唐氏综合症
染色质
神经科学
转录因子
21号染色体
转录组
小头畸形
大脑皮层
三体
皮质(解剖学)
6号乘客
神经干细胞
神经发育
神经发育障碍
生物
基因
遗传学
转录调控
抄写(语言学)
细胞生物学
智力残疾
胶质3
基因表达调控
表观基因组
体外
染色质重塑
人脑
作者
Michael Lattke,Wee Leng Tan,Wee Leng Tan,Salil K. Sukumaran,Marcos Sintes,Srinivasan Sakthivel,Jonathan Tan,Auriel Theodora Jacobea Lim,Jonathan Tan,Katerina Rekopoulou,Nik Matthews,Ivan Alić,Željka Krsnik,Dean Nizetic,Boaz Levi,Vincenzo De Paola
标识
DOI:10.1038/s41591-026-04211-1
摘要
Down syndrome (DS), caused by trisomy of chromosome 21, is the leading genetic cause of intellectual disability, yet the mechanisms disrupting fetal brain development remain unclear. We performed single-cell transcriptomic and chromatin accessibility profiling of approximately 250,000 cells from 15 DS and 15 control human fetal cortices (10-20 weeks postconception). Our analysis revealed a subtype-specific reduction in RORB- and FOXP1-expressing excitatory neurons and widespread disruption of neurodevelopmental transcriptional programs. Chromosome 21 transcription factors BACH1, PKNOX1 and GABPA emerged as dosage-sensitive hubs regulating genes linked to intellectual disability. Antisense oligonucleotide-mediated normalization of these transcription factors in human neural progenitors in vitro partially rescued target gene expression. Benchmarking a humanized in vivo model captured additional molecular and cellular signatures of DS, complementing the in vitro model. Together, we present a resource defining the gene-regulatory landscape underlying cortical development in DS and highlight molecular pathways for further investigation.
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