4.5 Article

De novo missense variants in FBXO11 alter its protein expression and subcellular localization

期刊

HUMAN MOLECULAR GENETICS
卷 31, 期 3, 页码 440-454

出版社

OXFORD UNIV PRESS
DOI: 10.1093/hmg/ddab265

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资金

  1. ELAN pilot project from the Center for Interdisciplinary Clinical Research (IZKF) Erlangen [P035]
  2. European Commission [837547]
  3. Health Innovation Challenge Fund [HICF1009-003]
  4. National Heart, Lung and Blood Institute [UM1 HG008900]
  5. National Human Genome Research Institute [R01 HG009141]
  6. Marie Curie Actions (MSCA) [837547] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

De novo FBXO11 variants have been identified as causative for a variable neurodevelopmental disorder, with a complex phenotypic spectrum including developmental delay, intellectual disability, behavioral anomalies, hypotonia, and various facial dysmorphism. Functional analysis of missense variants suggests a likely loss of the original FBXO11 function, highlighting haploinsufficiency as the most probable disease mechanism for FBXO11-associated NDDs.
Recently, others and we identified de novo FBXO11 (F-Box only protein 11) variants as causative for a variable neurodevelopmental disorder (NDD). We now assembled clinical and mutational information on 23 additional individuals. The phenotypic spectrum remains highly variable, with developmental delay and/or intellectual disability as the core feature and behavioral anomalies, hypotonia and various facial dysmorphism as frequent aspects. The mutational spectrum includes intragenic deletions, likely gene disrupting and missense variants distributed across the protein. To further characterize the functional consequences of FBXO11 missense variants, we analyzed their effects on protein expression and localization by overexpression of 17 different mutant constructs in HEK293 and HeLa cells. We found that the majority of missense variants resulted in subcellular mislocalization and/or reduced FBXO11 protein expression levels. For instance, variants located in the nuclear localization signal and the N-terminal F-Box domain lead to altered subcellular localization with exclusion from the nucleus or the formation of cytoplasmic aggregates and to reduced protein levels in western blot. In contrast, variants localized in the C-terminal Zn-finger UBR domain lead to an accumulation in the cytoplasm without alteration of protein levels. Together with the mutational data, our functional results suggest that most missense variants likely lead to a loss of the original FBXO11 function and thereby highlight haploinsufficiency as the most likely disease mechanism for FBXO11-associated NDDs.

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