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Updated: Oct 13, 2025

Rapid Detection of Neurodevelopmental Phenotypes in Human Neural Precursor Cells NPCs
Published on: March 2, 2018
Molecular Changes in Prader-Willi Syndrome Neurons Reveals Clues About Increased Autism Susceptibility
A Kaitlyn Victor1,2, Martin Donaldson3, Daniel Johnson4
1IPBS Program, Neuroscience Institute, University of Tennessee Health Science Center, Memphis, TN, United States.
Insights
Mitochondrial defects in neurons may explain the higher incidence of autism spectrum disorder (ASD) in Prader-Willi syndrome with maternal uniparental disomy (PW-UPD). This study identified key molecular changes in PW-UPD neurons.
Area of Science:
- Neuroscience
- Genetics
- Developmental Biology
Background:
- Prader-Willi syndrome (PWS) is a complex neurodevelopmental disorder.
- PWS is often caused by genetic deletions on chromosome 15 or maternal uniparental disomy (PW-UPD).
- Individuals with PW-UPD have an elevated risk of autism spectrum disorder (ASD).
Purpose of the Study:
- To investigate the molecular underpinnings of increased ASD risk in PW-UPD.
- To identify molecular differences in neurons derived from PW-UPD individuals with and without ASD.
Main Methods:
- Dental pulp stem cells (DPSC) from controls and PWS subjects were differentiated into neurons.
- mRNA sequencing was performed to identify differentially expressed transcripts.
- Immunocytochemistry and immunoblots were used for downstream protein analysis.
Main Results:
- Nine transcripts outside the PWS critical region were identified as potentially contributing to PWS phenotypes.
- A significant global reduction in mitochondrial transcripts was observed in PW-UPD neurons with ASD.
- Decreased mitochondrial abundance and altered mitochondrial morphology were confirmed in these neurons.
Conclusions:
- The identified transcripts may indicate PWS-specific neurodevelopmental defects.
- Mitochondrial dysfunction in developing neurons is a potential mechanism for the increased ASD incidence in PW-UPD.
- These findings highlight the role of mitochondrial health in neurodevelopmental outcomes in PWS.
Abstract:
Background: Prader-Willi syndrome (PWS) is a neurodevelopmental disorder characterized by hormonal dysregulation, obesity, intellectual disability, and behavioral problems. Most PWS cases are caused by paternal interstitial deletions of 15q11.2-q13.1, while a smaller number of cases are caused by chromosome 15 maternal uniparental disomy (PW-UPD). Children with PW-UPD are at higher risk for developing autism spectrum disorder (ASD) than the neurotypical population. In this study, we used expression analysis of PW-UPD neurons to try to identify the molecular cause for increased autism risk. Methods: Dental pulp stem cells (DPSC) from neurotypical control and PWS subjects were differentiated to neurons for mRNA sequencing. Significantly differentially expressed transcripts among all groups were identified. Downstream protein analysis including immunocytochemistry and immunoblots were performed to confirm the transcript level data and pathway enrichment findings. Results: We identified 9 transcripts outside of the PWS critical region (15q11.2-q13.1) that may contribute to core PWS phenotypes. Moreover, we discovered a global reduction in mitochondrial transcripts in the PW-UPD + ASD group. We also found decreased mitochondrial abundance along with mitochondrial aggregates in the cell body and neural projections of +ASD neurons. Conclusion: The 9 transcripts we identified common to all PWS subtypes may reveal PWS specific defects during neurodevelopment. Importantly, we found a global reduction in mitochondrial transcripts in PW-UPD + ASD neurons versus control and other PWS subtypes. We then confirmed mitochondrial defects in neurons from individuals with PWS at the cellular level. Quantification of this phenotype supports our hypothesis that the increased incidence of ASD in PW-UPD subjects may arise from mitochondrial defects in developing neurons.
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