(2023-2.1.2-KDP-2023-00016) Támogató: Kulturális és Innovációs Minisztérium Nemzeti
Kutatási Fejlesztési és Innovációs Alap
National Brain Programme(NAP2022-I-4/2022 3.0)
MILAB(RRF-2.3.1-21-2022-00004) Támogató: NKFIH
(TKCS-2024/37)
Szakterületek:
Orvos- és egészségtudomány
Aging is the primary risk factor for most neurodegenerative diseases, yet the cell-type-specific
progression of brain aging remains poorly understood. Here, human cell-type-specific
transcriptomic aging clocks are developed using high-quality single-nucleus RNA sequencing
data from post mortem human prefrontal cortex tissue of 31 donors aged 18-94 years,
encompassing 73,941 high-quality nuclei. Distinct transcriptomic changes are observed
across major cell types, including upregulation of inflammatory response genes in
microglia from older samples. Aging clocks trained on each major cell type accurately
predict chronological age, capture biologically relevant pathways, and remain robust
in independent single-nucleus RNA-sequencing datasets, underscoring their broad applicability.
Notably, cell-type-specific age acceleration is identified in individuals with Alzheimer's
disease and schizophrenia, suggesting altered aging trajectories in these conditions.
These findings demonstrate the feasibility of cell-type-specific transcriptomic clocks
to measure biological aging in the human brain and highlight potential mechanisms
of selective vulnerability in neurodegenerative diseases.