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Published on: November 1, 2024
A novel phosphoglucomutase-deficient mouse model reveals aberrant glycosylation and early embryonic lethality
Bijina Balakrishnan1, Jan Verheijen2, Arielle Lupo1
1Department of Pediatrics, University of Utah School of Medicine, Salt Lake City, Utah.
Insights
Phosphoglucomutase (PGM1) deficiency causes severe developmental issues. A new mouse model reveals PGM1 deficiency leads to embryonic lethality, highlighting the enzyme's critical role in development.
Area of Science:
- Biochemistry
- Genetics
- Developmental Biology
Background:
- Phosphoglucomutase (PGM1) deficiency is a congenital disorder of glycosylation (CDG) with diverse clinical phenotypes.
- These phenotypes include birth defects, metabolic issues, and organ damage, indicating PGM1's crucial role in metabolism and glycosylation.
Purpose of the Study:
- To investigate the pathophysiology of PGM1 deficiency.
- To create and analyze a mouse model for PGM1 deficiency.
Main Methods:
- Generated a constitutive Pgm2 (mouse PGM1 ortholog) knockout mouse model using CRISPR-Cas9.
- Conducted breeding studies, ultrasound, oral galactose supplementation, biochemical assays, and glycomics analysis.
Main Results:
- Homozygous Pgm2 knockout mice exhibited embryonic lethality before embryonic day 9.5.
- Galactose supplementation did not rescue the lethality.
- Heterozygous mice showed reduced Pgm2 enzyme activity and abnormal serum glycosylation patterns, mirroring human PGM1-CDG.
Conclusions:
- The PGM1 enzyme is essential for embryonic development, with deficiency leading to lethality.
- The Pgm2 knockout mouse model accurately reflects key aspects of human PGM1-CDG, including glycosylation defects.
- This model provides a valuable tool for studying PGM1-CDG pathophysiology.
Abstract:
Patients with phosphoglucomutase (PGM1) deficiency, a congenital disorder of glycosylation (CDG) suffer from multiple disease phenotypes. Midline cleft defects are present at birth. Overtime, additional clinical phenotypes, which include severe hypoglycemia, hepatopathy, growth retardation, hormonal deficiencies, hemostatic anomalies, frequently lethal, early-onset of dilated cardiomyopathy and myopathy emerge, reflecting the central roles of the enzyme in (glycogen) metabolism and glycosylation. To delineate the pathophysiology of the tissue-specific disease phenotypes, we constructed a constitutive Pgm2 (mouse ortholog of human PGM1)-knockout (KO) mouse model using CRISPR-Cas9 technology. After multiple crosses between heterozygous parents, we were unable to identify homozygous life births in 78 newborn pups (P = 1.59897E-06), suggesting an embryonic lethality phenotype in the homozygotes. Ultrasound studies of the course of pregnancy confirmed Pgm2-deficient pups succumb before E9.5. Oral galactose supplementation (9 mg/mL drinking water) did not rescue the lethality. Biochemical studies of tissues and skin fibroblasts harvested from heterozygous animals confirmed reduced Pgm2 enzyme activity and abundance, but no change in glycogen content. However, glycomics analyses in serum revealed an abnormal glycosylation pattern in the Pgm2+/- animals, similar to that seen in PGM1-CDG.
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