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Published on: April 1, 2022
The role and regulation of IGFBP-1 phosphorylation in fetal growth restriction
1Departments of Pediatrics and Biochemistry, Children's Health Research Institute, University of Western Ontario, VRL Room A5-136 (WC) 800 Commissioners Road E., London, ON, N6C 2V5, Canada, mbgupta@uwo.ca.
Insights
Fetal growth restriction (FGR) is linked to increased complications and later-life diseases. Increased IGFBP-1 phosphorylation in FGR fetuses may impair insulin-like growth factor I (IGF-I) activity, offering a potential biomarker.
Area of Science:
- Endocrinology
- Developmental Biology
- Perinatology
Background:
- Fetal growth restriction (FGR) poses risks for perinatal complications and long-term health issues.
- The underlying mechanisms of FGR are not well understood, and effective treatments or early detection biomarkers are lacking.
- The insulin-like growth factor (IGF) system, particularly IGF-I, is crucial for fetal growth, but its levels are reduced in FGR.
Purpose of the Study:
- To investigate the role of IGF binding protein-1 (IGFBP-1) phosphorylation in fetal growth restriction.
- To explore whether IGFBP-1 hyperphosphorylation could serve as a biomarker for early FGR detection.
Main Methods:
- Analysis of IGF-I and IGFBP-1 levels in fetal circulation.
- Assessment of IGFBP-1 phosphorylation status at specific sites.
- Experimental investigation into the impact of IGFBP-1 phosphorylation on IGF-I bioavailability.
Main Results:
- Fetal circulating IGF-I levels are decreased in FGR.
- IGFBP-1 concentrations are elevated in FGR fetuses.
- Evidence suggests markedly increased IGFBP-1 phosphorylation in FGR, potentially inhibiting IGF-I bioactivity.
Conclusions:
- Site-specific IGFBP-1 phosphorylation plays a significant role in regulating fetal growth.
- Understanding IGFBP-1 phosphorylation regulation is key to developing FGR interventions.
- IGFBP-1 hyperphosphorylation may represent a novel biomarker for FGR.
Abstract:
Fetal growth restriction (FGR) increases the risk of perinatal complications and predisposes the infant to developing metabolic, cardiovascular, and neurological diseases in childhood and adulthood. The pathophysiology underlying FGR remains poorly understood and there is no specific treatment available. Biomarkers for early detection are also lacking. The insulin-like growth factor (IGF) system is an important regulator of fetal growth. IGF-I is the primary regulator of fetal growth, and fetal circulating levels of IGF-I are decreased in FGR. IGF-I activity is influenced by a family of IGF binding proteins (IGFBPs), which bind to IGF-I and decrease its bioavailability. During fetal development the predominant IGF-I binding protein in fetal circulation is IGFBP-1, which is primarily secreted by the fetal liver. IGFBP-1 binds IGF-I and thereby inhibits its bioactivity. Fetal circulating levels of IGF-I are decreased and concentrations of IGFBP-1 are increased in FGR. Phosphorylation of human IGFBP-1 at specific sites markedly increases its binding affinity for IGF-I, further limiting IGF-I bioactivity. Recent experimental evidence suggests that IGFBP-1 phosphorylation is markedly increased in the circulation of FGR fetuses suggesting an important role of IGFBP-1 phosphorylation in the regulation of fetal growth. Understanding of the significance of site-specific IGFBP-1 phosphorylation and how it is regulated to contribute to fetal growth will be an important step in designing strategies for preventing, managing, and/or treating FGR. Furthermore, IGFBP-1 hyperphosphorylation at unique sites may serve as a valuable biomarker for FGR.
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