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1.
Mech Dev ; 163: 103632, 2020 09.
Article in English | MEDLINE | ID: mdl-32668265

ABSTRACT

Valproic acid (VPA) is an anti-epileptic drug known to cause congenital craniofacial abnormalities, including orofacial clefts (OFC). The exact mechanisms by which VPA leads to craniofacial skeletal malformations are poorly understood. In this study, we investigated the effects of VPA on cartilage and bone formation in the zebrafish larval head during 1-13 hpf (early) and 25-37 hpf (late) development in which cranial neural crest cells (CNCCs) arise and then proliferate and differentiate, respectively. Double-staining for cartilage and bone at 5 dpf revealed that VPA reduced cartilage and bone formation in a dose-dependent manner after both early or late exposure. Several different CNCC-derived cartilage and bone elements were affected in both groups. In the early group (100 µM VPA), the posterior head length and the ethmoid plate were reduced in length (both p < 0.01), while mineralization of 4 out of 9 bone elements was often lacking (all p < 0.01). In the late group (100 µM VPA), also the posterior head length was reduced as well as the length of the ceratohyals (both p < 0.01). Similar to early exposure, mineralization of 3 out of 9 bone elements was often lacking (all p < 0.01). These results indicate that both CNCC formation (early) and differentiation (late) are hampered by VPA treatment, of which the consequences for bone and cartilage formation are persistent at 5 dpf. Indeed, we also found that the expression of several genes related to cartilage and bone was upregulated at 5 dpf. These data indicate a compensatory reaction to the lack of cartilage and bone. Altogether, VPA seems to induce craniofacial malformations via disturbed CNCC function leading to defects in cartilage and bone formation.


Subject(s)
Cartilage/abnormalities , Skull/abnormalities , Valproic Acid/pharmacology , Zebrafish Proteins/genetics , Animals , Cartilage/drug effects , Cartilage/growth & development , Cartilage/pathology , Cell Differentiation/drug effects , Chondrogenesis/drug effects , Chondrogenesis/genetics , Cleft Lip/chemically induced , Cleft Lip/genetics , Cleft Lip/physiopathology , Cleft Palate/chemically induced , Cleft Palate/genetics , Cleft Palate/physiopathology , Embryo, Nonmammalian , Gene Expression Regulation, Developmental/drug effects , Head/abnormalities , Head/physiopathology , Humans , Larva/drug effects , Larva/genetics , Larva/growth & development , Neural Crest/drug effects , Neural Crest/growth & development , Neural Crest/pathology , Skull/growth & development , Valproic Acid/adverse effects , Zebrafish/genetics , Zebrafish/growth & development
2.
Biol Open ; 8(9)2019 Sep 09.
Article in English | MEDLINE | ID: mdl-31471293

ABSTRACT

Craniofacial development is tightly regulated and therefore highly vulnerable to disturbance by genetic and environmental factors. Fibroblast growth factors (FGFs) direct migration, proliferation and survival of cranial neural crest cells (CNCCs) forming the human face. In this study, we analyzed bone and cartilage formation in the head of five dpf fgf8ati282 zebrafish larvae and assessed gene expression levels for 11 genes involved in these processes. In addition, in situ hybridization was performed on 8 and 24 hours post fertilization (hpf) larvae (fgf8a, dlx2a, runx2a, col2a1a). A significant size reduction of eight out of nine craniofacial cartilage structures was found in homozygous mutant (6-36%, P<0.01) and heterozygous (7-24%, P<0.01) larvae. Also, nine mineralized structures were not observed in all or part of the homozygous (0-71%, P<0.0001) and heterozygous (33-100%, P<0.0001) larvae. In homozygote mutants, runx2a and sp7 expression was upregulated compared to wild type, presumably to compensate for the reduced bone formation. Decreased col9a1b expression may compromise cartilage formation. Upregulated dlx2a in homozygotes indicates impaired CNCC function. Dlx2a expression was reduced in the first and second stream of CNCCs in homozygous mutants at 24 hpf, as shown by in situ hybridization. This indicates an impairment of CNCC migration and survival by fgf8 mutation.

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