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Tajer, B.

Publications and source records attributed to Tajer, B..

2 recordsLinked to original sources

Acvr2b receptors transduce all BMP signaling in the zebrafish gastrula and restrict Fibrodysplasia Ossificans Progressiva ACVR1-R206H signaling in a dose-dependent manner

BMP signaling drives dorsoventral (DV) axial patterning in vertebrates and invertebrates, with BMP dimers recruiting tetrameric receptor complexes to phosphorylate SMADs that activate target gene expression. In zebrafish DV patterning, Bmp2/7 heterodimers exclusively signal, assembling a receptor complex of two distinct type I receptors, Bmpr1 and Acvr1l, that canonically bind Bmp2 and Bmp7 ligands, respectively. Here, we tested if the two distinct classes of BMP type II receptors, Bmpr2 and Acvr2, also act in the gastrula signaling complex. We mutated all four acvr2a and acvr2b genes in the zebrafish and found maternal-zygotic depletion of Acvr2b receptors causes severe embryonic dorsalization, while bmpr2 genes are not expressed in the gastrula, indicating Acvr2b is the primary type II receptor transducing the BMP signal. Further, while phosphorylated Smad5 (pSmad5) was reduced throughout the early gastrula, unexpectedly, pSmad5 was nearly abrogated at the embryonic margin, where Nodal signaling is active in specifying the mesendoderm. We found that inhibiting Nodal signaling by depleting its co-receptor, Oep, in MZ-Acvr2b deficient embryos restored marginal pSmad5 to non-marginal levels, suggesting that Nodal competes with BMP for Acvr2a receptors at the margin. Further, we find that while Bmpr2 is not expressed in the gastrula, it can signal in the absence of Acvr2b, indicating that, unlike the type I receptor classes, the type II receptor classes do not uniquely function in the Bmp2/7 signaling complex. We further demonstrate that the ACVR1-R206H Fibrodysplasia Ossificans Progressiva human disease-causing mutant receptor, ACVR1-R206H, displays an increased sensitivity to Acvr2b dosage compared to wild-type Acvr1l, indicating that Acvr2b receptor availability restricts multiple modes of signaling in the gastrula.

developmental biology↗

An evolutionarily conserved role for VEGF signaling in the expansion of non-vascular tissue during regeneration.

Salamanders are capable of regenerating whole limbs throughout life, a feat that is unmatched within tetrapods. Limb regeneration is dependent upon the formation of a blastema, which contains undifferentiated cells capable of giving rise to most cells of the regenerated limb. Innervation is required for regeneration, along with many signaling pathways, including FGF, BMP and Wnt, but the role of VEGF signaling during salamander limb regeneration is not well understood. Here we show that VEGF signaling is essential for limb regeneration and that blastema cells and limb fibroblasts display impaired proliferation in the absence of VEGF signaling. By performing analogous experiments in planaria, which lack vasculature, we show a potential evolutionarily conserved role for VEGF in the expansion of blastema tissues that is separable from angiogenesis. Moreover, loss of VEGF signaling reduces induction of EMT-like processes, suggesting VEGF signaling functions upstream of the expression of EMT transcription factors, including Snai2. These findings highlight potential roles for VEGF signaling during regeneration which may extend beyond typical findings related to angiogenesis.

developmental biology↗