Confined migration induces non-lethal DNA damage in developing neurons

Ограниченная миграция вызывает нежизнеугрожающий повреждение ДНК в развивающихся нейронах
Takahiro Furuta, Takumi Kawaue, Andrés Canela, Yusuke Kishi, Mai Saeki, Junko Kurisu, Hiroyuki Sasanuma, Gianluca Grenci, Fumiyoshi Ishidate, Zhejing Zhang, Peilin Zou, Naotaka Nakazawa, Noriko Takeda, Maki Utsunomiya, Merve Bilgic, Mineko Kengaku
2026-06-17

DNA double-strand breaksconfined migrationneuronal migrationnon-homologous end-joiningtopoisomerase IIβ
Migratory cells tend to have soft nuclei that deform and penetrate narrow spaces1,2. Extensive nuclear deformation during migration can cause nuclear-envelope rupture and DNA damage in cancer cells, which may contribute to malignant transformation during tumour progression3–6. However, the importance of DNA damage in physiological migration is less well understood. Here we demonstrate that the migration of neurons in developing cerebral and cerebellar cortices is accompanied by massive DNA double-stranded breaks (DSBs) due to mechanostress during passage through narrow interstitial spaces. In contrast to many other migratory cells, these DSBs occur without detectable nuclear envelope rupture. Confined migration increases topoisomerase-IIβ covalently bound DSBs, and these lesions are repaired through non-homologous end-joining during brain development without causing cell death. Genome sequencing revealed that DSBs tend to occur at transcriptionally inactive regions. The deletion of ligase IV at the onset of neuronal migration leads to persistent DSB accumulation in cerebellar neurons with moderate transcriptional changes in genes related to synaptic function, neuronal development and stress and immune responses. The mutant mouse develops mild motor deficits in later life, suggesting that the DNA damage generated during normal brain development poses a potential disease risk if left unrepaired. The migration of neurons in developing cerebral and cerebellar cortices is accompanied by massive DNA double-strand breaks due to mechanostress during passage through narrow interstitial spaces.
1
Confined neuronal migration increases topoisomerase-IIβ covalently bound DSBs, and these lesions are repaired by non-homologous end-joining (NHEJ) during brain development without causing cell death.
2
Deletion of DNA ligase IV at neuronal migration onset causes persistent DSB accumulation, moderate transcriptional changes in synaptic, developmental, stress and immune genes, and later-life mild motor deficits in mutant mice, indicating unrepaired developmental DNA damage poses disease risk.
3
Genome sequencing shows migration-associated DSBs preferentially occur at transcriptionally inactive genomic regions.
4
Migration of developing cerebral and cerebellar neurons causes massive DNA double-strand breaks (DSBs) due to mechanical stress during passage through narrow interstitial spaces.
5
These migration-associated DSBs occur without detectable nuclear envelope rupture, unlike previously observed in some cancer cells.

Neurons migrating through confined narrow interstitial spaces in developing cerebral and cerebellar cortices

Mechanically induced DNA double-strand breaks (DSBs) during confined migration, their generation (including topoisomerase-IIβ–linked lesions), repair by non-homologous end-joining, genomic distribution, and impacts when unrepaired

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2026-06-17
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Takahiro Furuta
Takumi Kawaue
Andrés Canela
Yusuke Kishi
Mai Saeki
Junko Kurisu
Hiroyuki Sasanuma
Gianluca Grenci
Fumiyoshi Ishidate
Zhejing Zhang
Peilin Zou
Naotaka Nakazawa
Noriko Takeda
Maki Utsunomiya
Merve Bilgic
Mineko Kengaku
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