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Published on: December 18, 2019
Reduced osteoblastic population and defective mineralization in osteopetrotic (op/op) mice
Naoko Sakagami1, Norio Amizuka, Minqi Li
1Division of Oral Anatomy, Department of Oral Biological Science, Niigata University Graduate School of Medical and Dental Sciences, 5274, 2-Bancho, Gakkoucho-Dori, Niigata 951-8514, Japan.
Abstract:
Osteopetrotic (op/op) mice fail to exhibit bone remodeling because of a defective osteoclast formation due to a lack of macrophage colony-stimulating factor. In this study, we investigated the femora of op/op mice to clarify whether the osteoblastic population and bone mineralization are involved in osteoclasts or their bone resorption. The op/op mice extended the meshwork of trabecular bones from the chondro-osseous junction to the diaphyseal region. In the femoral metaphyses of op/op mice, intense alkaline phosphatase (ALPase)-positive osteoblasts were observed on the metaphyseal bone in close proximity to the erosion zone of the growth plates. Von Kossa's staining revealed scattered mineralized nodules and a fine meshwork of mineralized bone matrices while the wild-type littermates developed well-mineralized trabeculae parallel to the longitudinal axis. In contrast to the metaphysis, some op/op diaphyses showed flattened osteoblasts with weak ALPase-positivity, and the other diaphyses displayed bone surfaces without a covering by osteoblasts. It is likely, therefore, that the osteoblastic population and activity were lessened in the op/op diaphyses. Despite the osteopetrotic model, von Kossa's staining demonstrated patchy unmineralized areas in the op/op diaphyses, indicating that a lower population and/or the activity of osteoblasts resulted in defective mineralization in the bone. Transmission electron microscopy disclosed few osteoblasts on the diaphyseal bones, and instead, bone marrow cells and vascular endothelial cells were often attached to the unmineralized bone. Osteocytes were embedded in the unmineralized bone matrix. Thus, osteoclasts appear to be involved in the osteoblastic population and activity as well as subsequent bone mineralization.
Insights
Osteopetrotic mice have defective bone remodeling due to a lack of osteoclasts. This study reveals that osteoclasts influence osteoblast activity and bone mineralization, impacting bone structure.
Area of Science:
- Bone Biology
- Skeletal Development
- Mineralization
Background:
- Osteopetrotic (op/op) mice exhibit impaired bone remodeling due to defective osteoclast formation.
- Macrophage colony-stimulating factor is crucial for osteoclast development.
Purpose of the Study:
- To investigate the role of osteoblasts and bone mineralization in osteoclasts or their bone resorption in op/op mice femora.
- To clarify the relationship between osteoclast function and osteoblast activity.
Main Methods:
- Analysis of femora from op/op mice and wild-type littermates.
- Histological examination including alkaline phosphatase (ALPase) staining and Von Kossa's staining.
- Transmission electron microscopy (TEM) of diaphyseal bone.
Main Results:
- Op/op mice femora showed altered trabecular bone structure with extended meshwork.
- Metaphyses had intense ALPase-positive osteoblasts, while diaphyses displayed reduced osteoblast populations and activity.
- Defective bone mineralization was observed in op/op diaphyses, with unmineralized areas and embedded osteocytes.
Conclusions:
- Osteoclast deficiency in op/op mice impacts osteoblast population and activity.
- Impaired osteoclast function leads to defective bone mineralization.
- Osteoclasts play a critical role in regulating osteoblastic activity and bone mineralization.