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Author Spotlight: Advancements in iPSCs and Genetic Disease Research
Published on: October 20, 2023
Differences in substrate metabolism between African American and Caucasian infants: evidence from mesenchymal stem
Filip Jevtovic1,2,3, Christian A Lopez1,2,3, Donghai Zheng1,2,3
1Department of Kinesiology, East Carolina University, Greenville, North Carolina, United States.
Insights
Metabolic differences between African American (AA) and Caucasian (C) infants exist at birth. Umbilical cord stem cells showed distinct glucose and fatty acid metabolism patterns between AA and C newborns, suggesting early origins of health disparities.
Area of Science:
- Metabolic research
- Developmental biology
- Racial health disparities
Background:
- Type 2 diabetes prevalence differs between African American (AA) and Caucasian (C) adults.
- Differential substrate utilization is observed in adults, but early-life metabolic data is scarce.
- Mesenchymal stem cells (MSCs) from umbilical cords offer a window into neonatal metabolism.
Purpose of the Study:
- To investigate racial differences in substrate metabolism at birth.
- To compare glucose and fatty acid metabolism in MSCs from AA and C newborns.
Main Methods:
- Utilized radio-labeled tracers to assess metabolism in MSCs.
- Compared metabolism in undifferentiated MSCs and during in vitro myogenesis.
- Analyzed glucose oxidation and fatty acid metabolism, including incomplete oxidation.
Main Results:
- Undifferentiated AA MSCs showed greater glucose partitioning to nonoxidative pathways.
- Myogenic AA MSCs exhibited higher glucose oxidation and similar fatty acid oxidation rates compared to C.
- AA MSCs demonstrated increased incomplete fatty acid oxidation in the presence of glucose and palmitate.
Conclusions:
- Metabolic differences between AA and C infants are evident at birth.
- Myogenic differentiation impacts glucose oxidation differently based on race.
- These early metabolic variations may contribute to later-life health disparities.
Abstract:
Type 2 diabetes is more prevalent in African American (AA) than Caucasian (C) adults. Furthermore, differential substrate utilization has been observed between AA and C adults, but data regarding metabolic differences between races at birth remains scarce. The purpose of the present study was to determine if there are racial differences in substrate metabolism evident at birth using a mesenchymal stem cells (MSCs) collected from offspring umbilical cords. Using radio-labeled tracers, MSCs from offspring of AA and C mothers were tested for glucose and fatty acid metabolism in the undifferentiated state and while undergoing myogenesis in vitro. Undifferentiated MSCs from AA exhibited greater partitioning of glucose toward nonoxidized glucose metabolites. In the myogenic state, AA displayed higher glucose oxidation, but similar fatty acid oxidation rates. In the presence of both glucose and palmitate, but not palmitate only, AA exhibit a higher rate of incomplete fatty acid oxidation evident by a greater production of acid-soluble metabolites. Myogenic differentiation of MSCs elicits an increase in glucose oxidation in AA, but not in C. Together, these data suggest that metabolic differences between AA and C races exist at birth.NEW & NOTEWORTHY African Americans, when compared with Caucasians, display greater insulin resistance in skeletal muscle. Differences in substrate utilization have been proposed as a factor for this health disparity; however, it remains unknown how early these differences manifest. Using infant umbilical cord-derived mesenchymal stem cells, we tested for in vitro glucose and fatty acid oxidation differences. Myogenically differentiated MSCs from African American offspring display higher rates of glucose oxidation and incomplete fatty acid oxidation.
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