Heterozygous mutation of the splicing factor Sf3b4 affects development of the axial skeleton and forebrain in mouse

التفاصيل البيبلوغرافية
العنوان: Heterozygous mutation of the splicing factor Sf3b4 affects development of the axial skeleton and forebrain in mouse
المؤلفون: Yuichi Hiraoka, Takako Usami, Takahiko Yamada, Harumi Ishikubo, Masaki Takechi, Norisuke Yokoyama, Sachiko Iseki, Tetsuya Yoda, Kiyoko Ogawa-Goto, Yuki Taga, Yoshikazu Hirate, Masami Kanai-Azuma, Toshiko Furutera
المصدر: Developmental dynamics : an official publication of the American Association of AnatomistsREFERENCES. 249(5)
سنة النشر: 2019
مصطلحات موضوعية: 0301 basic medicine, Male, Axial skeleton, Mutant, Calvaria, Biology, 03 medical and health sciences, Splicing factor, Mice, 0302 clinical medicine, Prosencephalon, medicine, Animals, Skeleton, Cell biology, 030104 developmental biology, medicine.anatomical_structure, Forebrain, RNA splicing, Knockout mouse, Mutation, Female, RNA Splicing Factors, Homeotic gene, 030217 neurology & neurosurgery, Developmental Biology
الوصف: Background Splicing factor 3B subunit 4 (SF3B4) is a causative gene of an acrofacial dysostosis, Nager syndrome. Although in vitro analyses of SF3B4 have proposed multiple noncanonical functions unrelated to splicing, less information is available based on in vivo studies using model animals. Results We performed expression and functional analyses of Sf3b4 in mice. The mouse Sf3b4 transcripts were found from two-cell stage, and were ubiquitously present during embryogenesis with high expression levels in several tissues such as forming craniofacial bones and brain. In contrast, expression of a pseudogene-like sequence of mouse Sf3b4 (Sf3b4_ps) found by in silico survey was not detected up to embryonic day 10. We generated a Sf3b4 knockout mouse using CRISPR-Cas9 system. The homozygous mutant mouse of Sf3b4 was embryonic lethal. The heterozygous mutant of Sf3b4 mouse (Sf3b4+/- ) exhibited smaller body size compared to the wild-type from postnatal to adult period, as well as homeotic posteriorization of the vertebral morphology and flattened calvaria. The flattened calvaria appears to be attributable to mild microcephaly due to a lower cell proliferation rate in the forebrain. Conclusions Our study suggests that Sf3b4 controls anterior-posterior patterning of the axial skeleton and guarantees cell proliferation for forebrain development in mice.
تدمد: 1097-0177
URL الوصول: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::b0f1ca3860520b3af7c77f9010828d89
https://pubmed.ncbi.nlm.nih.gov/31900962
حقوق: CLOSED
رقم الأكسشن: edsair.doi.dedup.....b0f1ca3860520b3af7c77f9010828d89
قاعدة البيانات: OpenAIRE