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May 18, 2026Molecular Brain1 citationsOpen Access

REST deficiency and neurogenic-to-gliogenic shift in down syndrome human cerebral organoids

THTan HuangCLChong-Teik LimWLWei Li

Key Points

  • The study aims to identify the temporal regulatory events influencing neurogenic and gliogenic differentiation in Down syndrome cerebral organoids.
  • Used multi-timepoint transcriptomic analyses from existing datasets and machine-learning prioritization.
  • Validated findings in isogenic human iPSC-derived cerebral organoids.
  • Performed network modelling to identify key genes and modules associated with Down syndrome.
  • REST target genes were preferentially dysregulated in Down syndrome organoids, particularly at 90 days in vitro (DIV-90).
  • Marked reduction in REST mRNA and nuclear protein in trisomic organoids at DIV-90, indicating a shift towards gliogenic activation.
  • Identification of six REST-regulated hub genes linked to the neurogenic-to-gliogenic transition.

Abstract

Abstract Down syndrome (DS) features impaired cortical neurogenesis and excess gliogenesis, yet the temporal regulatory events driving this imbalance remain unclear. Here, we combine multi-timepoint transcriptomic analyses from publicly available datasets, network modelling, and machine-learning prioritization, with validation in isogenic human iPSC-derived cerebral organoids, to identify a discrete pathogenic window at 90 days in vitro (DIV 90). Across five developmental stages, REST target genes were preferentially dysregulated in DS organoids. WGCNA revealed a DS-associated module at DIV-90 that strongly overlapped with REST targets, and two orthogonal machine-learning approaches converged on six REST-regulated hub genes— CSTB , MCM3AP , PFKL , POFUT2 , PRMT2 , and RWDD2B . In trisomic organoids, REST mRNA and nuclear protein were markedly reduced at DIV-90, accompanied by diminished DCX expression and activation of NFIA and STAT3, suggesting a neurogenic-to-gliogenic fate transition. These findings suggest REST dysfunction as a potential temporal regulator of lineage imbalance in DS and highlight REST-linked networks as potential targets for early developmental intervention.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/6a0aad145ba8ef6d83b709b2https://doi.org/10.1186/s13041-026-01313-2
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