The pleiotropic AMPK-CncC signaling pathway regulates the trade-off between detoxification and reproduction.
Heng JiangXiangkun MengNan ZhangHuichen GeJiaping WeiKun QianYang ZhengYoonseong ParkSubba Reddy PalliJian-Jun WangPublished in: Proceedings of the National Academy of Sciences of the United States of America (2023)
The association of decreased fecundity with insecticide resistance and the negative sublethal effects of insecticides on insect reproduction indicates the typical trade-off between two highly energy-demanding processes, detoxification and reproduction. However, the underlying mechanisms are poorly understood. The energy sensor adenosine monophosphate-activated protein kinase (AMPK) and the transcription factor Cap "n" collar isoform C (CncC) are important regulators of energy metabolism and xenobiotic response, respectively. In this study, using the beetle Tribolium castaneum as a model organism, we found that deltamethrin-induced oxidative stress activated AMPK, which promoted the nuclear translocation of CncC through its phosphorylation. The CncC not only acts as a transcription activator of cytochrome P450 genes but also regulates the expression of genes coding for ecdysteroid biosynthesis and juvenile hormone (JH) degradation enzymes, resulting in increased ecdysteroid levels as well as decreased JH titer and vitellogenin (Vg) gene expression. These data show that in response to xenobiotic stress, the pleiotropic AMPK-CncC signaling pathway mediates the trade-off between detoxification and reproduction by up-regulating detoxification genes and disturbing hormonal homeostasis.
Keyphrases
- protein kinase
- transcription factor
- signaling pathway
- genome wide identification
- aedes aegypti
- gene expression
- genome wide
- skeletal muscle
- bioinformatics analysis
- pi k akt
- dna methylation
- epithelial mesenchymal transition
- poor prognosis
- genome wide analysis
- induced apoptosis
- hydrogen peroxide
- nuclear factor
- nitric oxide
- cell proliferation
- inflammatory response
- dna binding
- polycystic ovary syndrome
- stress induced
- toll like receptor
- long non coding rna
- metabolic syndrome
- artificial intelligence
- cell wall
- data analysis