TY - JOUR
T1 - De Novo Missense Variants in FBXW11 Cause Diverse Developmental Phenotypes Including Brain, Eye, and Digit Anomalies
AU - Holt, Richard J.
AU - Young, Rodrigo M.
AU - Crespo, Berta
AU - Ceroni, Fabiola
AU - Curry, Cynthia J.
AU - Bellacchio, Emanuele
AU - Bax, Dorine A.
AU - Ciolfi, Andrea
AU - Simon, Marleen
AU - Fagerberg, Christina R.
AU - van Binsbergen, Ellen
AU - De Luca, Alessandro
AU - Memo, Luigi
AU - Dobyns, William B.
AU - Mohammed, Alaa Afif
AU - Clokie, Samuel J.H.
AU - Zazo Seco, Celia
AU - Jiang, Yong Hui
AU - Sørensen, Kristina P.
AU - Andersen, Helle
AU - Sullivan, Jennifer
AU - Powis, Zöe
AU - Chassevent, Anna
AU - Smith-Hicks, Constance
AU - Petrovski, Slavé
AU - Antoniadi, Thalia
AU - Shashi, Vandana
AU - Gelb, Bruce D.
AU - Wilson, Stephen W.
AU - Gerrelli, Dianne
AU - Tartaglia, Marco
AU - Chassaing, Nicolas
AU - Calvas, Patrick
AU - Ragge, Nicola K.
N1 - Publisher Copyright:
© 2019 The Authors
PY - 2019/9/5
Y1 - 2019/9/5
N2 - The identification of genetic variants implicated in human developmental disorders has been revolutionized by second-generation sequencing combined with international pooling of cases. Here, we describe seven individuals who have diverse yet overlapping developmental anomalies, and who all have de novo missense FBXW11 variants identified by whole exome or whole genome sequencing and not reported in the gnomAD database. Their phenotypes include striking neurodevelopmental, digital, jaw, and eye anomalies, and in one individual, features resembling Noonan syndrome, a condition caused by dysregulated RAS signaling. FBXW11 encodes an F-box protein, part of the Skp1-cullin-F-box (SCF) ubiquitin ligase complex, involved in ubiquitination and proteasomal degradation and thus fundamental to many protein regulatory processes. FBXW11 targets include β-catenin and GLI transcription factors, key mediators of Wnt and Hh signaling, respectively, critical to digital, neurological, and eye development. Structural analyses indicate affected residues cluster at the surface of the loops of the substrate-binding domain of FBXW11, and the variants are predicted to destabilize the protein and/or its interactions. In situ hybridization studies on human and zebrafish embryonic tissues demonstrate FBXW11 is expressed in the developing eye, brain, mandibular processes, and limb buds or pectoral fins. Knockdown of the zebrafish FBXW11 orthologs fbxw11a and fbxw11b resulted in embryos with smaller, misshapen, and underdeveloped eyes and abnormal jaw and pectoral fin development. Our findings support the role of FBXW11 in multiple developmental processes, including those involving the brain, eye, digits, and jaw.
AB - The identification of genetic variants implicated in human developmental disorders has been revolutionized by second-generation sequencing combined with international pooling of cases. Here, we describe seven individuals who have diverse yet overlapping developmental anomalies, and who all have de novo missense FBXW11 variants identified by whole exome or whole genome sequencing and not reported in the gnomAD database. Their phenotypes include striking neurodevelopmental, digital, jaw, and eye anomalies, and in one individual, features resembling Noonan syndrome, a condition caused by dysregulated RAS signaling. FBXW11 encodes an F-box protein, part of the Skp1-cullin-F-box (SCF) ubiquitin ligase complex, involved in ubiquitination and proteasomal degradation and thus fundamental to many protein regulatory processes. FBXW11 targets include β-catenin and GLI transcription factors, key mediators of Wnt and Hh signaling, respectively, critical to digital, neurological, and eye development. Structural analyses indicate affected residues cluster at the surface of the loops of the substrate-binding domain of FBXW11, and the variants are predicted to destabilize the protein and/or its interactions. In situ hybridization studies on human and zebrafish embryonic tissues demonstrate FBXW11 is expressed in the developing eye, brain, mandibular processes, and limb buds or pectoral fins. Knockdown of the zebrafish FBXW11 orthologs fbxw11a and fbxw11b resulted in embryos with smaller, misshapen, and underdeveloped eyes and abnormal jaw and pectoral fin development. Our findings support the role of FBXW11 in multiple developmental processes, including those involving the brain, eye, digits, and jaw.
KW - brain
KW - development
KW - digit
KW - eye
KW - FBXW11
KW - hedgehog
KW - neurodevelopment
KW - Noonan syndrome
KW - WD40
KW - Wnt
UR - http://www.scopus.com/inward/record.url?scp=85071478718&partnerID=8YFLogxK
U2 - 10.1016/j.ajhg.2019.07.005
DO - 10.1016/j.ajhg.2019.07.005
M3 - Article
C2 - 31402090
SN - 0002-9297
VL - 105
SP - 640
EP - 657
JO - American Journal of Human Genetics
JF - American Journal of Human Genetics
IS - 3
ER -