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Biology subjects

Weider, M.

Publications and source records attributed to Weider, M..

2 recordsLinked to original sources

Hypoxia impedes differentiation of cranial neural crest cells into derivatives relevant for craniofacial development

Orofacial clefts are the second-most prevalent congenital malformation. Risk factors are multifactorial and include genetic components but also environmental factors. One environmental factor is hypoxia during pregnancy, caused for instance by tobacco smoking, medication or living at high altitudes. Knowledge about the molecular link between hypoxia and orofacial clefts is at large. We here show that hypoxia has only modest effects on proliferating cranial neural crest cells, but dramatically influences their differentiation potential. We detected massive perturbations in their differentiation to chondrocytes, osteoblasts and smooth muscle cells. The transcriptional induction of the majority of regulated genes during each of these processes was grossly impaired by hypoxic conditions, as evidenced by genome-wide transcriptomic analyses. Bioinformatic analyses pointed to cytoskeletal organization and amino acid metabolism as two main processes compromised during all three differentiation pathways, and several orofacial cleft risk genes were among the genes with impaired induction during hypoxia. Our analyses reveal a drastic influence of hypoxia on the differentiation potential of cranial neural crest cells as a possible source for the occurrence of orofacial clefts.

genomics↗

The Tip60/Ep400 chromatin remodeling complex impacts basic metabolic and cellular functions in cranial neural crest-derived tissue during early orofacial development

The cranial neural crest plays a fundamental role in orofacial development and morphogenesis. Accordingly, mutations with impact on the cranial neural crest and its development lead to orofacial malformations such as cleft lip and palate. As a pluripotent and dynamic cell population, the cranial neural crest undergoes vast transcriptional and epigenomic alterations throughout the formation of facial structures pointing to an essential role of factors regulating chromatin state or transcription levels. Using CRISPR/Cas9-guided genome editing and conditional mutagenesis in the mouse, we here show that inactivation of Kat5 and Ep400 as the two essential enzymatic subunits of the Tip60/Ep400 chromatin remodeling complexes severely affects carbohydrate and amino acid metabolism in cranial neural crest cells. The resulting decrease in protein synthesis, proliferation and survival leads to a drastic reduction of cranial neural crest cells early in fetal development and a loss of most facial structures in the absence of either protein. Following heterozygous loss of Kat5 in neural crest cells palatogenesis was impaired. These findings point to a decisive role of the Tip60/Ep400 chromatin remodeling complex in facial morphogenesis and lead us to conclude that the orofacial clefting observed in patients with heterozygous KAT5 missense mutations is at least in part due to disturbances in the cranial neural crest.

developmental biology↗