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Sorafenib inhibits ossification of the posterior longitudinal ligament by blocking LOXL2-mediated vascularization
Longqing Wang1, Wenhao Jiang2, Siyuan Zhao3
1Spine Center, Department of Orthopaedics, Shanghai Changzheng Hospital, Second Affiliated Hospital of Naval Medical University, Shanghai, 200003, PR China.
Abstract:
Ossification of the Posterior Longitudinal Ligament (OPLL) is a degenerative hyperostosis disease characterized by the transformation of the soft and elastic vertebral ligament into bone, resulting in limited spinal mobility and nerve compression. Employing both bulk and single-cell RNA sequencing, we elucidate the molecular characteristics, cellular components, and their evolution during the OPLL process at a single-cell resolution, and validate these findings in clinical samples. This study also uncovers the capability of ligament stem cells to exhibit endothelial cell-like phenotypes in vitro and in vivo. Notably, our study identifies LOXL2 as a key regulator in this process. Through gain-and loss-of-function studies, we elucidate the role of LOXL2 in the endothelial-like differentiation of ligament cells. It acts via the HIF1A pathway, promoting the secretion of downstream VEGFA and PDGF-BB. This function is not related to the enzymatic activity of LOXL2. Furthermore, we identify sorafenib, a broad-spectrum tyrosine kinase inhibitor, as an effective suppressor of LOXL2-mediated vascular morphogenesis. By disrupting the coupling between vascularization and osteogenesis, sorafenib demonstrates significant inhibition of OPLL progression in both BMP-induced and enpp1 deficiency-induced animal models while having no discernible effect on normal bone mass. These findings underscore the potential of sorafenib as a therapeutic intervention for OPLL.
Insights
Ossification of the Posterior Longitudinal Ligament (OPLL) involves ligament cells becoming bone-like. LOXL2 drives this via a HIF1A pathway, but sorafenib effectively inhibits OPLL progression by targeting vascularization.
Area of Science:
- Biomedical research
- Molecular biology
- Pathology
Background:
- Ossification of the Posterior Longitudinal Ligament (OPLL) is a degenerative condition causing spinal immobility and nerve compression.
- Understanding the cellular and molecular mechanisms of OPLL is crucial for developing effective treatments.
Purpose of the Study:
- To elucidate the molecular and cellular evolution of OPLL at single-cell resolution.
- To identify key regulators and potential therapeutic targets for OPLL.
Main Methods:
- Bulk and single-cell RNA sequencing of OPLL tissues.
- In vitro and in vivo studies of ligament stem cell differentiation.
- Gain- and loss-of-function studies for LOXL2.
- Evaluation of sorafenib efficacy in OPLL animal models.
Main Results:
- Ligament stem cells can adopt endothelial cell-like phenotypes during OPLL.
- LOXL2 acts as a key regulator, promoting endothelial-like differentiation via the HIF1A pathway.
- Sorafenib inhibits LOXL2-mediated vascular morphogenesis and significantly reduces OPLL progression in animal models without affecting normal bone mass.
Conclusions:
- LOXL2 is a critical mediator in OPLL pathogenesis through non-enzymatic regulation of vascularization.
- Sorafenib shows therapeutic potential for OPLL by disrupting the vascularization-osteogenesis coupling.
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