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Updated: Aug 17, 2026

Combining Double Fluorescence In Situ Hybridization with Immunolabelling for Detection of the Expression of Three Genes in Mouse Brain Sections
Published on: March 26, 2016
The microcephaly ASPM gene is expressed in proliferating tissues and encodes for a mitotic spindle protein
Natalay Kouprina1, Adam Pavlicek, N Keith Collins
1Laboratory of Biosystems and Cancer, National Cancer Institute, Bethesda, MD 20892, USA.
Abstract:
The most common cause of primary autosomal recessive microcephaly (MCPH) appears to be mutations in the ASPM gene which is involved in the regulation of neurogenesis. The predicted gene product contains two putative N-terminal calponin-homology (CH) domains and a block of putative calmodulin-binding IQ domains common in actin binding cytoskeletal and signaling proteins. Previous studies in mouse suggest that ASPM is preferentially expressed in the developing brain. Our analyses reveal that ASPM is widely expressed in fetal and adult tissues and upregulated in malignant cells. Several alternatively spliced variants encoding putative ASPM isoforms with different numbers of IQ motifs were identified. The major ASPM transcript contains 81 IQ domains, most of which are organized into a higher order repeat (HOR) structure. Another prominent spliced form contains an in-frame deletion of exon 18 and encodes 14 IQ domains not organized into a HOR. This variant is conserved in mouse. Other spliced variants lacking both CH domains and a part of the IQ motifs were also detected, suggesting the existence of isoforms with potentially different functions. To elucidate the biochemical function of human ASPM, we developed peptide specific antibodies to the N- and C-termini of ASPM. In a western analysis of proteins from cultured human and mouse cells, the antibodies detected bands with mobilities corresponding to the predicted ASPM isoforms. Immunostaining of cultured human cells with antibodies revealed that ASPM is localized in the spindle poles during mitosis. This finding suggests that MCPH is the consequence of an impairment in mitotic spindle regulation in cortical progenitors due to mutations in ASPM.
Insights
Mutations in the ASPM gene, crucial for neurogenesis, cause primary autosomal recessive microcephaly (MCPH). ASPM protein localizes to spindle poles during mitosis, suggesting its role in regulating cell division and brain development.
Area of Science:
- Genetics
- Neuroscience
- Cell Biology
Background:
- Primary autosomal recessive microcephaly (MCPH) is often caused by mutations in the ASPM gene.
- ASPM is involved in neurogenesis and its protein product has domains characteristic of actin-binding proteins.
Purpose of the Study:
- To investigate the biochemical function and localization of the human ASPM protein.
- To understand the role of ASPM in neurogenesis and its implications for MCPH.
Main Methods:
- Analysis of ASPM gene expression and alternative splicing.
- Development of peptide-specific antibodies for ASPM detection.
- Western blot analysis and immunostaining of ASPM in human and mouse cells.
Main Results:
- ASPM is widely expressed in various tissues and upregulated in malignant cells.
- Multiple alternatively spliced ASPM variants with varying IQ domain numbers were identified.
- ASPM localizes to spindle poles during mitosis in human cells.
Conclusions:
- ASPM plays a critical role in mitotic spindle regulation in cortical progenitors.
- Impairment of ASPM function due to mutations likely leads to MCPH.
- The identified ASPM isoforms may have distinct functional roles.
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