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Quantitative Immunofluorescence Assay to Measure the Variation in Protein Levels at Centrosomes
Published on: December 20, 2014
Novel microcephalic primordial dwarfism disorder associated with variants in the centrosomal protein ninein
Andrew Dauber1, Stephen H Lafranchi, Zoltan Maliga
1Children's Hospital Boston, 300 Longwood Avenue, Boston, Massachusetts 02115, USA. andrew.dauber@childrens.harvard.edu
Context:
Microcephalic primordial dwarfism (MPD) is a rare, severe form of human growth failure in which growth restriction is evident in utero and continues into postnatal life. Single causative gene defects have been identified in a number of patients with MPD, and all involve genes fundamental to cellular processes including centrosome functions.
Objective:
The objective of the study was to find the genetic etiology of a novel presentation of MPD.
Design:
The design of the study was whole-exome sequencing performed on two affected sisters in a single family. Molecular and functional studies of a candidate gene were performed using patient-derived primary fibroblasts and a zebrafish morpholino oligonucleotides knockdown model.
Patients:
Two sisters presented with a novel subtype of MPD, including severe intellectual disabilities.
Main Outcome Measures:
NIN, encoding Ninein, a centrosomal protein critically involved in asymmetric cell division, was identified as a candidate gene, and functional impacts in fibroblasts and zebrafish were studied.
Results:
From 34,606 genomic variants, two very rare missense variants in NIN were identified. Both probands were compound heterozygotes. In the zebrafish, ninein knockdown led to specific and novel defects in the specification and morphogenesis of the anterior neuroectoderm, resulting in a deformity of the developing cranium with a small, squared skull highly reminiscent of the human phenotype.
Conclusion:
We identified a novel clinical subtype of MPD in two sisters who have rare variants in NIN. We show, for the first time, that reduction of ninein function in the developing zebrafish leads to specific deficiencies of brain and skull development, offering a developmental basis for the myriad phenotypes in our patients.
Insights
Rare variants in the NIN gene cause a novel form of microcephalic primordial dwarfism (MPD). This study reveals Ninein
Area of Science:
- Genetics
- Developmental Biology
- Human Physiology
Background:
- Microcephalic primordial dwarfism (MPD) is a rare genetic disorder causing severe growth failure.
- Known MPD cases involve genes critical for centrosome function.
- The genetic basis for novel MPD presentations remains largely unknown.
Purpose of the Study:
- To determine the genetic cause of a unique MPD presentation in two sisters.
- To investigate the role of identified gene variants in disease pathogenesis.
Main Methods:
- Whole-exome sequencing was performed on two affected sisters.
- Candidate gene NIN (Ninein) variants were analyzed in patient fibroblasts.
- Zebrafish models were used to study the functional impact of reduced Ninein.
Main Results:
- Two rare compound heterozygous variants in the NIN gene were identified in the affected sisters.
- Ninein knockdown in zebrafish caused neuroectoderm and skull development defects mirroring human MPD.
- These findings implicate NIN in the etiology of this MPD subtype.
Conclusions:
- A novel subtype of MPD associated with NIN variants was identified.
- This study provides the first functional evidence linking Ninein deficiency to specific brain and skull developmental defects.
- The findings offer a developmental explanation for the observed MPD phenotypes.
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