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Published on: March 31, 2023
Aldehyde dehydrogenase isoforms and inflammatory cell populations are differentially expressed in term human
Alison Chu1, Parisa Najafzadeh2, Peggy Sullivan2
1Department of Pediatrics, Division of Neonatology and Developmental Biology, David Geffen School of Medicine at UCLA, 10833 LeConte Avenue, Room B2-375 MDCC, Los Angeles, CA, 90095, USA.
Insights
Intrauterine growth restriction (IUGR) alters placental macrophages and aldehyde metabolism. Specific aldehyde dehydrogenase (ALDH) isozymes may serve as novel biomarkers for identifying IUGR placentas.
Area of Science:
- Obstetrics and Gynecology
- Immunology
- Biochemistry
Background:
- Intrauterine growth restriction (IUGR) is a pregnancy complication linked to poor fetal nutrient/oxygen supply, causing placental oxidative stress.
- Altered placental microenvironment impacts macrophage differentiation, suggesting potential changes in macrophage plasticity and lipid peroxidation in IUGR.
Purpose of the Study:
- To investigate alterations in placental macrophage phenotype and aldehyde metabolism in IUGR.
- To assess the expression of aldehyde dehydrogenase (ALDH) isozymes (ALDH1, ALDH2, ALDH3) in placentas from normal and IUGR pregnancies.
Main Methods:
- Human placentas from appropriate-for-gestational-age (AGA) and IUGR pregnancies were analyzed.
- Immunohistochemistry was used to evaluate placental macrophages and ALDH isozyme expression in specific placental cell types.
Main Results:
- IUGR placentas showed macrophages resembling M1-type, pro-inflammatory macrophages.
- ALDH1 and ALDH2 expression differed in macrophages and decidual cells between AGA and IUGR placentas.
- ALDH3 expression was higher in IUGR placentas, localized to extravillous trophoblasts.
Conclusions:
- Specific ALDH isozymes exhibit cell-specific functions in the placenta that are altered in IUGR.
- ALDH isozymes represent potential novel biomarkers for identifying placental insufficiency and IUGR.
Objective:
Intrauterine growth restriction (IUGR) is a complication of pregnancy that has both short- and long-term sequelae for affected mothers and offspring. The pathophysiology of disease stems from poor nutrient and oxygen provision to the fetus, resulting in increased oxidative stress within the placenta. As the milieu within the local microenvironment alters macrophage differentiation, we hypothesized that macrophage plasticity may be altered in placentas associated with IUGR, and that macrophages would show hallmarks of lipid peroxidation including altered aldehyde metabolism.
Methods:
In human placentas taken from normal pregnancies resulting in appropriate-for-gestational-age (AGA) newborns and placentas associated with IUGR, placental macrophages were evaluated by immunohistochemistry and shown in IUGR to resemble pro-inflammatory activated M1-type macrophages. To link oxidative stress to macrophages, the expression of aldehyde dehydrogenase (ALDHs) isozymes ALDH1, ALDH2, and ALDH3 was assessed.
Results:
All three isozymes displayed preferential staining for distinct cellular populations within the term human placenta. ALDH1 and ALDH2 were strongly expressed in placental Hofbauer and decidual stromal cells. ALDH3, in contrast, was present in extravillous trophoblasts. Comparing AGA and IUGR-associated placentas, ALDH1 and ALDH2 trended to have greater expression in macrophage populations but lower expression in decidual cell populations in IUGR-associated placentas. ALDH3 had higher expression in IUGR-associated placentas but localized specifically to extravillous trophoblast populations.
Conclusion:
Therefore, we speculate that specific ALDH isozymes have cell-specific functions related to differentiation, inflammation, or oxidative stress responses that are altered in IUGR-associated term human placentas. This family of isozymes may be a novel method to identify human placentas affected by placental insufficiency/IUGR.
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