TY - JOUR
T1 - De novo PHF5A variants are associated with craniofacial abnormalities, developmental delay, and hypospadias
AU - Harms, Frederike L.
AU - Dingemans, Alexander J.M.
AU - Hempel, Maja
AU - Pfundt, Rolph
AU - Bierhals, Tatjana
AU - Casar, Christian
AU - Müller, Christian
AU - Niermeijer, Jikke Mien F.
AU - Fischer, Jan
AU - Jahn, Arne
AU - Hübner, Christoph
AU - Majore, Silvia
AU - Agolini, Emanuele
AU - Novelli, Antonio
AU - van der Smagt, Jasper
AU - Ernst, Robert
AU - van Binsbergen, Ellen
AU - Mancini, Grazia M.S.
AU - van Slegtenhorst, Marjon
AU - Barakat, Tahsin S.
AU - Wakeling, Emma L.
AU - Kamath, Arveen
AU - Downie, Lilian
AU - Pais, Lynn
AU - White, Susan M.
AU - de Vries, Bert B.A.
AU - Kutsche, Kerstin
N1 - Publisher Copyright:
© 2023 American College of Medical Genetics and Genomics
PY - 2023/10
Y1 - 2023/10
N2 - Purpose: The SF3B splicing complex is composed of SF3B1-6 and PHF5A. We report a developmental disorder caused by de novo variants in PHF5A. Methods: Clinical, genomic, and functional studies using subject-derived fibroblasts and a heterologous cellular system were performed. Results: We studied 9 subjects with congenital malformations, including preauricular tags and hypospadias, growth abnormalities, and developmental delay who had de novo heterozygous PHF5A variants, including 4 loss-of-function (LOF), 3 missense, 1 splice, and 1 start-loss variant. In subject-derived fibroblasts with PHF5A LOF variants, wild-type and variant PHF5A mRNAs had a 1:1 ratio, and PHF5A mRNA levels were normal. Transcriptome sequencing revealed alternative promoter use and downregulated genes involved in cell-cycle regulation. Subject and control fibroblasts had similar amounts of PHF5A with the predicted wild-type molecular weight and of SF3B1-3 and SF3B6. SF3B complex formation was unaffected in 2 subject cell lines. Conclusion: Our data suggest the existence of feedback mechanisms in fibroblasts with PHF5A LOF variants to maintain normal levels of SF3B components. These compensatory mechanisms in subject fibroblasts with PHF5A or SF3B4 LOF variants suggest disturbed autoregulation of mutated splicing factor genes in specific cell types, that is, neural crest cells, during embryonic development rather than haploinsufficiency as pathomechanism.
AB - Purpose: The SF3B splicing complex is composed of SF3B1-6 and PHF5A. We report a developmental disorder caused by de novo variants in PHF5A. Methods: Clinical, genomic, and functional studies using subject-derived fibroblasts and a heterologous cellular system were performed. Results: We studied 9 subjects with congenital malformations, including preauricular tags and hypospadias, growth abnormalities, and developmental delay who had de novo heterozygous PHF5A variants, including 4 loss-of-function (LOF), 3 missense, 1 splice, and 1 start-loss variant. In subject-derived fibroblasts with PHF5A LOF variants, wild-type and variant PHF5A mRNAs had a 1:1 ratio, and PHF5A mRNA levels were normal. Transcriptome sequencing revealed alternative promoter use and downregulated genes involved in cell-cycle regulation. Subject and control fibroblasts had similar amounts of PHF5A with the predicted wild-type molecular weight and of SF3B1-3 and SF3B6. SF3B complex formation was unaffected in 2 subject cell lines. Conclusion: Our data suggest the existence of feedback mechanisms in fibroblasts with PHF5A LOF variants to maintain normal levels of SF3B components. These compensatory mechanisms in subject fibroblasts with PHF5A or SF3B4 LOF variants suggest disturbed autoregulation of mutated splicing factor genes in specific cell types, that is, neural crest cells, during embryonic development rather than haploinsufficiency as pathomechanism.
KW - Craniofacial spliceosomopathies
KW - Exome
KW - Loss of function
KW - Nager syndrome
KW - Negative autoregulation
UR - https://www.scopus.com/pages/publications/85166912847
U2 - 10.1016/j.gim.2023.100927
DO - 10.1016/j.gim.2023.100927
M3 - Article
C2 - 37422718
AN - SCOPUS:85166912847
SN - 1098-3600
VL - 25
JO - Genetics in Medicine
JF - Genetics in Medicine
IS - 10
M1 - 100927
ER -