SynthesisCellular and molecular neurobiology2024
Can Environmental Enrichment Modulate Epigenetic Processes in the Central Nervous System Under Adverse Environmental Conditions? A Systematic Review.
Synthesis in Cellular and molecular neurobiology, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Prenatal road traffic noise impairs early testicular development in Sprague-Dawley offspring: pharmacological rescue by melatonin and edaravone; developmental preservation by environmental enrichment.Naunyn-Schmiedeberg's archives of pharmacology · 2026Article
- Epigenetically driven impairment of BDNF-ARC signaling contributes to circadian and cognitive disarray in a mouse model of postoperative delirium.Alzheimer's & dementia : the journal of the Alzheimer's Association · 2026Article
- Early-life adversity in rodents: Experimental design is of the essence.Neurobiology of stress · 2026Article
- Epigenetic Modulation of Exercise Adaptation: The Role of Dietary Supplementation in Athletic Performance.Genes · 2026Review
- A new approach for understanding the association between chronic stress in childhood and psychotic symptoms in schizophrenia patients from mediating role of lncRNA.Schizophrenia (Heidelberg, Germany) · 2026Article
- The role of sensory experience in the maturation of prefrontal cortical circuits.Frontiers in neuroscience · 2026Review
- Relationship between enriched environment and neurodegeneration: a review from mechanism to therapy.Clinical epigenetics · 2025Review
Corrections and comments
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Authors and funding
10 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
The aim of this paper is to summarize the available evidence in the literature regarding the effects generated by exposure to an enriched environment (EE) on the modulation of epigenetic processes in the central nervous system under adverse environmental conditions. Searches were conducted in three databases: PubMed/Medline (1053 articles), Scopus (121 articles), and Embase (52 articles), which were subjected to eligibility criteria. Of the 1226 articles found, 173 duplicates were removed. After evaluating titles/abstracts, 904 studies were excluded, resulting in 49 articles, of which 14 were included in this systematic review. EE was performed using different inanimate objects. Adverse environmental conditions included CUMS, sepsis, nicotine exposure, PCP exposure, early stress, WAS, high fructose intake, TBI, and sevoflurane exposure. Regarding microRNA expression, after exposure to EE, an increase in the expression of miR-221 and miR-483 was observed in the prefrontal cortex, and a reduction in the expression of miR-92a-3p and miR-134 in the hippocampus. Regarding histone modifications, in the hippocampus, there was a reduction of HAT, HDAC/HDAC4, H3 (acetyl K14), H4 (acetyl K15), H3K4me3, K3k27me3, and HDAC2/3/5. In the cortex, there was a reduction of HDAC2, and in the prefrontal cortex, there was an increase in acetylated H3. Regarding DNA modifications, there was a reduction of DNMT in the hippocampus. This systematic review concludes that the benefits of EE on the brain and behavior of animals are directly related to different epigenetic mechanisms, reflecting in cell growth and neuroplasticity. EE may be a non-pharmacological and easy-to-apply alternative to prevent symptoms in disorders affecting brain tissue.
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