Literature DB >> 24748105

Mutations in CENPE define a novel kinetochore-centromeric mechanism for microcephalic primordial dwarfism.

Ghayda M Mirzaa1, Benjamin Vitre, Gillian Carpenter, Iga Abramowicz, Joseph G Gleeson, Alex R Paciorkowski, Don W Cleveland, William B Dobyns, Mark O'Driscoll.   

Abstract

Defects in centrosome, centrosomal-associated and spindle-associated proteins are the most frequent cause of primary microcephaly (PM) and microcephalic primordial dwarfism (MPD) syndromes in humans. Mitotic progression and segregation defects, microtubule spindle abnormalities and impaired DNA damage-induced G2-M cell cycle checkpoint proficiency have been documented in cell lines from these patients. This suggests that impaired mitotic entry, progression and exit strongly contribute to PM and MPD. Considering the vast protein networks involved in coordinating this cell cycle stage, the list of potential target genes that could underlie novel developmental disorders is large. One such complex network, with a direct microtubule-mediated physical connection to the centrosome, is the kinetochore. This centromeric-associated structure nucleates microtubule attachments onto mitotic chromosomes. Here, we described novel compound heterozygous variants in CENPE in two siblings who exhibit a profound MPD associated with developmental delay, simplified gyri and other isolated abnormalities. CENPE encodes centromere-associated protein E (CENP-E), a core kinetochore component functioning to mediate chromosome congression initially of misaligned chromosomes and in subsequent spindle microtubule capture during mitosis. Firstly, we present a comprehensive clinical description of these patients. Then, using patient cells we document abnormalities in spindle microtubule organization, mitotic progression and segregation, before modeling the cellular pathogenicity of these variants in an independent cell system. Our cellular analysis shows that a pathogenic defect in CENP-E, a kinetochore-core protein, largely phenocopies PCNT-mutated microcephalic osteodysplastic primordial dwarfism-type II patient cells. PCNT encodes a centrosome-associated protein. These results highlight a common underlying pathomechanism. Our findings provide the first evidence for a kinetochore-based route to MPD in humans.

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Year:  2014        PMID: 24748105      PMCID: PMC4415612          DOI: 10.1007/s00439-014-1443-3

Source DB:  PubMed          Journal:  Hum Genet        ISSN: 0340-6717            Impact factor:   4.132


  64 in total

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2.  Centrosome-associated Chk1 prevents premature activation of cyclin-B-Cdk1 kinase.

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5.  Gene silencing of CENP-E by small interfering RNA in HeLa cells leads to missegregation of chromosomes after a mitotic delay.

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Review 6.  Majewski osteodysplastic primordial dwarfism type II (MOPD II): natural history and clinical findings.

Authors:  Judith G Hall; Christina Flora; Charles I Scott; Richard M Pauli; Kimi I Tanaka
Journal:  Am J Med Genet A       Date:  2004-09-15       Impact factor: 2.802

7.  Studies of microcephalic primordial dwarfism II: the osteodysplastic type II of primordial dwarfism.

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Review 4.  Advances in Skeletal Dysplasia Genetics.

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Review 9.  Primordial dwarfism: overview of clinical and genetic aspects.

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