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Updated: Apr 11, 2026

Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
Age dependent regulation of bone-mass and renal function by the MEPE ASARM-motif
Lesya V Zelenchuk1, Anne-Marie Hedge1, Peter S N Rowe1
1The Kidney Institute, Kansas University Medical Center, Kansas City, KS, USA.
Context:
Mice with null mutations in matrix extracellular phosphoglycoprotein (MEPE) have increased bone mass, increased trabecular density and abnormal cancellous bone (MN-mice). These defects worsen with age and MEPE overexpression induces opposite effects. Also, genome wide association studies show that MEPE plays a major role in bone mass. We hypothesized that the conserved C-terminal MEPE ASARM-motif is chiefly responsible for regulating bone mass and trabecular structure.
Design:
To test our theory we overexpressed C-terminal ASARM-peptide in MN-mice using the Col1α1 promoter (MNAt-mice). We then compared the bone and renal phenotypes of the MNAt-mouse with the MN-mouse and the X-linked hypophosphatemic rickets mouse (HYP). The HYP mouse overexpresses ASARM-peptides and is defective for the PHEX gene.
Results:
The MN-mouse developed increased bone mass, bone strength and trabecular abnormalities that worsened markedly with age. Defects in bone formation were chiefly responsible with suppressed sclerostin and increased active β-catenin. Increased uric acid levels also suggested that abnormalities in purine-metabolism and a reduced fractional excretion of uric acid signaled additional renal transport changes. The MN mouse developed a worsening hyperphosphatemia and reduced FGF23 with age. An increase in the fractional excretion of phosphate (FEP) despite the hyperphosphatemia confirms an imbalance in kidney-intestinal phosphate regulation. Also, the MN mice showed an increased creatinine clearance suggesting hyperfiltration. A reversal of the MN bone-renal phenotype changes occurred with the MNAt mice including the apparent hyperfiltration. The MNAt mice also developed localized hypomineralization, hypophosphatemia and increased FGF23.
Conclusions:
The C-terminal ASARM-motif plays a major role in regulating bone-mass and cancellous structure as mice age. In healthy mice, the processing and release of free ASARM-peptide are chiefly responsible for preserving normal bone and renal function. Free ASARM-peptide also affects renal mineral phosphate handling by influencing FGF23 expression. These findings have implications for understanding age-dependent osteoporosis, unraveling drug-targets and developing treatments.
Insights
The C-terminal ASARM-motif of MEPE is crucial for maintaining bone mass and kidney function in aging mice. Its proper processing prevents bone abnormalities and ensures normal mineral phosphate handling, offering insights into osteoporosis treatments.
Area of Science:
- Bone Biology and Physiology
- Renal Physiology
- Mineral Metabolism
Background:
- Matrix extracellular phosphoglycoprotein (MEPE) null mice (MN-mice) exhibit increased bone mass and abnormal cancellous bone, with defects worsening with age.
- Genome-wide association studies link MEPE to bone mass regulation, suggesting a significant role in skeletal homeostasis.
- The conserved C-terminal MEPE ASARM-motif is hypothesized to be primarily responsible for regulating bone mass and trabecular structure.
Purpose of the Study:
- To investigate the role of the C-terminal MEPE ASARM-motif in regulating bone mass and trabecular structure.
- To compare the bone and renal phenotypes of mice overexpressing the ASARM-peptide with MEPE-deficient mice and a model of hypophosphatemic rickets.
- To elucidate the impact of ASARM-peptide processing on bone and renal function in aging.
Main Methods:
- Overexpression of the C-terminal ASARM-peptide in MN-mice using the Col1α1 promoter to create MNAt-mice.
- Comparative analysis of bone and renal phenotypes between MNAt-mice, MN-mice, and X-linked hypophosphatemic rickets (HYP) mice.
- Assessment of bone mass, strength, trabecular structure, serum biochemistry, and renal function markers.
Main Results:
- MN-mice showed age-dependent increases in bone mass, bone strength, and trabecular abnormalities, linked to suppressed sclerostin and increased active β-catenin.
- MN-mice exhibited hyperphosphatemia, reduced FGF23, increased uric acid, and increased creatinine clearance, indicating renal transport and phosphate regulation imbalances.
- MNAt-mice displayed a reversal of MN bone-renal phenotypes, alongside localized hypomineralization, hypophosphatemia, and increased FGF23.
Conclusions:
- The C-terminal ASARM-motif is a major regulator of bone mass and cancellous structure, particularly with aging.
- Proper processing and release of free ASARM-peptide are essential for maintaining normal bone and renal function in healthy mice.
- Free ASARM-peptide influences renal mineral phosphate handling via FGF23, with implications for age-dependent osteoporosis and therapeutic targets.
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