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Watrous, J.

Publications and source records attributed to Watrous, J..

2 recordsLinked to original sources

Lactational delivery of Triclosan promotes non-alcoholic fatty liver disease in newborn mice

Pediatric non-alcoholic fatty liver disease (NAFLD) is escalating in the United States, with a limited mechanistic understanding. Triclosan (TCS) is a high-volume antimicrobial additive that has been detected in human breastmilk and shown in adult mice to cause hepatosteatosis. To examine the effect of TCS presented to neonatal mice through lactation, we exposed pregnant females to TCS in their diet and evaluated its impact on nursing neonates. TCS is efficiently transferred by lactation to newborn mice, causing significant fatty liver (FL) during the suckling period. Lactational delivery stimulated hepatosteatosis, triglyceride accumulation, endoplasmic reticulum (ER) stress, inflammation, and liver fibrosis. These events were mirrored by inhibition of key metabolic regulators, FGF21 and AMPK. De novo lipogenesis (DNL) induced by lactational TCS exposure was blocked in mice deficient in hepatic ATF4 . In primary hepatocytes, siRNA specific inhibition of PERK, an ATF4 upstream activator and initiator of ER stress, blocked TCS induced DNL. Also, in the absence of PPAR, which targets regulation of ATF4, TCS induced triglyceride accumulation and the induction of DNL was blocked. The administration of obeticholic acid (OCA), a potent FXR agonist, as well as activation of intestinal mucosal-regenerative gp130 signaling, led to reduced liver ATF4 expression, PPAR signaling, and DNL when neonates were exposed to TCS. In summary, TCS exposure via lactation leads to early indicators of NAFLD development accompanied by hepatosteatosis that were mediated in a PERK-eIF2-ATF4-PPAR cascade. These studies indicate that mother to child transmission of environmental toxicants such as TCS may underlie the recent increases in pediatric NAFLD.

pharmacology and toxicology↗

Ether Lipid Biosynthesis Promotes Lifespan Extension and Enables Diverse Prolongevity Paradigms

Biguanides, including the worlds most commonly prescribed drug for type 2 diabetes, metformin, not only lower blood sugar, but also promote longevity in preclinical models. Epidemiologic studies in humans parallel these findings, indicating favorable effects of metformin on longevity and on reducing the incidence and morbidity associated with aging-related diseases. In spite of this promise, the full spectrum of molecular effectors responsible for these health benefits remains elusive. Through unbiased screening in C. elegans, we uncovered a role for genes necessary for ether lipid biosynthesis in the favorable effects of biguanides. We demonstrate that biguanides prompt lifespan extension by stimulating ether lipid biogenesis. Loss of the ether lipid biosynthetic machinery also mitigates lifespan extension attributable to dietary restriction, target of rapamycin (TOR) inhibition, and mitochondrial electron transport chain inhibition. A possible mechanistic explanation for this finding is that ether lipids are required for activation of longevity-promoting, metabolic stress defenses downstream of the conserved transcription factor Nrf2/skn-1. In alignment with these findings, overexpression of a single, key, ether lipid biosynthetic enzyme, fard-1/FAR1, is sufficient to promote lifespan extension. These findings illuminate the ether lipid biosynthetic machinery as a novel therapeutic target to promote healthy aging.

genetics↗