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Published on: June 25, 2017
Estrogen promotes fetal skeletal muscle myofiber development important for insulin sensitivity in offspring
Soon Ok Kim1, Eugene D Albrecht2, Gerald J Pepe3
1Department of Physiological Sciences, Eastern Virginia Medical School, Norfolk, VA, USA.
Insights
Maternal estrogen deprivation during pregnancy impairs fetal skeletal muscle development, leading to insulin resistance in offspring. Restoring estrogen levels normalized muscle development and improved glucose homeostasis.
Area of Science:
- Reproductive Endocrinology
- Developmental Biology
- Metabolic Physiology
Background:
- Estrogen plays a crucial role in fetal development.
- Maternal estrogen deficiency in late gestation is linked to offspring insulin resistance.
- Skeletal muscle microvasculature is vital for nutrient and insulin delivery.
Purpose of the Study:
- To investigate the impact of estrogen suppression and restoration on fetal skeletal muscle development.
- To determine if estrogen influences myofiber maturation and skeletal muscle structure in utero.
- To assess the relationship between fetal skeletal muscle development and glucose homeostasis.
Main Methods:
- Utilized a nonhuman primate baboon model.
- Maternally administered letrozole to suppress estradiol levels during the second half of gestation.
- Administered estradiol benzoate to restore hormone levels in a subset of animals.
- Analyzed fetal skeletal muscle structure, including fascicle organization and myofiber size/type.
Main Results:
- Estrogen-deprived fetuses showed disorganized, smaller skeletal muscle fascicles with reduced myofiber size.
- The proportion of non-muscle tissue increased, while muscle fiber proportion decreased in estrogen-deprived fetuses.
- Skeletal muscle development was normalized in fetuses exposed to both letrozole and estradiol benzoate.
Conclusions:
- Fetal exposure to estrogen is critical for proper skeletal muscle development.
- Impaired skeletal muscle development due to estrogen deficiency may contribute to offspring insulin resistance.
- Estrogen's role extends to regulating fetal skeletal muscle structure and postnatal glucose homeostasis.
Abstract:
Using our nonhuman primate baboon model, we showed that offspring born to mothers deprived of estrogen during the second half of gestation exhibited insulin resistance and a deficit in first phase insulin release. Although insulin resistance was not due to an impairment of fetal or offspring growth, nor to an alteration in adipose or hepatic sensitivity to insulin, skeletal muscle microvacularization critical for delivery of nutrients/insulin was significantly reduced in fetuses and offspring deprived of estrogen in utero. Skeletal muscle myofiber maturation occurs in utero and estrogen modulates myofiber growth in adults. Therefore, the current study determined whether fetal skeletal muscle development was altered in baboons in which estradiol levels were suppressed/restored during the second half of gestation by maternal treatment with letrozole ± estradiol benzoate. In estrogen-suppressed animals, fetal skeletal muscle fascicles were structurally less organized, smaller, and comprised of slow type I and fast type II fibers, the size, but not the number of which were smaller than in untreated baboons. Moreover, the proportion of non-muscle fiber tissue was greater and that of muscle fibers lower in estrogen-deprived fetuses. Thus, the maintenance of fetal body weight in estrogen-deprived animals was maintained at the expense of muscle fibers and likely reflected increased deposition of non-muscle proteins. Importantly, fetal skeletal muscle development, including fascicle organization, myofiber size and composition was normal in baboons treated with letrozole and estradiol benzoate. Collectively, these and our previous findings support our proposal that exposure of the fetus to estrogen is important for fetal skeletal muscle development and glucose homeostasis in adulthood.
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