NDE1-Mediated Regulation of Neural Progenitor Regional Identity and Its Implication in Microcephaly

Despite their significance, the genetic and molecular bases of neurodevelopmental disorders remain poorly understood. In this study, using human brain organoids and mouse models, we show that loss of NDE1, a gene closely associated with microcephaly, disrupts progenitor identity, prolongs mitosis, and alters regional patterning in the forebrain. NDE1 knockout leads to a caudal identity shift of neural progenitor cells in the organoids and mouse brains, coinciding with aberrant ERK signaling. Notably, downstream activation of the ERK pathway restored rostral PAX6 expression in human brain organoids. Parallel analyses of Nde1 knockout mice confirmed disrupted regional patterning of the forebrain. Together, our data establish NDE1 as a critical regulator of early human brain regionalization and elucidate molecular mechanisms underlying the structural abnormalities observed in NDE1-associated microcephaly. Here, the authors show that NDE1 regulates the regional identity of human neural progenitor cells, and that its loss leads to progenitor caudalization through disrupted ERK signaling. Restoration of ERK activity rescues rostral patterning in the NDE1-deficient background.

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Journal
Nature Communications
Published
2026-09-28
DOI
https://doi.org/10.1038/s41467-026-78201-9
Primary Topic
Neurogenesis and neuroplasticity mechanisms
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article
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article

NDE1-Mediated Regulation of Neural Progenitor Regional Identity and Its Implication in Microcephaly

Bidisha Bhattacharya, Jeyoon Bok, Xufeng Xue, Tsviya Olender et al.
Nature Communications
Neurogenesis and neuroplasticity mechanisms
article

NDE1-Mediated Regulation of Neural Progenitor Regional Identity and Its Implication in Microcephaly

Bidisha Bhattacharya, Jeyoon Bok, Xufeng Xue, Tsviya Olender, Rami Yair Tshuva, Orly Reiner, Aditya Kshirsagar, Mio Nonaka, Jianping Fu, Miri Danan-Gotthold, Tamar Sapir
article en

Abstract

Despite their significance, the genetic and molecular bases of neurodevelopmental disorders remain poorly understood. In this study, using human brain organoids and mouse models, we show that loss of NDE1, a gene closely associated with microcephaly, disrupts progenitor identity, prolongs mitosis, and alters regional patterning in the forebrain. NDE1 knockout leads to a caudal identity shift of neural progenitor cells in the organoids and mouse brains, coinciding with aberrant ERK signaling. Notably, downstream activation of the ERK pathway restored rostral PAX6 expression in human brain organoids. Parallel analyses of Nde1 knockout mice confirmed disrupted regional patterning of the forebrain. Together, our data establish NDE1 as a critical regulator of early human brain regionalization and elucidate molecular mechanisms underlying the structural abnormalities observed in NDE1-associated microcephaly. Here, the authors show that NDE1 regulates the regional identity of human neural progenitor cells, and that its loss leads to progenitor caudalization through disrupted ERK signaling. Restoration of ERK activity rescues rostral patterning in the NDE1-deficient background.

Nature Communications
Cincinnati Children's Hospital Medical Center (US), University of Michigan (US), Weizmann Institute of Science (IL)
Life in Land
Openalex Percentile: Top 15%
Neurogenesis and neuroplasticity mechanisms
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NDE1-Mediated Regulation of Neural Progenitor Regional Identity and Its Implication in Microcephaly — Bidisha Bhattacharya, Jeyoon Bok, et al. · Nature Communications (2026) | TGRS Research Map | TGRS