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Published on: December 18, 2019
Meox2Cre-mediated disruption of CSF-1 leads to osteopetrosis and osteocyte defects
Stephen E Harris1, Mary MacDougall, Diane Horn
1Department of Periodontics, University of Texas Health Science Center at San Antonio, San Antonio, TX 78229, USA.
Abstract:
CSF-1, a key regulator of mononuclear phagocyte production, is highly expressed in the skeleton by osteoblasts/osteocytes and in a number of nonskeletal tissues such as uterus, kidney and brain. The spontaneous mutant op/op mouse has been the conventional model of CSF-1 deficiency and exhibits a pleiotropic phenotype characterized by osteopetrosis, and defects in hematopoiesis, fertility and neural function. Studies to further delineate the biologic effect of CSF-1 within various tissues have been hampered by the lack of suitable models. To address this issue, we generated CSF-1 floxed/floxed mice and demonstrate that Cre-mediated recombination using Meox2Cre, a Cre line expressed in epiblast during early embryogenesis, results in mice with ubiquitous CSF-1 deficiency (CSF-1KO). Homozygous CSF-1KO mice lacked CSF-1 in all tissues and displayed, in part, a similar phenotype to op/op mice that included: failure of tooth eruption, osteopetrosis, reduced macrophage densities in reproductive and other organs and altered hematopoiesis with decreased marrow cellularity, circulating monocytes and B cell lymphopoiesis. In contrast to op/op mice, CSF-1KO mice showed elevated circulating and splenic T cells. A striking feature in CSF-1KO mice was defective osteocyte maturation, bone mineralization and osteocyte-lacunar system that was associated with reduced dentin matrix protein 1 (DMP1) expression in osteocytes. CSF-1KO mice also showed a dramatic reduction in osteomacs along the endosteal surface that may have contributed to the hematopoietic and cortical bone defects. Thus, our findings show that ubiquitous CSF-1 gene deletion using a Cre-based system recapitulates the expected osteopetrotic phenotype. Moreover, results point to a novel link between CSF-1 and osteocyte survival/function that is essential for maintaining bone mass and strength during skeletal development.
Insights
Colony-stimulating factor 1 (CSF-1) deficiency in mice causes osteopetrosis and hematopoietic defects. This study reveals a novel role for CSF-1 in osteocyte function, crucial for bone health.
Area of Science:
- Skeletal Biology
- Hematopoiesis
- Developmental Biology
Background:
- Colony-stimulating factor 1 (CSF-1) regulates mononuclear phagocyte production and is expressed in bone and other tissues.
- The op/op mouse model of CSF-1 deficiency shows osteopetrosis and developmental defects.
- Previous models limited detailed study of CSF-1's tissue-specific roles.
Purpose of the Study:
- To generate a mouse model for ubiquitous CSF-1 deficiency to study its biological effects.
- To investigate the role of CSF-1 in skeletal development, hematopoiesis, and organ function.
Main Methods:
- Generated CSF-1 floxed/floxed mice.
- Utilized Meox2Cre for Cre-mediated recombination to achieve ubiquitous CSF-1 deficiency (CSF-1KO).
- Phenotypic analysis of CSF-1KO mice, including skeletal, hematopoietic, and organ assessments.
Main Results:
- CSF-1KO mice exhibited osteopetrosis, defective tooth eruption, and altered hematopoiesis, similar to op/op mice.
- CSF-1KO mice showed reduced osteomacs, impaired osteocyte maturation, and decreased bone mineralization.
- A novel link between CSF-1 and osteocyte survival/function was identified, impacting bone mass and strength.
Conclusions:
- Ubiquitous CSF-1 deletion via a Cre-based system effectively models CSF-1 deficiency phenotypes.
- CSF-1 is essential for osteocyte maturation and function, contributing to skeletal integrity.
- This model provides new insights into CSF-1's multifaceted roles beyond macrophage regulation.
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