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Updated: Jun 7, 2026

Reconstitution of Basic Mitotic Spindles in Spherical Emulsion Droplets
Published on: August 13, 2016
Human ASPM participates in spindle organisation, spindle orientation and cytokinesis
Julie Higgins1, Carol Midgley, Anna-Maria Bergh
1Section of Ophthalmology and Neuroscience, Wellcome Trust Brenner Building, Leeds Institute of Molecular Medicine, University of Leeds, St. James's University Hospital, Leeds LS9 7TF, UK.
Background:
Mutations in the Abnormal Spindle Microcephaly related gene (ASPM) are the commonest cause of autosomal recessive primary microcephaly (MCPH) a disorder characterised by a small brain and associated mental retardation. ASPM encodes a mitotic spindle pole associated protein. It is suggested that the MCPH phenotype arises from proliferation defects in neural progenitor cells (NPC).
Results:
We show that ASPM is a microtubule minus end-associated protein that is recruited in a microtubule-dependent manner to the pericentriolar matrix (PCM) at the spindle poles during mitosis. ASPM siRNA reduces ASPM protein at the spindle poles in cultured U2OS cells and severely perturbs a number of aspects of mitosis, including the orientation of the mitotic spindle, the main determinant of developmental asymmetrical cell division. The majority of ASPM depleted mitotic cells fail to complete cytokinesis. In MCPH patient fibroblasts we show that a pathogenic ASPM splice site mutation results in the expression of a novel variant protein lacking a tripeptide motif, a minimal alteration that correlates with a dramatic decrease in ASPM spindle pole localisation. Moreover, expression of dominant-negative ASPM C-terminal fragments cause severe spindle assembly defects and cytokinesis failure in cultured cells.
Conclusions:
These observations indicate that ASPM participates in spindle organisation, spindle positioning and cytokinesis in all dividing cells and that the extreme C-terminus of the protein is required for ASPM localisation and function. Our data supports the hypothesis that the MCPH phenotype caused by ASPM mutation is a consequence of mitotic aberrations during neurogenesis. We propose the effects of ASPM mutation are tolerated in somatic cells but have profound consequences for the symmetrical division of NPCs, due to the unusual morphology of these cells. This antagonises the early expansion of the progenitor pool that underpins cortical neurogenesis, causing the MCPH phenotype.
Insights
Mutations in the Abnormal Spindle Microcephaly related gene (ASPM) cause primary microcephaly by disrupting neural progenitor cell division. ASPM protein is crucial for mitotic spindle organization and cytokinesis, with its C-terminus essential for function.
Area of Science:
- Cell Biology
- Genetics
- Developmental Biology
Background:
- Mutations in the Abnormal Spindle Microcephaly related gene (ASPM) are the most frequent cause of autosomal recessive primary microcephaly (MCPH).
- MCPH is characterized by a small brain and intellectual disability, potentially stemming from neural progenitor cell (NPC) proliferation defects.
- ASPM encodes a protein associated with the mitotic spindle pole.
Purpose of the Study:
- To investigate the function of ASPM in mitosis and its role in MCPH.
- To determine how ASPM mutations lead to the MCPH phenotype.
Main Methods:
- Utilized siRNA to deplete ASPM in cultured U2OS cells.
- Analyzed mitotic spindle orientation, cell division, and protein localization in ASPM-depleted cells and MCPH patient fibroblasts.
- Expressed dominant-negative ASPM C-terminal fragments to assess their impact on cell division.
Main Results:
- ASPM is a microtubule minus end-associated protein recruited to the spindle pole matrix in a microtubule-dependent manner.
- ASPM depletion disrupts mitotic spindle orientation and cytokinesis, leading to cell division failure.
- A pathogenic ASPM mutation in MCPH patients results in a variant protein with reduced spindle pole localization.
- Expression of ASPM C-terminal fragments causes severe spindle assembly and cytokinesis defects.
Conclusions:
- ASPM is essential for spindle organization, positioning, and cytokinesis in all dividing cells.
- The C-terminus of ASPM is critical for its localization and function.
- ASPM mutations likely cause MCPH through mitotic aberrations during neurogenesis, specifically affecting NPC symmetrical division and progenitor pool expansion.
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