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An osteocalcin-deficient mouse strain without endocrine abnormalities
Cassandra R Diegel1, Steven Hann2, Ugur M Ayturk2,3
1Program in Skeletal Disease and Tumor Microenvironment and Center for Cancer and Cell Biology, Van Andel Institute, Grand Rapids, Michigan, United States of America.
Abstract:
Osteocalcin (OCN), the most abundant noncollagenous protein in the bone matrix, is reported to be a bone-derived endocrine hormone with wide-ranging effects on many aspects of physiology, including glucose metabolism and male fertility. Many of these observations were made using an OCN-deficient mouse allele (Osc-) in which the 2 OCN-encoding genes in mice, Bglap and Bglap2, were deleted in ES cells by homologous recombination. Here we describe mice with a new Bglap and Bglap2 double-knockout (dko) allele (Bglap/2p.Pro25fs17Ter) that was generated by CRISPR/Cas9-mediated gene editing. Mice homozygous for this new allele do not express full-length Bglap or Bglap2 mRNA and have no immunodetectable OCN in their serum. FTIR imaging of cortical bone in these homozygous knockout animals finds alterations in the collagen maturity and carbonate to phosphate ratio in the cortical bone, compared with wild-type littermates. However, μCT and 3-point bending tests do not find differences from wild-type littermates with respect to bone mass and strength. In contrast to the previously reported OCN-deficient mice with the Osc-allele, serum glucose levels and male fertility in the OCN-deficient mice with the Bglap/2pPro25fs17Ter allele did not have significant differences from wild-type littermates. We cannot explain the absence of endocrine effects in mice with this new knockout allele. Possible explanations include the effects of each mutated allele on the transcription of neighboring genes, or differences in genetic background and environment. So that our findings can be confirmed and extended by other interested investigators, we are donating this new Bglap and Bglap2 double-knockout strain to the Jackson Laboratories for academic distribution.
Insights
New research introduces a double-knockout mouse model for osteocalcin (OCN) deficiency, revealing no significant impact on glucose metabolism or male fertility, contrary to previous findings. This OCN-deficient mouse strain is now available for further investigation.
Area of Science:
- Endocrinology
- Bone Biology
- Genetics
Background:
- Osteocalcin (OCN) is a bone-derived hormone influencing glucose metabolism and male fertility.
- Previous studies used an OCN-deficient mouse model (Osc-) with conflicting results.
- A new OCN-deficient mouse model is needed for clearer understanding.
Purpose of the Study:
- To generate and characterize a new OCN-deficient mouse model using CRISPR/Cas9.
- To investigate the physiological effects of complete OCN deficiency.
- To compare findings with the previously established OCN-deficient mouse model.
Main Methods:
- CRISPR/Cas9 gene editing to create Bglap and Bglap2 double-knockout (dko) mice.
- FTIR imaging to analyze cortical bone composition.
- μCT and 3-point bending tests for bone mass and strength assessment.
- Measurement of serum glucose levels and evaluation of male fertility.
Main Results:
- Homozygous dko mice lack full-length Bglap/Bglap2 mRNA and detectable serum OCN.
- Cortical bone showed altered collagen maturity and carbonate to phosphate ratio.
- Bone mass and strength were comparable to wild-type littermates.
- No significant differences in serum glucose levels or male fertility were observed compared to wild-type mice.
Conclusions:
- The new Bglap/Bglap2 dko mouse model exhibits OCN deficiency without the previously reported endocrine effects on glucose metabolism and male fertility.
- The discrepancy with the Osc- allele model suggests potential influences of genetic background, environment, or off-target gene effects.
- This novel OCN-deficient mouse strain is provided to the research community for further validation and study.
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