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Biology subjects

Toulouse, G.

Publications and source records attributed to Toulouse, G..

2 recordsLinked to original sources

Early lineage segregation of primary myotubes from secondary myotubes and adult muscle stem cells.

Myogenesis in amniotes unfolds through two consecutive waves. The primary myotube lineage is characterized by the expression of slow myosin, sometimes in combination with fast myosin, and may serve as a scaffold for the secondary lineage, which expresses exclusively fast myosin. The embryonic origin of these two lineages, their relationship, and their connection to adult muscle stem cells are unknown. Here, we employed innovative strategies, combining novel TCF-LEF/{beta}-catenin signaling reporters with the precise spatiotemporal control of in vivo electroporation in avian embryos, to track limb muscle progenitors from early migration to late fetal stages. Strikingly, we uncovered two distinct progenitor populations co-existing from the earliest stages of limb myogenesis, with specific developmental fates: reporter-positive progenitors exclusively form primary myotubes, while reporter-negative progenitors generate secondary myotubes and adult muscle stem cells. Furthermore, we uncovered a novel function of TCF-LEF/{beta}-catenin signaling in regulating the spatial organization of the primary myotube lineage via CXCR4-mediated control of myoblast migration, likely contributing to its proposed organizing function. By redefining the embryonic origins of these myogenic populations, our findings not only resolve a longstanding question in muscle biology but also provide a crucial molecular entry point for understanding the cellular and molecular underpinnings of muscle fiber type diversity and function.

developmental biology↗

TopFlash transgenic quail reveals dynamic TCF/beta-catenin signaling during avian embryonic development

The Wnt/{beta}-catenin signaling pathway is highly conserved throughout evolution and it plays crucial roles in several developmental and pathological processes. Wnt ligands can act at a considerable distance from their sources and it is therefore necessary to examine not only the Wnt-producing but also the Wnt-receiving cells and tissues to fully appreciate the many functions of this pathway. To monitor Wnt activity, multiple tools have been designed which consist of multimerized Wnt signaling response elements (TCF/LEF binding sites) driving the expression of fluorescent reporter proteins (e.g. GFP, RFP) or of LacZ. The high stability of those reporters leads to a considerable accumulation in cells activating the pathway, thereby making them easily detectable. However, this makes them unsuitable to follow temporal changes of the pathways activity during dynamic biological events. Even though fluorescent transcriptional reporters can be destabilized to shorten their half-lives, this dramatically reduces signal intensities, particularly when applied in vivo. To alleviate these issues, we developed two transgenic quail lines in which high copy number (12x or 16x) of the TCF/LEF binding sites drive the expression of destabilized GFP variants. Translational enhancer sequences derived from viral mRNAs were used to increase signal intensity and specificity. This resulted in transgenic lines efficient for the characterisation of TCF/{beta}-catenin transcriptional dynamic activities during embryogenesis, including using in vivo imaging. Our analyses demonstrate the use of this transcriptional reporter to unveil novel aspects of Wnt signaling, thus opening new routes of investigation into the role of this pathway during amniote embryonic development.

developmental biology↗