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Cicolini, S.

Publications and source records attributed to Cicolini, S..

2 recordsLinked to original sources

A moving front of osteoblast maturation scales regenerating zebrafish bone

Successful regeneration recovers lost tissues to their original form. Here, we investigate how proliferation of bone-forming osteoblasts is timely regulated to control tissue size during zebrafish scale regeneration. Regeneration of the scale osteoblast tissue proceeds in two phases: an initial osteoblast proliferative expansion followed by hypertrophic growth without cell division. First, we show that regeneration recovers scale size by amplifying the number of osteoblasts by a fixed factor, starting from a properly scaled tissue primordium. This fixed expansion is achieved by regulating proliferation such that osteoblast number increases roughly linearly, with the rate of increase scaling with initial osteoblast number, and halting cell proliferation at a given time. To understand the mechanisms underlying this proliferation control, we used live imaging of transgenic reporters and biosensors together with transcriptomics. We uncover that proliferation arrest is imparted by a moving front of osteoblast maturation travelling outward across the scale, with dynamics that scales with tissue size. The osteoblast maturation front coincides with onset of hypertrophy and bone deposition, and it is accompanied by reduction in expression of the fibroblast growth factor receptor 3 (fgfr3) and activity of the kinases Erk (Extracellular signal-Regulated Kinase) and p38. Inhibition of Fgf/Erk signaling and osteoblast proliferation does not alter the progression of the maturation front. We show that the scaling maturation front can quantitatively explain the osteoblast proliferation dynamics and its scaling across different tissue sizes. Overall, we identify a moving front of cell maturation as a mechanism for controlling cell proliferation across a regenerating tissue.

developmental biology↗

Signalling-dependent refinement of cell fate choice during tissue remodelling

How biological form emerges from cell fate decisions and tissue remodelling is a fundamental question in development biology. However, an understanding of how these processes operate side-by-side to set precise and robust patterns is largely missing. Here, we investigate this interplay during the process of vein refinement in the Drosophila pupal wing. By following reporters of signalling activity dynamically, together with tissue flows, we show that longitudinal vein refinement arises from a combination of local tissue deformation and cell fate adjustments controlled by a signalling network involving Notch, Dpp, and EGFR. Perturbing large-scale convergence and extension tissue flows does not affect vein refinement, showing that pre-patterned vein domains are able to intrinsically refine to the correct width. A minimal biophysical description taking into account key signalling interactions recapitulates the intrinsic tissue ability to establish a thin, regular vein independently of large-scale tissue flows. Supporting this prediction, artificial proveins optogenetically generated orthogonal to the axis of wing elongation refine against large-scale flows. Overall, we find that signalling-mediated updating of cell fate is a key contributor to reproducible patterning.

developmental biology↗