Mutations of KIF14 cause primary microcephaly by impairing cytokinesis
Abubakar Moawia1,2,3, Ranad Shaheen4, Sajida Rasool1,5
1Cologne Center for Genomics, University of Cologne, Cologne, Germany.
Objective:
Autosomal recessive primary microcephaly (MCPH) is a rare condition characterized by a reduced cerebral cortex accompanied with intellectual disability. Mutations in 17 genes have been shown to cause this phenotype. Recently, mutations in CIT, encoding CRIK (citron rho-interacting kinase)-a component of the central spindle matrix-were added. We aimed at identifying novel MCPH-associated genes and exploring their functional role in pathogenesis.
Methods:
Linkage analysis and whole exome sequencing were performed in consanguineous and nonconsanguineous MCPH families to identify disease-causing variants. Functional consequences were investigated by RNA studies and on the cellular level using immunofluorescence and microscopy.
Results:
We identified homozygous mutations in KIF14 (NM_014875.2;c.263T>A;pLeu88*, c.2480_2482delTTG; p.Val827del, and c.4071G>A;p.Gln1357=) as the likely cause in 3 MCPH families. Furthermore, in a patient presenting with a severe form of primary microcephaly and short stature, we identified compound heterozygous missense mutations in KIF14 (NM_014875.2;c.2545C>G;p.His849Asp and c.3662G>T;p.Gly1221Val). Three of the 5 identified mutations impaired splicing, and 2 resulted in a truncated protein. Intriguingly, Kif14 knockout mice also showed primary microcephaly. Human kinesin-like protein KIF14, a microtubule motor protein, localizes at the midbody to finalize cytokinesis by interacting with CRIK. We found impaired localization of both KIF14 and CRIK at the midbody in patient-derived fibroblasts. Furthermore, we observed a large number of binucleated and apoptotic cells-signs of failed cytokinesis that we also observed in experimentally KIF14-depleted cells.
Interpretation:
Our data corroborate the role of an impaired cytokinesis in the etiology of primary and syndromic microcephaly, as has been proposed by recent findings on CIT mutations. Ann Neurol 2017;82:562-577.
Insights
Mutations in the KIF14 gene cause primary microcephaly, a condition of reduced brain size and intellectual disability. This study reveals KIF14
Area of Science:
- Genetics
- Neuroscience
- Cell Biology
Background:
- Autosomal recessive primary microcephaly (MCPH) is a rare genetic disorder characterized by a significantly reduced cerebral cortex and intellectual disability.
- Mutations in at least 17 genes are known to cause MCPH, with recent findings implicating CIT mutations.
- The kinesin-like protein KIF14, involved in cell division, has been identified as a potential player in MCPH pathogenesis.
Purpose of the Study:
- To identify novel genes associated with primary microcephaly (MCPH).
- To investigate the functional role of identified genes in the pathogenesis of MCPH.
- To explore the role of KIF14 mutations in MCPH etiology.
Main Methods:
- Linkage analysis and whole exome sequencing were employed to identify disease-causing variants in MCPH families.
- Functional consequences of mutations were assessed using RNA studies.
- Cellular effects were investigated via immunofluorescence and microscopy in patient-derived fibroblasts and KIF14-depleted cells.
Main Results:
- Homozygous and compound heterozygous mutations in the KIF14 gene were identified in MCPH families and a patient with severe microcephaly.
- Three of the five identified KIF14 mutations affected RNA splicing, and two resulted in truncated proteins.
- Kif14 knockout mice exhibited primary microcephaly, and patient cells showed impaired KIF14 and CRIK localization at the midbody, leading to failed cytokinesis, binucleated cells, and apoptosis.
Conclusions:
- The study identifies KIF14 mutations as a cause of primary microcephaly.
- Impaired cytokinesis is confirmed as a key mechanism in the etiology of primary and syndromic microcephaly, consistent with prior findings on CIT mutations.
- KIF14's role in finalizing cell division through midbody localization and interaction with CRIK is crucial for normal brain development.
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