A Brain Anti-Senescence Transcriptional Program Triggered by Hypothalamic-Derived Exosomal microRNAs.
Josefa KrarupLucas ArayaFelipe ÁlvarezDaniel A BórquezPamela J UrrutiaPublished in: International journal of molecular sciences (2024)
In contrast to the hypothesis that aging results from cell-autonomous deterioration processes, the programmed longevity theory proposes that aging arises from a partial inactivation of a "longevity program" aimed at maintaining youthfulness in organisms. Supporting this hypothesis, age-related changes in organisms can be reversed by factors circulating in young blood. Concordantly, the endocrine secretion of exosomal microRNAs (miRNAs) by hypothalamic neural stem cells (htNSCs) regulates the aging rate by enhancing physiological fitness in young animals. However, the specific molecular mechanisms through which hypothalamic-derived miRNAs exert their anti-aging effects remain unexplored. Using experimentally validated miRNA-target gene interactions and single-cell transcriptomic data of brain cells during aging and heterochronic parabiosis, we identify the main pathways controlled by these miRNAs and the cell-type-specific gene networks that are altered due to age-related loss of htNSCs and the subsequent decline in specific miRNA levels in the cerebrospinal fluid (CSF). Our bioinformatics analysis suggests that these miRNAs modulate pathways associated with senescence and cellular stress response, targeting crucial genes such as Cdkn2a , Rps27 , and Txnip . The oligodendrocyte lineage appears to be the most responsive to age-dependent loss of exosomal miRNA, leading to significant derepression of several miRNA target genes. Furthermore, heterochronic parabiosis can reverse age-related upregulation of specific miRNA-targeted genes, predominantly in brain endothelial cells, including senescence promoting genes such as Cdkn1a and Btg2 . Our findings support the presence of an anti-senescence mechanism triggered by the endocrine secretion of htNSC-derived exosomal miRNAs, which is associated with a youthful transcriptional signature.
Keyphrases
- bioinformatics analysis
- endothelial cells
- single cell
- genome wide
- genome wide identification
- dna damage
- transcription factor
- rna seq
- cerebrospinal fluid
- resting state
- genome wide analysis
- stress induced
- cancer therapy
- gene expression
- copy number
- neural stem cells
- induced apoptosis
- quality improvement
- dna methylation
- body composition
- middle aged
- gram negative
- cell therapy
- artificial intelligence
- physical activity
- electronic health record
- high glucose
- big data
- high throughput
- heat shock
- oxidative stress
- cell cycle arrest
- heat shock protein
- contrast enhanced