Palmitate induces integrated stress response and lipoapoptosis in trophoblasts
Prakash Kumar Sahoo1, Chandan Krishnamoorthy1, Jennifer R Wood2
1Department of Nutrition and Health Sciences, University of Nebraska-Lincoln, Lincoln, NE, USA.
Insights
Maternal palmitate exposure triggers integrated stress responses in placental cells, leading to programmed cell death. Inhibiting JNK reduces this apoptosis, while promoting stress granules enhances cell survival.
Area of Science:
- Reproductive biology and developmental toxicology
- Cellular stress response mechanisms
- Metabolic programming in utero
Background:
- Maternal obesity is a significant risk factor for childhood obesity and metabolic syndrome.
- Palmitate, a saturated free fatty acid (FFA), crosses the placenta and is implicated in fetal programming.
- Previous work demonstrated that maternal saturated FFAs induce trophoblast lipoapoptosis.
Purpose of the Study:
- To investigate if palmitate induces integrated stress response pathways in trophoblasts.
- To determine the role of mitogen-activated protein kinases (MAPKs), endoplasmic reticulum (ER) stress, and granular stress in palmitate-induced trophoblast lipoapoptosis.
- To elucidate the mechanistic pathways involved in palmitate-induced trophoblast cell death.
Main Methods:
- Exposure of JEG-3 and JAR trophoblast cells to varying concentrations of palmitate (PA).
- Assessment of apoptosis via nuclear morphology and caspase 3/7 activity.
- Immunoblot and immunofluorescence analysis to detect MAPK, ER stress, and stress granule activation; assessment of nuclear translocation of CHOP and FoxO3.
Main Results:
- Palmitate exposure caused a concentration-dependent increase in trophoblast lipoapoptosis, mediated by caspase 3/7.
- Palmitate activated MAPKs (JNK, ERK) and ER stress (eIF2α, IRE1α phosphorylation), and induced stress granule formation.
- JNK activation was critical for PA-induced trophoblast lipoapoptosis, while ERK activation and stress granule formation acted as cell survival signals.
Conclusions:
- Palmitate triggers integrated stress responses in trophoblasts, including MAPK and ER stress pathways.
- JNK activation is essential for palmitate-induced trophoblast cell death.
- Enhancing stress granule formation can protect trophoblasts from palmitate-induced lipoapoptosis.
Abstract:
Maternal obesity increases the risk of childhood obesity and programs the offspring to develop metabolic syndrome later in their life. Palmitate is the predominant saturated free fatty acid (FFA) that is transported across the placenta to the fetus. We have recently shown that saturated FFA in the maternal circulation as a result of increased adipose tissue lipolysis in third trimester of pregnancy induces trophoblast lipoapoptosis. Here, we hypothesized that palmitate induces integrated stress response by activating mitogen-activated protein kinases (MAPKs), endoplasmic reticulum (ER) stress and granular stress and lipoapoptosis in trophoblasts. Choriocarcinoma-derived third-trimester placental trophoblast-like cells (JEG-3 and JAR) referred as trophoblasts were exposed to various concentrations of palmitate (PA). Apoptosis was assessed by nuclear morphological changes and caspase 3/7 activity. Immunoblot and immunofluorescence analysis was performed to measure the activation of MAPKs, ER stress and granular stress response pathways. Trophoblasts exposed to pathophysiological concentrations of PA showed a concentration-dependent increase in trophoblast lipoapoptosis. PA induces a caspase-dependent trophoblast lipoapoptosis. Further, PA induces MAPK activation (JNK and ERK) via phosphorylation, and activation of ER stress as evidenced by an increased phosphorylation eIF2α & IRE1α. PA also induces the activation of stress granules formation. Two pro-apoptotic transcriptional mediators of PA-induced trophoblast lipoapoptosis, CHOP and FoxO3 have increased nuclear translocation. Mechanistically, PA-induced JNK is critical for trophoblast lipoapoptosis. However, PA-induced activation of ERK and stress granule formation were shown to be cell survival signals to combat subcellular stress due to PA exposure. In conclusion, PA induces the activation of integrated stress responses, among which small molecule inhibition of JNK demonstrated that activation of JNK is critical for PA-induced trophoblast lipoapoptosis and small molecule activation of stress granule formation significantly prevents PA-induced trophoblast lipoapoptosis.
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