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.

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.

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