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Vazquez, N.

Publications and source records attributed to Vazquez, N..

2 recordsLinked to original sources

miR-137 conferred robustness to the territorial restriction of the neural plate border

The neural plate border (NPB) of vertebrate embryos segregated from the neural plate (NP) and epidermal regions, and comprised an intermingled group of progenitors with multiple fate potential. Recent studies have shown that during the gastrula stage, TFAP2A acts as a pioneer factor in remodeling the epigenetic landscape required to activate components of the NPB induction program. Here we show that Tfap2a has two highly conserved binding sites for miR-137 and both display a reciprocal expression pattern at the NPB and NP respectively. In addition, ectopic miR-137 expression reduced TFAP2A, whereas its functional inhibition expanded their territorial distribution overlapping with PAX7. Furthermore, we demonstrated that loss of the de novo DNA methyltransferase DNMT3A expanded miR-137 expression to the NPB. Bisulfite sequencing showed a significantly higher level of non-canonical CpH methylation at the promoter of miR-137 when we compared NPB and NP samples. Our finding shows that miR-137 contributes to the robustness of NPB territorial restriction in vertebrate development.

developmental biology↗

Protein turnover dynamics suggest a diffusion to capture mechanism for peri-basal body recruitment and retention of intraflagellar transport proteins

Intraflagellar transport (IFT) is essential for construction and maintenance of cilia. IFT proteins concentrate at the basal body, where they are thought to assemble into trains and bind cargoes for transport. To study the mechanisms of IFT recruitment to this peri-basal body pool, we quantified protein dynamics of eight IFT proteins, as well as five other basal body localizing proteins, using fluorescence recovery after photobleaching in vertebrate multiciliated cells. We found that members of the IFT-A and IFT-B protein complexes show distinct turnover kinetics from other basal body components. Additionally, known IFT sub-complexes displayed shared dynamics, and these dynamics were not altered during cilia regeneration as compared to homeostasis. Finally, we evaluated the mechanisms of basal body recruitment by depolymerizing cytosolic MTs, which suggested that IFT proteins are recruited to basal bodies through a diffusion-to-capture mechanism. Our survey of IFT protein dynamics provides new insights into IFT recruitment to basal bodies, a crucial step in ciliogenesis.

cell biology↗