Transcriptional profiles of immature neurons in aged human hippocampus track Alzheimer's pathology and cognitive resilience
(2026) In Cell Stem Cell 33(5). p.9-783- Abstract
The existence and functional significance of immature neurons in the adult human brain, particularly in the context of neurodegenerative disorders, remain an open question. Although rodent studies have highlighted active roles for adult-born immature neurons in the hippocampus both under healthy conditions and in Alzheimer's disease (AD), evidence from the human brain is limited and lacks detailed molecular characterization. To address this gap, we performed single-nucleus RNA sequencing in aged healthy, AD, and dementia-resilient human hippocampus samples to probe immature neuronal signatures and gene expression alterations associated with AD pathology and resilience. By applying an integrated experimental and computational pipeline,... (More)
The existence and functional significance of immature neurons in the adult human brain, particularly in the context of neurodegenerative disorders, remain an open question. Although rodent studies have highlighted active roles for adult-born immature neurons in the hippocampus both under healthy conditions and in Alzheimer's disease (AD), evidence from the human brain is limited and lacks detailed molecular characterization. To address this gap, we performed single-nucleus RNA sequencing in aged healthy, AD, and dementia-resilient human hippocampus samples to probe immature neuronal signatures and gene expression alterations associated with AD pathology and resilience. By applying an integrated experimental and computational pipeline, we identified persistent populations of immature neurons across all donor groups, with transcriptional profiles reflecting "juvenile" cellular functions, which are compromised in AD. Our findings suggest that the presence of these immature neuronal populations per se may actively contribute to maintaining homeostasis within the aged human hippocampus and to cognitive resilience in AD.
(Less)
- author
- publishing date
- 2026-05-07
- type
- Contribution to journal
- publication status
- published
- keywords
- Humans, Alzheimer Disease/pathology, Hippocampus/pathology, Neurons/metabolism, Aged, Aging/pathology, Male, Aged, 80 and over, Female, Cognition, Transcriptome/genetics, Gene Expression Profiling, Neurogenesis
- in
- Cell Stem Cell
- volume
- 33
- issue
- 5
- pages
- 9 - 783
- publisher
- Cell Press
- external identifiers
-
- pmid:42034060
- scopus:105038603859
- ISSN
- 1934-5909
- DOI
- 10.1016/j.stem.2026.04.002
- language
- English
- LU publication?
- no
- additional info
- Copyright © 2026 The Author(s). Published by Elsevier Inc. All rights reserved.
- id
- 8728f753-04df-462a-9bd8-330d4e9c7b72
- date added to LUP
- 2026-09-25 10:22:53
- date last changed
- 2026-09-26 04:00:34
@article{8728f753-04df-462a-9bd8-330d4e9c7b72,
abstract = {{<p>The existence and functional significance of immature neurons in the adult human brain, particularly in the context of neurodegenerative disorders, remain an open question. Although rodent studies have highlighted active roles for adult-born immature neurons in the hippocampus both under healthy conditions and in Alzheimer's disease (AD), evidence from the human brain is limited and lacks detailed molecular characterization. To address this gap, we performed single-nucleus RNA sequencing in aged healthy, AD, and dementia-resilient human hippocampus samples to probe immature neuronal signatures and gene expression alterations associated with AD pathology and resilience. By applying an integrated experimental and computational pipeline, we identified persistent populations of immature neurons across all donor groups, with transcriptional profiles reflecting "juvenile" cellular functions, which are compromised in AD. Our findings suggest that the presence of these immature neuronal populations per se may actively contribute to maintaining homeostasis within the aged human hippocampus and to cognitive resilience in AD.</p>}},
author = {{Tosoni, Giorgia and Ayyildiz, Dilara and Snoeck, Sarah and Moreno-Jiménez, Elena P and Penning, Amber and Santiago-Mujika, Estibaliz and Ruiz Ormaechea, Olmo and Lee, Hyunah and Poovathingal, Suresh and Davie, Kristofer and Bryois, Julien and Macnair, Will and Anink, Jasper and De Vries, Luuk E and Farmand, Sahand and Nutma, Erik and Swaab, Dick F and Aronica, Eleonora and Middeldorp, Jinte and Thuret, Sandrine and Roybon, Laurent and Basak, Onur and Fitzsimons, Carlos P and Lucassen, Paul J and Salta, Evgenia}},
issn = {{1934-5909}},
keywords = {{Humans; Alzheimer Disease/pathology; Hippocampus/pathology; Neurons/metabolism; Aged; Aging/pathology; Male; Aged, 80 and over; Female; Cognition; Transcriptome/genetics; Gene Expression Profiling; Neurogenesis}},
language = {{eng}},
month = {{05}},
number = {{5}},
pages = {{9--783}},
publisher = {{Cell Press}},
series = {{Cell Stem Cell}},
title = {{Transcriptional profiles of immature neurons in aged human hippocampus track Alzheimer's pathology and cognitive resilience}},
url = {{http://dx.doi.org/10.1016/j.stem.2026.04.002}},
doi = {{10.1016/j.stem.2026.04.002}},
volume = {{33}},
year = {{2026}},
}
