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Biology subjects

Nagaoka, K.

Publications and source records attributed to Nagaoka, K..

2 recordsLinked to original sources

Integrated hepatic ferroptosis gene signature dictates pathogenic features of ferroptosis

Background & AimsFerroptosis, a distinctive form of cell death induced by iron-dependent lipid peroxidation, is implicated in various biological processes, including liver diseases. Establishing an iron overload-induced ferroptosis model and identifying hepatic gene signatures associated with ferroptosis are crucial for understanding its role in liver pathogenesis. MethodsF-box and leucine-rich repeat protein 5 (FBXL5) is a substrate-recognition component of the SCF E3 ligase complex that restricts intracellular iron levels. In this study, we used liver-specific Fbxl5-null mice to establish an iron overload-induced ferroptosis model. Transcriptome analysis identified genes involved in hepatic ferroptosis. Integrating these gene signatures with another ferroptosis model enabled the assessment of ferroptosis-related pathology in murine liver injury models and in 174 patients undergoing liver resection surgery. ResultsIron overload induced severe liver damage in liver-specific Fbxl5-null mice, characterized by elevated liver enzymes, histopathological changes, and lipid peroxidation. Transcriptome analysis revealed a distinct set of genes associated with hepatic ferroptosis response. Generating a gene signature for evaluating ferroptosis enhanced the understanding of ferroptosis-related pathologies in liver diseases. Iron overload exacerbated liver damage in murine ischemia-reperfusion injury models via ferroptosis induction. In human patients, elevated serum iron levels correlated with sustained post-operative liver damage, indicating heightened susceptibility to ferroptosis. ConclusionHere, a murine model of iron overload-induced hepatic ferroptosis was established, and a gene signature indicative of hepatic ferroptosis response in both mice and humans was identified. These findings underscore the role of ferroptosis in liver injury progression and suggest potential therapeutic targets for liver disease intervention. HIGHLIGHTSO_LILiver-specific Fbxl5 knockout mice provide an iron-induced ferroptotic injury model C_LIO_LIIntegrated gene signature of iron- and acetaminophen-induced liver injury dictates ferroptosis C_LIO_LIIron overload aggravates hepatic ischemia-reperfusion injury in mice C_LIO_LIPatients with high iron levels show delayed post-operative liver damage recovery C_LI IMPACT AND IMPLICATIONSOur study elucidated the critical role of iron in liver disease pathogenesis and ischemia-reperfusion injury (IRI). By establishing a murine model of iron overload-induced ferroptosis, we confirmed that iron overload exacerbated hepatic IRI, underscoring the importance of ferroptosis in liver damage. Additionally, the development of an integrated gene signature for hepatic ferroptosis response provides a valuable tool for evaluating ferroptosis in liver diseases. Via analysis of patient data, we also highlighted the clinical relevance of ferroptosis in post-operative liver damage, offering insights into potential therapeutic strategies targeting iron and ferroptosis to improve outcomes in patients with liver diseases.

molecular biology↗

Maternal progesterone and adipose mPRε in pregnancy regulate the embryonic nutritional state

Sex steroid hormones such as progesterone play a pivotal role in reproductive functions and maintaining pregnancy; however, the impact of progesterone on the interaction between mother and embryo is unclear. Here, we demonstrate that the relationship between maternal progesterone and membrane progesterone receptor epsilon (mPR{varepsilon}) in adipose tissue regulates embryonic nutritional environment and growth after birth in mice. The activation of adipose mPR{varepsilon} by increased progesterone during pregnancy enhanced maternal insulin resistance through the production of prostaglandins, thereby efficiently providing glucose to embryos. The offspring of mPR{varepsilon}-deficient mothers exhibited metabolic dysfunction, whereas mPR{varepsilon}-deficient mothers with high-fat-diet-induced obesity exhibited improved insulin sensitivity. These findings establish the importance of progesterone as a nutritional regulator between mother and embryo, and suggest that mPR{varepsilon} modulators could be developed to treat pregnant glycemic control disorders such as gestational diabetes mellitus, as well as metabolic syndrome in offspring. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=139 SRC="FIGDIR/small/609823v1_ufig1.gif" ALT="Figure 1"> View larger version (29K): org.highwire.dtl.DTLVardef@1ecd968org.highwire.dtl.DTLVardef@b5492aorg.highwire.dtl.DTLVardef@1d692ecorg.highwire.dtl.DTLVardef@47de8a_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗