bioRxiv Science⌕ Search

Biology subjects

Janssen, R. C.

Publications and source records attributed to Janssen, R. C..

2 recordsLinked to original sources

Maternal Western-style Diet Promotes Immune Tolerance and Liver Sinusoidal Endothelial Cell Dysfunction in Nonhuman Primate Juvenile Offspring Liver

Maternal Western-style diet (mWSD) consumption during pregnancy and lactation is associated with developmental programming of metabolic dysfunction-associated steatotic liver disease (MASLD) in offspring. To understand the roles of immune and endothelial cells, we used single-cell RNA-sequencing of liver non-parenchymal cells from 3-year-old juvenile nonhuman primates exposed to mWSD during their gestation through weaning, followed by control diet consumption after weaning. We identified unique clusters of macrophages in mWSD-exposed juvenile livers with non-reparative, pro-fibrotic phenotypes characterized by predicted inactivation of NF-{kappa}B, decreased oxidative phosphorylation, and gene expression facilitating hepatic stellate cell-macrophage interactions. Kupffer cell and dendritic cell (DC) numbers were decreased by mWSD exposure, with inactivation of inflammatory and antigen presentation pathways in DCs, supporting DC immaturity. B cells increased in mWSD-exposed offspring, with RNA showing reduced inflammation and impaired differentiation, while T cells had RNA profiles consistent with apoptosis and reduced inflammatory function. mWSD exposure increased clusters of liver sinusoidal endothelial cells (LSECs), with activation of inflammation and proliferation pathways but decreased immune cell communication. Immunocytochemistry and RNAscope identified increased association of LSECs and immune cells in periportal regions. In summary, mWSD exposure during gestation and lactation selectively modulated LSEC-immune cell interactions consistent with immune tolerant B and T cells and fibrogenic pathways together with decreased pro-resolving macrophages in juvenile offspring. We conclude that mWSD exposure establishes an immune-tolerant environment in offspring liver, marked by a durable, pro-fibrotic microenvironment that resists postnatal dietary correction.

immunology↗

Western diet-induced shifts in the maternal microbiome are associated with altered microRNA expression in baboon placenta and fetal liver

Maternal consumption of a high-fat, Western-style diet (WD) disrupts the maternal/infant microbiome and contributes to developmental programming of the immune system and nonalcoholic fatty liver disease (NAFLD) in the offspring. Epigenetic changes, including non-coding miRNAs in the fetus and/or placenta may also underlie this risk. We previously showed that obese nonhuman primates (NHP) fed a WD during pregnancy results in the loss of beneficial maternal gut microbes and dysregulation of cellular metabolism and mitochondrial dysfunction in the fetal liver, leading to a perturbed postnatal immune response with accelerated NAFLD in juvenile offspring. Here, we investigated associations between WD-induced maternal metabolic and microbiome changes, in the absence of obesity, and miRNA and gene expression changes in the placenta and fetal liver. After [~]8-11 months of maternal WD feeding (mWD), dams were similar in body weight but exhibited mild, systemic inflammation (elevated CRP and neutrophil count) and dyslipidemia (increased triglycerides and cholesterol) compared with dams fed a control diet. The maternal gut microbiome was mainly comprised of Lactobacillales and Clostridiales, with significantly decreased alpha diversity (P = 0.0163) in WD-fed dams but no community-wide differences (P = 0.26). At 0.9 gestation, mRNA expression of IL6 and TNF in mWD-exposed placentas trended higher, while increased triglycerides, expression of pro-inflammatory CCR2, and histological evidence for fibrosis were found in mWD-exposed fetal livers. In the mWD-exposed fetus, hepatic expression levels of miR-204-5p and miR-145-3p were significantly downregulated, whereas in mWD-exposed placentas, miR-182-5p and miR-183-5p were significantly decreased. Notably, miR-1285-3p expression in the liver and miR-183-5p in the placenta were significantly associated with inflammation and lipid synthesis pathway genes, respectively. Blautia and Ruminococcus were significantly associated with miR-122-5p in liver, while Coriobacteriacea and Prevotellacea were strongly associated with miR-1285-3p in the placenta; both miRNAs are implicated in pathways mediating postnatal growth and obesity. Our findings demonstrate that mWD shifts the maternal microbiome, lipid metabolism, and inflammation prior to obesity and are associated with epigenetic changes in the placenta and fetal liver. These changes may underlie inflammation, oxidative stress, and fibrosis patterns that drive NAFLD and metabolic disease risk in the next generation.

developmental biology↗