Stem-cell modeling of cerebellar dysfunction of Angelman syndrome

Angelman syndrome is a severe neurodevelopmental disorder caused by loss of function of the maternal allele of the neuron-specific imprinted gene UBE3A. Although Angelman syndrome presents with developmental delay, ataxia, epilepsy, and speech impairment, the contribution of specific brain regions, particularly the cerebellum, remains unclear. To address this, we developed a stem cell-based model of regionally patterned human cerebellar organoids derived from Angelman syndrome patient-induced pluripotent stem cells carrying class II deletions and unrelated unaffected control lines, followed by maturation in two-dimensional cultures. These cerebellar organoids recapitulate cerebellar lineage specification and neuron-specific UBE3A imprinting. Angelman syndrome organoids display reduced size, impaired neuroepithelial expansion, and decreased expression of progenitor markers. At later stages, transcriptomic and functional analyses reveal delayed neuronal maturation, enrichment of apoptosis-related pathways, and altered network activity, including enhanced excitability. Together, these findings establish cerebellar organoids as a relevant platform for future mechanistic studies of cerebellar dysfunction in Angelman syndrome and therapeutic screening aimed at targeting cerebellar dysfunction in this disease. Cerebellar differentiation of Angelman syndrome patient-derived iPSC lines shows impaired early progenitor expansion and delayed neuronal maturation, leading to disease-specific impairments in neuronal activity and survival.

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Journal
Communications Biology
Published
2026-09-28
DOI
https://doi.org/10.1038/s42003-026-11008-y
Primary Topic
Genetic Syndromes and Imprinting
Type
article
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article

Stem-cell modeling of cerebellar dysfunction of Angelman syndrome

Joana Gonçalves‐Ribeiro, Laura Steenpaß, Sandra Henriques Vaz, Evguenia Bekman et al.
Communications Biology
Genetic Syndromes and Imprinting
article

Stem-cell modeling of cerebellar dysfunction of Angelman syndrome

Joana Gonçalves‐Ribeiro, Laura Steenpaß, Sandra Henriques Vaz, Evguenia Bekman, Adriana A. Vieira, Tiago G. Fernandes, Maud Borensztein, Carina Maranga, Miguel Casanova, Simão Teixeira da Rocha, Teresa Pereira Silva, João Camões dos Santos, Karim Chébli
article en

Abstract

Angelman syndrome is a severe neurodevelopmental disorder caused by loss of function of the maternal allele of the neuron-specific imprinted gene UBE3A. Although Angelman syndrome presents with developmental delay, ataxia, epilepsy, and speech impairment, the contribution of specific brain regions, particularly the cerebellum, remains unclear. To address this, we developed a stem cell-based model of regionally patterned human cerebellar organoids derived from Angelman syndrome patient-induced pluripotent stem cells carrying class II deletions and unrelated unaffected control lines, followed by maturation in two-dimensional cultures. These cerebellar organoids recapitulate cerebellar lineage specification and neuron-specific UBE3A imprinting. Angelman syndrome organoids display reduced size, impaired neuroepithelial expansion, and decreased expression of progenitor markers. At later stages, transcriptomic and functional analyses reveal delayed neuronal maturation, enrichment of apoptosis-related pathways, and altered network activity, including enhanced excitability. Together, these findings establish cerebellar organoids as a relevant platform for future mechanistic studies of cerebellar dysfunction in Angelman syndrome and therapeutic screening aimed at targeting cerebellar dysfunction in this disease. Cerebellar differentiation of Angelman syndrome patient-derived iPSC lines shows impaired early progenitor expansion and delayed neuronal maturation, leading to disease-specific impairments in neuronal activity and survival.

Communications Biology
Centre National de la Recherche Scientifique (FR), University of Lisbon (PT), Université de Montpellier (FR), Institut de Génétique Moléculaire de Montpellier (FR), Instituto Superior Técnico (PT), Centro Cardiovascular da Universidade de Lisboa (PT), Gulbenkian Institute for Molecular Medicine (PT), Centro de Investigação Interdisciplinar Egas Moniz (PT), Institute for Bioengineering and Biosciences (PT), University College London (GB), Leibniz Institute DSMZ – German Collection of Microorganisms and Cell Cultures (DE), Technische Universität Braunschweig (DE)
Good health and well-being
Openalex Percentile: Top 12%
Genetic Syndromes and Imprinting
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