| Literature DB >> 30555601 |
Saya Kishimoto1,2, Masaharu Uno1,2, Eisuke Nishida1,2.
Abstract
Throughout life, organisms are subjected to a variety of environmental perturbations, including temperature, nutrient conditions, and chemical agents. Exposure to external signals induces diverse changes in the physiological conditions of organisms. Genetically identical individuals exhibit highly phenotypic variations, which suggest that environmental variations among individuals can affect their phenotypes in a cumulative and inhomogeneous manner. The organismal phenotypes mediated by environmental conditions involve development, metabolic pathways, fertility, pathological processes, and even lifespan. It is clear that genetic factors influence the lifespan of organisms. Likewise, it is now increasingly recognized that environmental factors also have a large impact on the regulation of aging. Multiple studies have reported on the contribution of epigenetic signatures to the long-lasting phenotypic effects induced by environmental signals. Nevertheless, the mechanism of how environmental stimuli induce epigenetic changes at specific loci, which ultimately elicit phenotypic variations, is still largely unknown. Intriguingly, in some cases, the altered phenotypes associated with epigenetic changes could be stably passed on to the next generations. In this review, we discuss the environmental regulation of organismal viability, that is, longevity and stress resistance, and the relationship between this regulation and epigenetic factors, focusing on studies in the nematode C. elegans.Entities:
Keywords: Aging; Environmental factor; Epigenetics; Lifespan extension; Stress response; Transgenerational inheritance
Year: 2018 PMID: 30555601 PMCID: PMC6287349 DOI: 10.1186/s41232-018-0080-y
Source DB: PubMed Journal: Inflamm Regen ISSN: 1880-8190
Fig. 1Schematic diagram of the IIS pathway-mediated longevity in C. elegans. Under reduced IIS, DAF-16 is translocated to the nucleus and activates the transcription of pro-longevity genes
Fig. 2A possible model of epigenetic regulation in response to environmental factors. The white area represents environmental circumstances, and the green area represents the plausible responses of organisms to environmental stimuli. Epigenetic alterations (such as histone modification and chromatin remodeling) are known as the hallmarks of aging, and these changes are profoundly dictated by environmental stimuli [3, 4, 49]. Me, histone methylation; Ac, histone acetylation; P, histone phosphorylation
Fig. 3Transgenerational inheritance of acquired hormesis effects. a Bi-phasic dose-response curve. Low-dose treatment induces enhanced viability (hormesis effects), whereas exposure to high-dose stressors is detrimental. b Schematic model of heritable hormesis effects. Environmental stressors induce epigenetic alterations in the germline, which appear to be transmitted to the next generations and contribute to the viability of the offspring. Me, histone methylation