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GREM2 inactivation increases trabecular bone mass in mice
Karin H Nilsson1, Petra Henning2, Jianyao Wu2
1Department of Internal Medicine and Clinical Nutrition, Institute of Medicine, Sahlgrenska Osteoporosis Centre, Centre for Bone and Arthritis Research at the Sahlgrenska Academy, University of Gothenburg, Gothenburg, Sweden. karin.nilsson.2@gu.se.
Abstract:
Osteoporosis is a common skeletal disease affecting millions of individuals world-wide, with an increased risk of fracture, and a decreased quality of life. Despite its well-known consequences, the etiology of osteoporosis and optimal treatment methods are not fully understood. Human genetic studies have identified genetic variants within the FMN2/GREM2 locus to be associated with trabecular volumetric bone mineral density (vBMD) and vertebral and forearm fractures, but not with cortical bone parameters. GREM2 is a bone morphogenetic protein (BMP) antagonist. In this study, we employed Grem2-deficient mice to investigate whether GREM2 serves as the plausible causal gene for the fracture signal at the FMN2/GREM2 locus. We observed that Grem2 is moderately expressed in bone tissue and particularly in osteoblasts. Complete Grem2 gene deletion impacted mouse survival and body growth. Partial Grem2 inactivation in Grem2+/- female mice led to increased trabecular BMD of femur and increased trabecular bone mass in tibia due to increased trabecular thickness, with an unchanged cortical thickness, as compared with wildtype littermates. Furthermore, Grem2 inactivation stimulated osteoblast differentiation, as evidenced by higher alkaline phosphatase (Alp), osteocalcin (Bglap), and osterix (Sp7) mRNA expression after BMP-2 stimulation in calvarial osteoblasts and osteoblasts from the long bones of Grem2-/- mice compared to wildtype littermates. These findings suggest that GREM2 is a possible target for novel osteoporotic treatments, to increase trabecular bone mass and prevent osteoporotic fractures.
Insights
Genetic variants in GREM2 are linked to osteoporosis. Inactivating GREM2 in mice increased bone density and stimulated bone-forming cells, suggesting GREM2 as a potential therapeutic target for osteoporosis treatment.
Area of Science:
- Bone biology and genetics
- Skeletal disease research
Background:
- Osteoporosis is a prevalent skeletal disorder causing fractures and reduced quality of life.
- Genetic studies link the FMN2/GREM2 locus to trabecular bone mineral density and fracture risk.
- GREM2 functions as a bone morphogenetic protein (BMP) antagonist.
Purpose of the Study:
- To investigate if GREM2 is the causal gene for fracture risk associated with the FMN2/GREM2 locus.
- To explore the role of GREM2 in bone metabolism and osteoblast differentiation.
Main Methods:
- Utilized Grem2-deficient mice (Grem2-/- and Grem2+/-) for functional studies.
- Analyzed bone mineral density (BMD), bone structure (trabecular and cortical thickness), and gene expression in osteoblasts.
- Assessed the impact of Grem2 inactivation on osteoblast differentiation markers (Alp, Bglap, Sp7).
Main Results:
- Grem2 is expressed in bone tissue, particularly in osteoblasts.
- Partial Grem2 inactivation in female mice (Grem2+/-) increased trabecular BMD and bone mass.
- Grem2 inactivation stimulated osteoblast differentiation and expression of key bone formation genes.
- Complete Grem2 deletion affected mouse survival and growth.
Conclusions:
- GREM2 plays a role in regulating trabecular bone mass.
- GREM2 inactivation enhances osteoblast differentiation and bone formation.
- GREM2 is a potential therapeutic target for increasing bone mass and preventing osteoporotic fractures.
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