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Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
Bone Abnormalities in Mice with Protein Kinase A (PKA) Defects Reveal a Role of Cyclic AMP Signaling in Bone Stromal
S Liu1, J M Shapiro1, E Saloustros1
1Section on Endocrinology and Genetics (SEGEN), Eunice Kennedy Shriver National Institute of Child Health and Human Development (NICHD), National Institutes of Health (NIH), Bethesda, Maryland, USA.
Abstract:
Protein kinase A (PKA) is an important enzyme for all eukaryotic cells. PKA phosphorylates other proteins, thus, it is essential for the regulation of many diverse cellular functions, including cytoplasmic trafficking and signaling, organelle structure and mitochondrial oxidation, nuclear gene expression, the cell cycle, and cellular division. The PKA holoenzyme is composed of 2 regulatory and 2 catalytic subunits. Four regulatory (R1α, R1β, R2α, and R2β) and 4 catalytic subunits (Cα, Cβ, Cγ, and Prkx) have been identified, giving rise to mainly PKA-I (when the 2 regulatory subunits are either R1α or R1β), or PKA-II (when the 2 regulatory subunits are either R2α or R2β). Mutations in the PKA subunits can lead to altered total PKA activity or abnormal PKA-I to PKA-II ratio, leading to various abnormalities in both humans and mice. These effects can be tissue-specific. We studied the effect of PKA subunit defects on PKA activity and bone morphology of mice that were single or double heterozygous for null alleles of the various PKA subunit genes. Bone lesions including fibrous dysplasia, myxomas, osteo-sarcomas, -chondromas and -chondrosarcomas were found in these mice. Observational and molecular studies showed that these lesions were derived from bone stromal cells (BSCs). We conclude that haploinsufficiency for different PKA subunit genes affected bone lesion formation, new bone generation, organization, and mineralization in variable ways. This work identified a PKA subunit- and activity-dependent pathway of bone lesion formation from BSCs with important implications for understanding how cyclic AMP affects the skeleton and its tumorigenesis.
Insights
Defects in protein kinase A (PKA) subunits in mice led to bone lesions derived from bone stromal cells (BSCs). This suggests a PKA-dependent pathway influencing bone formation and tumorigenesis.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Protein kinase A (PKA) is a crucial enzyme regulating diverse eukaryotic cellular functions through protein phosphorylation.
- The PKA holoenzyme consists of regulatory and catalytic subunits, forming PKA-I and PKA-II complexes.
- Mutations in PKA subunits can disrupt cellular functions and lead to abnormalities.
Purpose of the Study:
- To investigate the impact of PKA subunit defects on PKA activity and bone morphology in mice.
- To identify the cellular origins of PKA-related bone lesions.
Main Methods:
- Generation of single and double heterozygous mice with null alleles for PKA subunit genes.
- Analysis of bone morphology and PKA activity in these mice.
- Observational and molecular studies to trace the origin of bone lesions.
Main Results:
- Mice with PKA subunit haploinsufficiency exhibited bone lesions, including fibrous dysplasia and various sarcomas.
- These bone lesions were found to originate from bone stromal cells (BSCs).
- Different PKA subunit deficiencies resulted in variable effects on bone lesion formation, new bone generation, organization, and mineralization.
Conclusions:
- Haploinsufficiency of PKA subunit genes influences bone lesion formation from BSCs in a subunit- and activity-dependent manner.
- This study elucidates a pathway by which cyclic AMP signaling affects skeletal integrity and tumorigenesis.
- Findings have implications for understanding bone diseases and PKA-related cancers.
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