics↗

Slit-Robo Signalling Establishes a Sphingosine-1-Phosphate Gradient to Polarise Fin Mesenchyme and Establish Fin Morphology

Immigration of mesenchymal cells into the growing fin and limb buds drives distal outgrowth, with subsequent tensile forces between these cells essential for fin and limb morphogenesis. Morphogens derived from the apical domain of the fin, orientate limb mesenchyme cell polarity, migration, division and adhesion. The zebrafish mutant stomp displays defects in fin morphogenesis including blister formation and associated loss of orientation and adhesion of immigrating fin mesenchyme cells. Positional cloning of stomp identified a mutation in the gene encoding the axon guidance ligand, Slit3. We provide evidence that Slit ligands derived from immigrating mesenchyme act via Robo receptors at the Apical Ectodermal Ridge (AER) to promote release of sphingosine-1-phosphate (S1P). S1P subsequently diffuses back to the mesenchyme to promote their polarisation, orientation, positioning and adhesion to the interstitial matrix of the fin fold. We thus demonstrate coordination of the Slit-Robo and S1P signalling pathways in fin fold morphogenesis. Our work introduces a mechanism regulating the orientation, positioning and adhesion of its constituent cells.

cell biology↗