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Adult and Embryonic Skeletal Muscle Microexplant Culture and Isolation of Skeletal Muscle Stem Cells
Published on: September 21, 2010
Multi-Omics Revealed the Effects of Intrauterine Hyperglycemia Exposure on the Development of Skeletal Muscle in
Rui Liu1,2, Junsen She1,2, Xinyuan Li1
1Center for Reproductive Medicine, the Fourth Affiliated Hospital of School of Medicine, and International School of Medicine, International Institutes of Medicine, Zhejiang University, Yiwu, China.
Insights
Intrauterine hyperglycemia (IUHG) from gestational diabetes mellitus (GDM) impairs offspring skeletal muscle development. Postnatal exercise partially reverses these negative effects, offering a potential non-pharmacological intervention.
Area of Science:
- Developmental Biology
- Metabolic Disorders
- Exercise Physiology
Background:
- Gestational diabetes mellitus (GDM) causes maternal hyperglycemia, impacting offspring health.
- Skeletal muscle is vulnerable to prenatal insults, but intrauterine hyperglycemia (IUHG) effects are unclear.
- This study investigates IUHG effects on offspring skeletal muscle and exercise mitigation.
Purpose of the Study:
- To determine the impact of IUHG on offspring skeletal muscle development.
- To assess if postnatal exercise can ameliorate IUHG-induced skeletal muscle impairments.
- To elucidate the molecular mechanisms underlying these effects.
Main Methods:
- Mice models with GDM and control groups, with offspring receiving exercise or control interventions.
- Assessed body weight, glucose/insulin tolerance, body composition, muscle strength, and exercise capacity.
- Analyzed skeletal muscle morphology, transcriptomics (RNA-seq), and epigenomics (ATAC-seq); in vitro myoblast studies.
Main Results:
- IUHG offspring showed increased body weight, impaired glucose/insulin tolerance, reduced muscle strength, and exercise capacity.
- Exercise improved muscle/fat ratios, lipid profiles, and muscle structure/strength in GDM offspring.
- Transcriptomic/epigenomic analyses revealed altered immune regulation, myogenesis, lipid metabolism, and inflammation pathways. In vitro, high glucose caused metabolic reprogramming and lipid accumulation in myoblasts.
Conclusions:
- IUHG disrupts offspring skeletal muscle development via structural, transcriptional, and epigenetic changes.
- Postnatal exercise partially reverses these impairments, indicating its therapeutic potential.
- Findings highlight developmental origins of skeletal muscle dysfunction in GDM and importance of early prevention.
Background:
Gestational diabetes mellitus (GDM), a common pregnancy complication characterized by maternal hyperglycemia, negatively impacts offspring health. Skeletal muscle, a critical tissue for glucose and lipid metabolism, is especially vulnerable to prenatal environmental insults. However, the effects of intrauterine hyperglycemia (IUHG) on offspring skeletal muscle development remain poorly understood. This study aimed to investigate the effects of IUHG on skeletal muscle development in offspring and evaluate whether postnatal exercise could mitigate these effects.
Methods:
Pregnant mice were assigned to GDM and control groups. Offspring were further divided into control and exercise subgroups. Body weight, glucose tolerance test (GTT), insulin tolerance test (ITT), body composition, muscle strength and exercise capacity were assessed. At 20 weeks of age, skeletal muscle morphology was evaluated via various staining and Transmission Electron Microscope. Transcriptomic changes were analysed by RNA sequencing (RNA-seq) and chromatin accessibility was assessed using ATAC-seq to identify molecular mechanisms underlying IUHG-induced alterations. Additionally, primary fetal myoblasts were cultured under normal and high-glucose conditions to investigate metabolic changes and lipid accumulation in vitro.
Results:
Offspring exposed to IUHG exhibited increased body weight, impaired glucose and insulin tolerance, altered body composition, reduced muscle strength and diminished exercise capacity at adulthood. Exercise intervention in diabetic offspring improved the muscle ratio (p < 0.05), fat ratio (p < 0.05), lipid profiles (p < 0.005) and muscle structure and strength (p < 0.005). Transcriptomic and epigenomic profiling identified significant changes in genes and regulatory elements associated with immune regulation, myogenesis, lipid metabolism and inflammation in GDM-exposed offspring. In vitro, high-glucose exposure of E14.5d fetal myoblasts led to significant metabolic reprogramming, including lipid accumulation and disruptions in glycolysis and oxidative metabolism. Furthermore, the expression of AP-1 family members Fos and Junb was up-regulated in myoblasts under high-glucose conditions, which aligns with the findings in the in vivo models.
Conclusions:
IUHG disrupts skeletal muscle development and metabolic function in offspring through structural, transcriptional and epigenetic alterations. Postnatal exercise partially reversed these impairments, highlighting its potential as a non-pharmacological intervention. These findings provide new insights into the developmental origins of skeletal muscle dysfunction in GDM-exposed offspring and underscore the importance of early prevention strategies.
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