YY1 mutations disrupt corticogenesis through a cell type specific rewiring of cell-autonomous and non-cell-autonomous transcriptional programs

Marlene F Pereira 1, 2, 3
Veronica Finazzi 3
Ludovico Rizzuti 1, 2, 3
Davide Aprile 3
Vittorio Aiello 2, 3
Luca Mollica 4
Matteo Riva 4
Chiara Soriani 1
Francesco Dossena 3
Reinald Shyti 1, 3
Davide Castaldi 2, 3
Erika Tenderini 1
Maria Teresa Carminho-Rodrigues 5
Julien F. Bally 6
Bert B A De Vries 7
Michele Gabriele 1, 2, 8, 9, 10
Vitriolo A 1, 2, 3
Giuseppe Testa 1, 2, 3
Publication typeJournal Article
Publication date2025-02-22
scimago Q1
wos Q1
SJR4.022
CiteScore22.1
Impact factor10.1
ISSN13594184, 14765578
Abstract
Germline mutations of YY1 cause Gabriele-de Vries syndrome (GADEVS), a neurodevelopmental disorder featuring intellectual disability and a wide range of systemic manifestations. To dissect the cellular and molecular mechanisms underlying GADEVS, we combined large-scale imaging, single-cell multiomics and gene regulatory network reconstruction in 2D and 3D patient-derived physiopathologically relevant cell lineages. YY1 haploinsufficiency causes a pervasive alteration of cell type specific transcriptional networks, disrupting corticogenesis at the level of neural progenitors and terminally differentiated neurons, including cytoarchitectural defects reminiscent of GADEVS clinical features. Transcriptional alterations in neurons propagated to neighboring astrocytes through a major non-cell autonomous pro-inflammatory effect that grounds the rationale for modulatory interventions. Together, neurodevelopmental trajectories, synaptic formation and neuronal-astrocyte cross talk emerged as salient domains of YY1 dosage-dependent vulnerability. Mechanistically, cell type resolved reconstruction of gene regulatory networks uncovered the regulatory interplay between YY1, NEUROG2 and ETV5 and its aberrant rewiring in GADEVS. Our findings underscore the reach of advanced in vitro models in capturing developmental antecedents of clinical features and exposing their underlying mechanisms to guide the search for targeted interventions.
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Cold Spring Harbor Laboratory
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Pereira M. F. et al. YY1 mutations disrupt corticogenesis through a cell type specific rewiring of cell-autonomous and non-cell-autonomous transcriptional programs // Molecular Psychiatry. 2025.
GOST all authors (up to 50) Copy
Pereira M. F. et al. YY1 mutations disrupt corticogenesis through a cell type specific rewiring of cell-autonomous and non-cell-autonomous transcriptional programs // Molecular Psychiatry. 2025.
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TY - JOUR
DO - 10.1038/s41380-025-02929-x
UR - https://www.nature.com/articles/s41380-025-02929-x
TI - YY1 mutations disrupt corticogenesis through a cell type specific rewiring of cell-autonomous and non-cell-autonomous transcriptional programs
T2 - Molecular Psychiatry
AU - Pereira, Marlene F
AU - Finazzi, Veronica
AU - Rizzuti, Ludovico
AU - Aprile, Davide
AU - Aiello, Vittorio
AU - Mollica, Luca
AU - Riva, Matteo
AU - Soriani, Chiara
AU - Dossena, Francesco
AU - Shyti, Reinald
AU - Castaldi, Davide
AU - Tenderini, Erika
AU - Carminho-Rodrigues, Maria Teresa
AU - Bally, Julien F.
AU - De Vries, Bert B A
AU - Gabriele, Michele
AU - A, Vitriolo
AU - Testa, Giuseppe
PY - 2025
DA - 2025/02/22
PB - Springer Nature
SN - 1359-4184
SN - 1476-5578
ER -
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BibTex (up to 50 authors) Copy
@article{2025_Pereira,
author = {Marlene F Pereira and Veronica Finazzi and Ludovico Rizzuti and Davide Aprile and Vittorio Aiello and Luca Mollica and Matteo Riva and Chiara Soriani and Francesco Dossena and Reinald Shyti and Davide Castaldi and Erika Tenderini and Maria Teresa Carminho-Rodrigues and Julien F. Bally and Bert B A De Vries and Michele Gabriele and Vitriolo A and Giuseppe Testa and others},
title = {YY1 mutations disrupt corticogenesis through a cell type specific rewiring of cell-autonomous and non-cell-autonomous transcriptional programs},
journal = {Molecular Psychiatry},
year = {2025},
publisher = {Springer Nature},
month = {feb},
url = {https://www.nature.com/articles/s41380-025-02929-x},
doi = {10.1038/s41380-025-02929-x}
}