Related Experiment Video
Updated: May 12, 2026

Axon Stretch Growth: The Mechanotransduction of Neuronal Growth
Published on: August 10, 2011
Accelerated evolution of the ASPM gene controlling brain size begins prior to human brain expansion
Natalay Kouprina1, Adam Pavlicek, Ganeshwaran H Mochida
1Laboratory of Biosystems and Cancer, National Cancer Institute, Bethesda, Maryland, USA.
Abstract:
Primary microcephaly (MCPH) is a neurodevelopmental disorder characterized by global reduction in cerebral cortical volume. The microcephalic brain has a volume comparable to that of early hominids, raising the possibility that some MCPH genes may have been evolutionary targets in the expansion of the cerebral cortex in mammals and especially primates. Mutations in ASPM, which encodes the human homologue of a fly protein essential for spindle function, are the most common known cause of MCPH. Here we have isolated large genomic clones containing the complete ASPM gene, including promoter regions and introns, from chimpanzee, gorilla, orangutan, and rhesus macaque by transformation-associated recombination cloning in yeast. We have sequenced these clones and show that whereas much of the sequence of ASPM is substantially conserved among primates, specific segments are subject to high Ka/Ks ratios (nonsynonymous/synonymous DNA changes) consistent with strong positive selection for evolutionary change. The ASPM gene sequence shows accelerated evolution in the African hominoid clade, and this precedes hominid brain expansion by several million years. Gorilla and human lineages show particularly accelerated evolution in the IQ domain of ASPM. Moreover, ASPM regions under positive selection in primates are also the most highly diverged regions between primates and nonprimate mammals. We report the first direct application of TAR cloning technology to the study of human evolution. Our data suggest that evolutionary selection of specific segments of the ASPM sequence strongly relates to differences in cerebral cortical size.
Insights
ASPM gene evolution in primates, linked to brain size, shows accelerated changes in specific segments. These evolutionary shifts in ASPM may explain differences in cerebral cortical volume.
Area of Science:
- Evolutionary biology
- Genetics
- Neuroscience
Background:
- Primary microcephaly (MCPH) is a neurodevelopmental disorder causing reduced brain size.
- ASPM gene mutations are a common cause of MCPH.
- The ASPM gene's role in spindle function suggests a link to brain development and evolution.
Purpose of the Study:
- Investigate the evolutionary history of the ASPM gene in primates.
- Identify segments of ASPM under positive selection.
- Correlate ASPM evolution with cerebral cortical expansion.
Main Methods:
- Transformation-associated recombination (TAR) cloning in yeast to isolate large genomic clones of ASPM.
- DNA sequencing of ASPM clones from chimpanzee, gorilla, orangutan, and rhesus macaque.
- Analysis of Ka/Ks ratios to detect positive selection.
Main Results:
- ASPM gene sequence is largely conserved across primates, but specific segments show high Ka/Ks ratios, indicating positive selection.
- Accelerated evolution of ASPM observed in the African hominoid clade, preceding hominid brain expansion.
- Gorilla and human lineages exhibit accelerated evolution in the IQ domain of ASPM.
- Regions of ASPM under positive selection in primates are highly diverged from nonprimate mammals.
Conclusions:
- Evolutionary selection on specific ASPM segments is strongly associated with cerebral cortical size differences.
- ASPM is a key gene in primate brain evolution.
- TAR cloning technology is a valuable tool for studying human evolution.
Related Concept Videos
Genome Size and the Evolution of New Genes
Genome Size and the Evolution of New Genes

