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Jayasundara, N.

Publications and source records attributed to Jayasundara, N..

2 recordsLinked to original sources

An epigenetic memory at the CYP1A gene in cancer-resistant, pollution-adapted killifish

Human exposure to polycyclic aromatic hydrocarbons (PAH) is a significant and growing public health problem. Frequent, high dose exposures are likely to increase due to a warming climate and increased frequency of large-scale wildfires. Here, we characterize an epigenetic memory at the cytochrome P450 1A (CYP1A) gene in a population of wild Fundulus heteroclitus that has adapted to chronic, extreme PAH pollution. In wild-type fish, CYP1A is highly induced by PAH. In PAH-tolerant fish, CYP1A induction is blunted. Since CYP1A metabolically activates PAH, this memory protects these fish from PAH-mediated cancer. However, PAH-tolerant fish reared in clean water recover CYP1A inducibility, indicating that blunted induction is a non-genetic memory of prior exposure. To explore this possibility, we bred depurated wild fish from PAH-sensitive and -tolerant populations, manually fertilized exposure-naive embryos, and challenged them with PAH. We observed epigenetic control of the reversible memory of generational PAH stress in F1 PAH-tolerant embryos. Specifically, we observed a bivalent domain in the CYP1A promoter enhancer comprising both activating and repressive histone post-translational modifications. Activating modifications, relative to repressive ones, showed greater increases in response to PAH in sensitive embryos, relative to tolerant, consistent with greater gene activation. Also, PAH-tolerant adult fish showed persistent induction of CYP1A long after exposure cessation, which is consistent with defective CYP1A shutoff and recovery to baseline. Since CYP1A expression is inversely correlated with cancer risk, these results indicate that PAH-tolerant fish have epigenetic protection against PAH-induced cancer in early life that degrades in response to continuous gene activation. SignificanceEpigenetic memory, or the inheritance across cell division within an organism or across generations, of environmental exposure response is a compelling phenomenon with limited understanding of mechanism. Here, we characterized an epigenetic memory at the CYP1A gene in pollution-adapted Fundulus heteroclitus. We found that the CYP1A promoter enhancer contains a bivalent domain, comprising both active and repressive histone modifications, that shows reduced function correlating with reduced gene induction by its pollutant activator. In early life, this memory protects fish against pollution-induced cancer. However, this reduced function carries a cost; adult fish show defective transcriptional recovery of CYP1A, which increases cancer risk later in life. These results provide an initial mechanism for a model epigenetic memory and highlight potential costs.

genomics↗

The External Microbiome Communicates with the Developing Zebrafish (Danio rerio) Embryo Through the Protective Chorion and Influences Developmental Trajectory

The microbiome has a significant influence on host physiological processes including energy metabolism and neurobiology. However, current knowledge is largely limited to post-embryonic development, highlighting a notable gap in host-microbe communication during embryonic development, particularly in oviparous organisms. This is because the developing embryo is protected from the external environment by the chorion and typically considered to be sterile. We hypothesized the external microbiome influences embryonic development in oviparous organisms despite lack of physical contact with microbes, shaping host physiology beyond embryogenesis. To test this interaction, we utilized zebrafish (Danio rerio) reared germ-free or conventionalized with microbes at different times during embryonic development (6 and 24 hours post fertilization) to examine changes in transcriptomics, proteomics, and physiology at 32 hours post-fertilization. In contrast to the prevailing notion, we reveal a significant role of the external aquatic microbial community in regulating embryonic transcript and protein abundance associated with critical developmental processes including energy metabolism and neurodevelopment. Furthermore, we demonstrate the external microbial community drives differential expression of genes involved in cytochrome P450 directed xenobiotic metabolism and associated bioenergetic and behavioral responses following exposure to a CYP1A activator during embryogenesis. These findings reveal embryonic development is an integration of host genetic blueprints and external microbial cues, enhancing knowledge of fundamental developmental processes influenced by embryo-microbe interactions that shape developmental susceptibility to environmental stressors. Significance StatementHost-microbiome interactions play a crucial role in shaping vertebrate physiology. However, the impact of these interactions during embryonic development remains poorly understood which has limited our evaluation of environmental drivers of developmental disorders and disease. Here, we provide evidence that the external microbiome indirectly communicates with the developing zebrafish (Danio rerio) embryo through the chorion, influencing physiological processes including bioenergetics, neurodevelopment, and xenobiotic responses. These findings signify a critical role of the external microbiome during the early stages of embryonic development and may inform research addressing the effects of the maternal microbiome on human embryonic and fetal development, particularly in the context of developmental origins of disease and prenatal chemical exposures.

developmental biology↗