Related Experiment Video
Updated: Jun 9, 2026

Behavioral Characterization of an Angelman Syndrome Mouse Model
Published on: October 20, 2023
Mutations in mouse Aspm (abnormal spindle-like microcephaly associated) cause not only microcephaly but also major
Jeremy N Pulvers1, Jarosław Bryk, Jennifer L Fish
1Max Planck Institute of Molecular Cell Biology and Genetics, 01307 Dresden, Germany.
Abstract:
Mutations in ASPM (abnormal spindle-like microcephaly associated) cause primary microcephaly in humans, a disorder characterized by a major reduction in brain size in the apparent absence of nonneurological anomalies. The function of the Aspm protein in neural progenitor cell expansion, as well as its localization to the mitotic spindle and midbody, suggest that it regulates brain development by a cell division-related mechanism. Furthermore, evidence that positive selection affected ASPM during primate evolution has led to suggestions that such a function changed during primate evolution. Here, we report that in Aspm mutant mice, truncated Aspm proteins similar to those causing microcephaly in humans fail to localize to the midbody during M-phase and cause mild microcephaly. A human ASPM transgene rescues this phenotype but, interestingly, does not cause a gain of function. Strikingly, truncated Aspm proteins also cause a massive loss of germ cells, resulting in a severe reduction in testis and ovary size accompanied by reduced fertility. These germline effects, too, are fully rescued by the human ASPM transgene, indicating that ASPM is functionally similar in mice and humans. Our findings broaden the spectrum of phenotypic effects of ASPM mutations and raise the possibility that positive selection of ASPM during primate evolution reflects its function in the germline.
Insights
Mutations in the abnormal spindle-like microcephaly associated (ASPM) gene cause microcephaly. In mice, ASPM mutations also impact germ cells, suggesting a broader role in development and evolution.
Area of Science:
- Genetics
- Developmental Biology
- Evolutionary Biology
Background:
- Mutations in ASPM cause primary microcephaly, a human disorder with reduced brain size.
- ASPM protein's role in cell division suggests a mechanism for brain development regulation.
- ASPM has undergone positive selection during primate evolution, hinting at functional changes.
Purpose of the Study:
- To investigate the function of ASPM in a mouse model.
- To determine if ASPM mutations affect non-neural tissues.
- To explore the evolutionary significance of ASPM's function.
Main Methods:
- Generated Aspm mutant mice with truncated Aspm proteins.
- Administered a human ASPM transgene to rescue phenotypes.
- Analyzed brain size, germ cell populations, and fertility in mutant and rescued mice.
Main Results:
- Truncated Aspm proteins caused mild microcephaly and failed midbody localization in mice.
- A human ASPM transgene rescued microcephaly without gain of function.
- ASPM mutations led to significant germ cell loss, reduced organ size, and decreased fertility, all rescued by the human transgene.
Conclusions:
- ASPM is functionally conserved between humans and mice.
- ASPM mutations have broader phenotypic effects than previously known, including germline defects.
- The positive selection of ASPM in primates may be linked to its germline function.

