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Updated: May 25, 2026

In Vitro Modeling of Down Syndrome Neurogenesis Using Human-Induced Pluripotent Stem Cells
Published on: March 7, 2025
Effect of DYRK1A activity inhibition on development of neuronal progenitors isolated from Ts65Dn mice
Bozena Mazur-Kolecka1, Adam Golabek, Elizabeth Kida
1Department of Developmental Neurobiology, New York State Institute for Basic Research in Developmental Disabilities, Staten Island, New York, USA. bozena.mazur-kolecka@opwdd.ny.gov
Abstract:
Overexpression of dual-specificity tyrosine-(Y)-phosphorylation-regulated kinase 1A (DYRK1A), encoded by a gene located in the Down syndrome (DS) critical region, is considered a major contributor to developmental abnormalities in DS. DYRK1A regulates numerous genes involved in neuronal commitment, differentiation, maturation, and apoptosis. Because alterations of neurogenesis could lead to impaired brain development and mental retardation in individuals with DS, pharmacological normalization of DYRK1A activity has been postulated as DS therapy. We tested the effect of harmine, a specific DYRK1A inhibitor, on the development of neuronal progenitor cells (NPCs) isolated from the periventricular zone of newborn mice with segmental trisomy 16 (Ts65Dn mice), a mouse model for DS that overexpresses Dyrk1A by 1.5-fold. Trisomy did not affect the ability of NPCs to expand in culture. Twenty-four hours after stimulation of migration and neuronal differentiation, NPCs showed increased expression of Dyrk1A, particularly in the trisomic cultures. After 7 days, NPCs developed into a heterogeneous population of differentiating neurons and astrocytes that expressed Dyrk1A in the nuclei. In comparison with disomic cells, NPCs with trisomy showed premature neuronal differentiation and enhanced γ-aminobutyric acid (GABA)-ergic differentiation, but astrocyte development was unchanged. Harmine prevented premature neuronal maturation of trisomic NPCs but not acceleration of GABA-ergic development. In control NPCs, harmine treatment caused altered neuronal development of NPCs, similar to that in trisomic NPCs with Dyrk1A overexpression. This study suggests that pharmacological normalization of DYRK1A activity may have a potential role in DS therapy.
Insights
Dual-specificity tyrosine-(Y)-phosphorylation-regulated kinase 1A (DYRK1A) overexpression contributes to Down syndrome (DS) developmental issues. Harmine, a DYRK1A inhibitor, shows potential for normalizing neurodevelopment in DS models.
Area of Science:
- Neuroscience
- Developmental Biology
- Genetics
Background:
- Overexpression of DYRK1A, located in the Down syndrome critical region, is linked to developmental abnormalities in DS.
- DYRK1A influences genes crucial for neurogenesis, impacting brain development and cognitive function.
Purpose of the Study:
- To investigate the effect of harmine, a DYRK1A inhibitor, on neuronal progenitor cells (NPCs) from a mouse model of Down syndrome (Ts65Dn mice).
- To assess the therapeutic potential of modulating DYRK1A activity for Down syndrome treatment.
Main Methods:
- Utilized NPCs from Ts65Dn mice (DS model) and control mice.
- Administered harmine, a specific DYRK1A inhibitor, to assess its impact on NPC differentiation and maturation.
- Analyzed changes in neuronal and astrocyte development, including GABAergic differentiation.
Main Results:
- Trisomic NPCs exhibited premature neuronal differentiation and enhanced GABAergic differentiation compared to disomic cells.
- Harmine treatment prevented premature neuronal maturation in trisomic NPCs but did not affect accelerated GABAergic development.
- Harmine altered neuronal development in control NPCs, mimicking effects seen in trisomic NPCs.
Conclusions:
- Pharmacological inhibition of DYRK1A with harmine shows promise in normalizing neurodevelopmental alterations in a Down syndrome mouse model.
- Targeting DYRK1A activity represents a potential therapeutic strategy for addressing cognitive impairments associated with Down syndrome.

