Candesartan Neuroprotection in Rat Primary Neurons Negatively Correlates with Aging and Senescence: a Transcriptomic
Abdel G Elkahloun1, Juan M Saavedra2
1Comparative Genomics and Cancer Genetics Branch, National Human Genome Research Institute, National Institutes of Health, Bethesda, MD, 20892, USA.
Abstract:
Preclinical experiments and clinical trials demonstrated that angiotensin II AT1 receptor overactivity associates with aging and cellular senescence and that AT1 receptor blockers (ARBs) protect from age-related brain disorders. In a primary neuronal culture submitted to glutamate excitotoxicity, gene set enrichment analysis (GSEA) revealed expression of several hundred genes altered by glutamate and normalized by candesartan correlated with changes in expression in Alzheimer's patient's hippocampus. To further establish whether our data correlated with gene expression alterations associated with aging and senescence, we compared our global transcriptional data with additional published datasets, including alterations in gene expression in the neocortex and cerebellum of old mice, human frontal cortex after age of 40, gene alterations in the Werner syndrome, rodent caloric restriction, Ras and oncogene-induced senescence in fibroblasts, and to tissues besides the brain such as the muscle and kidney. The most significant and enriched pathways associated with aging and senescence were positively correlated with alterations in gene expression in glutamate-injured neurons and, conversely, negatively correlated when the injured neurons were treated with candesartan. Our results involve multiple genes and pathways, including CAV1, CCND1, CDKN1A, CHEK1, ICAM1, IL-1B, IL-6, MAPK14, PTGS2, SERPINE1, and TP53, encoding proteins associated with aging and senescence hallmarks, such as inflammation, oxidative stress, cell cycle and mitochondrial function alterations, insulin resistance, genomic instability including telomere shortening and DNA damage, and the senescent-associated secretory phenotype. Our results demonstrate that AT1 receptor blockade ameliorates central mechanisms of aging and senescence. Using ARBs for prevention and treatment of age-related disorders has important translational value.
Insights
Angiotensin II AT1 receptor blockers (ARBs) show potential in combating aging and brain disorders. Treatment with candesartan normalized gene expression in glutamate-injured neurons, suggesting ARBs can ameliorate aging and senescence mechanisms.
Area of Science:
- Neuroscience
- Gerontology
- Pharmacology
Background:
- Angiotensin II AT1 receptor overactivity is linked to aging and cellular senescence.
- AT1 receptor blockers (ARBs) have shown protective effects against age-related brain disorders.
- Glutamate excitotoxicity impacts neuronal function and is relevant to neurodegenerative conditions.
Purpose of the Study:
- To investigate the effects of AT1 receptor blockade on gene expression in neurons subjected to excitotoxicity.
- To correlate these gene expression changes with known aging and senescence pathways.
- To explore the therapeutic potential of ARBs in mitigating age-related neurological decline.
Main Methods:
- Primary neuronal cultures were exposed to glutamate excitotoxicity.
- Gene expression was analyzed using gene set enrichment analysis (GSEA).
- Transcriptional data was compared with public datasets related to aging, senescence, and neurodegeneration.
Main Results:
- Glutamate injury altered hundreds of genes, with expression patterns correlating with Alzheimer's disease hippocampus.
- Candesartan treatment normalized glutamate-induced gene expression changes.
- Enriched pathways associated with aging and senescence were significantly correlated with glutamate injury and reversed by candesartan.
Conclusions:
- AT1 receptor blockade, exemplified by candesartan, ameliorates central mechanisms of aging and senescence in neurons.
- The study identifies key genes and pathways (e.g., CAV1, TP53, inflammation, oxidative stress) involved in this process.
- ARBs hold significant translational value for the prevention and treatment of age-related brain disorders.
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