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Published on: March 24, 2023
Developmental origins of NAFLD: a womb with a clue
Stephanie R Wesolowski1, Karim C El Kasmi2, Karen R Jonscher3
1Department of Pediatrics, Section of Neonatology, University of Colorado, Anschutz Medical Campus, 12801 East 17th Avenue, MS 8106, Aurora, Colorado 80045, USA.
Insights
Early-life exposures, including maternal nutrition and in utero factors, significantly impact fetal development, increasing the risk of pediatric non-alcoholic fatty liver disease (NAFLD). Understanding these origins is key to preventing this growing epidemic.
Area of Science:
- Developmental biology
- Hepatology
- Metabolic disease
Background:
- Non-alcoholic fatty liver disease (NAFLD) prevalence is rising in children, suggesting early-life origins.
- Altered intrauterine environments can lead to fetal insults, increasing lifetime disease risk.
- Maternal nutrition and in utero exposures are implicated in persistent hepatic metabolic changes.
Purpose of the Study:
- To review mechanisms linking early-life exposures to NAFLD development and acceleration.
- To highlight opportunities for prevention and intervention against the NAFLD epidemic.
Main Methods:
- Review of clinical and preclinical models.
- Analysis of evidence from human and non-human primate studies.
Main Results:
- In utero exposures (hypoxia, nutrient supply, inflammation, altered microbiota) prime the infant liver for NAFLD.
- Mechanisms include altered lipid metabolism, mitochondrial dysfunction, gut microbiota shifts, and epigenetic changes.
- These factors create a pro-NAFLD liver microenvironment.
Conclusions:
- Early-life developmental pathways are critical in NAFLD pathogenesis.
- Interventions targeting maternal and infant exposures offer potential to curb the NAFLD epidemic.
Abstract:
Changes in the maternal environment leading to an altered intrauterine milieu can result in subtle insults to the fetus, promoting increased lifetime disease risk and/or disease acceleration in childhood and later in life. Particularly worrisome is that the prevalence of NAFLD is rapidly increasing among children and adults, and is being diagnosed at increasingly younger ages, pointing towards an early-life origin. A wealth of evidence, in humans and non-human primates, suggests that maternal nutrition affects the placenta and fetal tissues, leading to persistent changes in hepatic metabolism, mitochondrial function, the intestinal microbiota, liver macrophage activation and susceptibility to NASH postnatally. Deleterious exposures in utero include fetal hypoxia, increased nutrient supply, inflammation and altered gut microbiota that might produce metabolic clues, including fatty acids, metabolites, endotoxins, bile acids and cytokines, which prime the infant liver for NAFLD in a persistent manner and increase susceptibility to NASH. Mechanistic links to early disease pathways might involve shifts in lipid metabolism, mitochondrial dysfunction, pioneering gut microorganisms, macrophage programming and epigenetic changes that alter the liver microenvironment, favouring liver injury. In this Review, we discuss how maternal, fetal, neonatal and infant exposures provide developmental clues and mechanisms to help explain NAFLD acceleration and increased disease prevalence. Mechanisms identified in clinical and preclinical models suggest important opportunities for prevention and intervention that could slow down the growing epidemic of NAFLD in the next generation.
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