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Updated: Jun 10, 2026

A RANKL-based Osteoclast Culture Assay of Mouse Bone Marrow to Investigate the Role of mTORC1 in Osteoclast Formation
Published on: March 15, 2018
Extracellular microfibrils control osteoblast-supported osteoclastogenesis by restricting TGF{beta} stimulation of
Harikiran Nistala1, Sui Lee-Arteaga, Silvia Smaldone
1Department of Pharmacology and Systems Therapeutics, Mount Sinai School of Medicine, New York, New York 10021, USA.
Abstract:
Mutations in fibrillin-1 or fibrillin-2, the major structural components of extracellular microfibrils, cause pleiotropic manifestations in Marfan syndrome and congenital contractural arachnodactyly, respectively. We recently found that fibrillin-1 and fibrillin-2 control bone formation by regulating osteoblast differentiation through the differential modulation of endogenous TGFβ and bone morphogenetic protein signals. Here, we describe in vivo and ex vivo experiments that implicate the fibrillins as negative regulators of bone resorption. Adult Fbn2(-/-) mice display a greater than normal osteolytic response to locally implanted lipopolysaccharide-coated titanium particles. Although isolated cultures of Fbn2(-/-) preosteoclasts exhibited normal differentiation and activity, these features were substantially augmented when mutant or wild-type preosteoclasts were co-cultured with Fbn2(-/-) but not wild-type osteoblasts. Greater osteoclastogenic potential of Fbn2(-/-) osteoblasts was largely accounted for by up-regulation of the Rankl gene secondary to heightened TGFβ activity. This conclusion was based on the findings that blockade of TGFβ signaling blunts Rankl up-regulation in Fbn2(-/-) osteoblasts and bones and that systemic TGFβ antagonism improves locally induced osteolysis in Fbn2(-/-) mice. Abnormally high Rankl expression secondary to elevated TGFβ activity was also noted in cultured osteoblasts from Fbn1(-/-) mice. Collectively our data demonstrated that extracellular microfibrils balance local catabolic and anabolic signals during bone remodeling in addition to implying distinct mechanisms of bone loss in Marfan syndrome and congenital contractural arachnodactyly.
Insights
Fibrillins, key microfibril proteins, negatively regulate bone resorption. Loss of Fibrillin-2 (Fbn2) in mice increases osteolysis by enhancing osteoblast-mediated osteoclast activity via TGFβ signaling.
Area of Science:
- Biochemistry
- Cell Biology
- Orthopedics
Background:
- Fibrillin-1 and Fibrillin-2 are crucial for extracellular microfibrils.
- Mutations cause Marfan syndrome and congenital contractural arachnodactyly.
- Fibrillins regulate bone formation by modulating TGFβ and BMP signals.
Purpose of the Study:
- To investigate the role of fibrillins in bone resorption.
- To determine if fibrillins act as negative regulators of osteoclastogenesis.
Main Methods:
- In vivo and ex vivo studies using Fbn2 knockout mice.
- Co-culture experiments with osteoblasts and preosteoclasts.
- Analysis of gene expression (Rankl) and TGFβ signaling pathways.
Main Results:
- Fbn2 knockout mice exhibit increased osteolytic response to inflammatory stimuli.
- Fbn2-deficient osteoblasts enhance osteoclast differentiation and activity.
- Upregulation of Rankl in Fbn2-deficient osteoblasts is mediated by elevated TGFβ activity.
- TGFβ blockade reduces osteolysis in Fbn2 knockout mice.
Conclusions:
- Extracellular microfibrils, including fibrillins, act as negative regulators of bone resorption.
- Heightened TGFβ signaling and Rankl expression contribute to bone loss in Fbn2 deficiency.
- Distinct mechanisms of bone loss may exist in Marfan syndrome and congenital contractural arachnodactyly.
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