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Published on: November 29, 2024
Serum Metabonomics Reveals Key Metabolites in Different Types of Childhood Short Stature
Guoyou Chen1, Jinming Wang2, Yisi Jing3
1Daqing Campus, Harbin Medical University, Daqing, China.
Insights
Metabolite variations in childhood short stature (SS) were investigated. Key metabolic pathways and specific peptides were identified, offering potential for personalized treatment approaches in growth disorders.
Area of Science:
- Biochemistry
- Pediatrics
- Metabolomics
Background:
- Childhood short stature (SS) is a growing concern for pediatricians.
- Understanding the role of metabolite variations in SS pathophysiology is limited.
- Predicting SS progression using metabolite profiles requires further investigation.
Purpose of the Study:
- To systematically investigate metabolite variations in childhood SS using metabonomics.
- To correlate metabolite profiles between control, idiopathic short stature (ISS), and growth hormone deficiency (GHD) groups.
- To identify key metabolites and pathways influencing SS development and progression.
Main Methods:
- A metabonomics approach was employed to analyze serum samples.
- Comparative analysis was performed between children with SS (ISS and GHD) and healthy controls.
- Statistical methods were used to identify significant metabolic pathway enrichments and metabolite differences.
Main Results:
- Significant enrichment was observed in purine metabolism, sphingolipid signaling, and sphingolipid metabolism pathways in childhood SS.
- Two short peptides, Thr Val Leu Thr Ser and Trp Ile Lys, were identified as potentially significant.
- Specific metabolites including 9,10-DiHOME, 12-HETE, and arachidonic acid methyl ester differed between SS and control groups.
Conclusions:
- Metabolite variations, particularly in specific pathways and peptides, play a significant role in childhood SS.
- Identifying these key metabolites may enhance the understanding of SS pathophysiology.
- Further research can lead to improved personalized treatment strategies for SS.
Abstract:
Nowadays, short stature (SS) in childhood is a common condition encountered by pediatricians, with an increase in not just a few families. Various studies related to the variations in key metabolites and their biological mechanisms that lead to SS have increased our understanding of the pathophysiology of the disease. However, little is known about the role of metabolite variation in different types of childhood SS that influence these biological processes and whether the understanding of the key metabolites from different types of childhood SS would predict the disease progression better. We performed a systematic investigation using the metabonomics method and studied the correlation between the three groups, namely, the control, idiopathic short stature (ISS), and short stature due to growth hormone deficiency (GHD). We observed that three pathways (viz., purine metabolism, sphingolipid signaling pathway, and sphingolipid metabolism) were significantly enriched in childhood SS. Moreover, we reported that two short peptides (Thr Val Leu Thr Ser and Trp Ile Lys) might play a significant role in childhood SS. Various metabolites in different pathways including 9,10-DiHOME, 12-HETE, 12(13)-EpOME, arachidonic acid methyl ester, glycerophospho-N-arachidonoyl ethanolamine, curvulinic acid (2-acetyl-3,5-dihydroxyphenyl acetic acid), nonanoic acid, and N'-(2,4-dimethylphenyl)-N-methylformamidine in human serum were compared between 60 children diagnosed with SS and 30 normal-height children. More investigations in this area may provide insights and enhance the personalized treatment approaches in clinical practice for SS by elucidating pathophysiology mechanisms of experimental verification.
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