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Fibrillin-1 Regulates Skeletal Stem Cell Differentiation by Modulating TGFβ Activity Within the Marrow Niche
Silvia Smaldone1, Nicholas P Clayton2, Maria del Solar1
1Department of Pharmacology and Systems Therapeutics, Icahn School of Medicine at Mount Sinai, New York, NY, USA.
Abstract:
A full understanding of the microenvironmental factors that control the activities of skeletal stem cells (also known as mesenchymal stem cells [MSCs]) in the adult bone marrow holds great promise for developing new therapeutic strategies to mitigate age-related diseases of bone and cartilage degeneration. Bone loss is an understudied manifestation of Marfan syndrome, a multisystem disease associated with mutations in the extracellular matrix protein and TGFβ modulator fibrillin-1. Here we demonstrate that progressive loss of cancellous bone in mice with limbs deficient for fibrillin-1 (Fbn1(Prx1-/-) mice) is accounted for by premature depletion of MSCs and osteoprogenitor cells combined with constitutively enhanced bone resorption. Longitudinal analyses of Fbn1(Prx1-/-) mice showed incremental bone loss and trabecular microarchitecture degeneration accompanied by a progressive decrease in the number and clonogenic potential of MSCs. Significant paucity of marrow fat cells in the long bones of Fbn1(Prx1-/-) mice, together with reduced adipogenic potential of marrow stromal cell cultures, indicated an additional defect in MSC differentiation. This postulate was corroborated by showing that an Fbn1-silenced osteoprogenitor cell line cultured in the presence of insulin yielded fewer than normal adipocytes and exhibited relatively lower PPARγ levels. Consonant with fibrillin-1 modulation of TGFβ bioavailability, cultures of marrow stromal cells from Fbn1(Prx1-/-) limb bones showed improper overactivation of latent TGFβ. In line with this finding, systemic TGFβ neutralization improved bone mass and trabecular microarchitecture along with normalizing the number of MSCs, osteoprogenitor cells, and marrow adipocytes. Collectively, our findings show that fibrillin-1 regulates MSC activity by modulating TGFβ bioavailability within the microenvironment of marrow niches.
Insights
Fibrillin-1 deficiency causes bone loss by depleting skeletal stem cells and enhancing bone resorption. TGFβ neutralization restores bone mass and stem cell populations in Marfan syndrome models.
Area of Science:
- Biomedical Science
- Cell Biology
- Bone Biology
Background:
- Skeletal stem cells (MSCs) in bone marrow are crucial for bone and cartilage health.
- Marfan syndrome, caused by fibrillin-1 mutations, involves understudied bone loss.
- Understanding MSC regulation is key for treating age-related bone diseases.
Purpose of the Study:
- Investigate the role of fibrillin-1 in bone microenvironment and MSC regulation.
- Determine the impact of fibrillin-1 deficiency on bone loss in Marfan syndrome models.
- Elucidate the mechanism by which fibrillin-1 influences MSCs and bone homeostasis.
Main Methods:
- Longitudinal analysis of Fbn1(Prx1-/-) mice to assess bone loss and microarchitecture.
- Quantification of MSCs, osteoprogenitor cells, and adipocytes in bone marrow.
- In vitro studies of MSC differentiation and TGFβ signaling.
- Assessment of therapeutic effects of TGFβ neutralization.
Main Results:
- Fbn1(Prx1-/-) mice exhibit progressive bone loss, reduced MSCs, and impaired adipogenesis.
- Fibrillin-1 deficiency leads to overactivation of latent TGFβ in bone marrow.
- TGFβ neutralization therapy improved bone mass, microarchitecture, and normalized cell populations.
Conclusions:
- Fibrillin-1 is essential for maintaining skeletal stem cell populations and bone homeostasis.
- Fibrillin-1 regulates MSC activity by modulating TGFβ bioavailability in the bone marrow niche.
- Targeting TGFβ may offer therapeutic potential for bone loss in Marfan syndrome.
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