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Palacios, Y.

Publications and source records attributed to Palacios, Y..

2 recordsLinked to original sources

ZC4H2 loss of function is associated with temporal dysregulation of neural stem proliferation and neuron development

ZC4H2 is an X-linked zinc finger transcription factor essential for early neurodevelopment. Pathogenic variants in ZC4H2 are associated with both central and peripheral nervous system pathologies. The molecular and cellular mechanisms driving these phenotypes remain poorly understood, particularly in human female models that have undergone X chromosome inactivation. Neuronal models were differentiated from a human female cell line with a de novo Xq11.2 deletion causing ZC4H2 loss of function, associated with arthrogryposis multiplex congenita and cognitive impairment. Using iPSC-derived neural stem cells and cortical organoids, we identified premature neuronal differentiation, reduced BMP-SMAD signaling, and decreased SMAD1/5 phosphorylation. In cortical organoids, ZC4H2 deficiency altered neurogenesis timing, retaining proliferative progenitors while prematurely activating neuronal programs, leading to enlarged organoids with persistent dysregulation of gene programs required for complete neuronal maturation. We identified ZC4H2 target genes likely to mediate these phenotypes and tested a codon-optimized transgene showing both the restoration of SMAD1/5 phosphorylation, BMPR2 gene expression, and improved neuronal complexity. These results demonstrate effective ZC4H2 restoration in complex human models and highlight therapeutic potential for ZC4H2-linked neurodevelopmental disorders.

neuroscience↗

AAGGG repeat expansions trigger RFC1-independent synaptic dysregulation in human CANVAS Neurons

Cerebellar ataxia with neuropathy and vestibular areflexia syndrome (CANVAS) is a late onset, recessively inherited neurodegenerative disorder caused by biallelic, non-reference pentameric AAGGG(CCCTT) repeat expansions within the second intron of replication factor complex subunit 1 (RFC1). To investigate how these repeats cause disease, we generated CANVAS patient induced pluripotent stem cell (iPSC) derived neurons (iNeurons) and utilized calcium imaging and transcriptomic analysis to define repeat-elicited gain-of-function and loss-of-function contributions to neuronal toxicity. AAGGG repeat expansions do not alter neuronal RFC1 splicing, expression, or DNA repair pathway functions. In reporter assays, AAGGG repeats are translated into pentapeptide repeat proteins that selectively accumulate in CANVAS patient brains. However, neither these proteins nor repeat RNA foci were detected in iNeurons, and overexpression of these repeats in isolation did not induce neuronal toxicity. CANVAS iNeurons exhibit defects in neuronal development and diminished synaptic connectivity that is rescued by CRISPR deletion of a single expanded allele. These phenotypic deficits were not replicated by knockdown of RFC1 in control neurons and were not rescued by ectopic expression of RFC1. These findings support a repeat-dependent but RFC1-independent cause of neuronal dysfunction in CANVAS, with important implications for therapeutic development in this currently untreatable condition. SummaryHuman CANVAS neurons exhibit transcriptional and functional synaptic defects that are corrected by heterozygous repeat deletion but are independent of the gene within which they reside--RFC1.

neuroscience↗