Related Experiment Video
Updated: Nov 7, 2025

Software-Assisted Quantitative Measurement of Osteoarthritic Subchondral Bone Thickness
Published on: March 18, 2022
RIP1 Perturbation Induces Chondrocyte Necroptosis and Promotes Osteoarthritis Pathogenesis via Targeting BMP7
Jin Cheng1, Xiaoning Duan1, Xin Fu1
1Beijing Key Laboratory of Sports Injuries, Department of Sports Medicine, Institute of Sports Medicine of Peking University, Peking University Third Hospital, Beijing, China.
Abstract:
Osteoarthritis (OA) is a highly prevalent and debilitating joint disorder that characterized by progressive destruction of articular cartilage. There is no effective disease-modifying therapy for the condition due to limited understanding of the molecular mechanisms on cartilage maintenance and destruction. Receptor-interacting protein kinase 1 (RIP1)-mediated necroptosis plays a vital role in various diseases, but the involvement of RIP1 in OA pathogenesis remains largely unknown. Here we show that typical necrotic cell morphology is observed within human OA cartilage samples in situ, and that RIP1 is significantly upregulated in cartilage from both OA patients and experimental OA rat models. Intra-articular RIP1 overexpression is sufficient to induce structural and functional defects of cartilage in rats, highlighting the crucial role of RIP1 during OA onset and progression by mediating chondrocyte necroptosis and disrupting extracellular matrix (ECM) metabolism homeostasis. Inhibition of RIP1 activity by its inhibitor necrostatin-1 protects the rats from trauma-induced cartilage degradation as well as limb pain. More importantly, we identify bone morphogenetic protein 7 (BMP7) as a novel downstream target that mediates RIP1-induced chondrocyte necroptosis and OA manifestations, thereby representing a non-canonical regulation mode of necroptosis. Our study supports a model whereby the activation of RIP1-BMP7 functional axis promotes chondrocyte necroptosis and subsequent OA pathogenesis, thus providing a new therapeutic target for OA.
Insights
Receptor-interacting protein kinase 1 (RIP1) drives osteoarthritis by promoting chondrocyte necroptosis. Inhibiting RIP1 or its downstream target BMP7 shows therapeutic potential for cartilage protection and pain relief in osteoarthritis.
Area of Science:
- Orthopedics
- Molecular Biology
- Cell Death Pathways
Background:
- Osteoarthritis (OA) is a degenerative joint disease with no effective disease-modifying treatments.
- Limited understanding of molecular mechanisms in cartilage destruction hinders therapeutic development.
- The role of Receptor-interacting protein kinase 1 (RIP1)-mediated necroptosis in OA pathogenesis is largely unknown.
Purpose of the Study:
- To investigate the involvement and role of RIP1 in osteoarthritis pathogenesis.
- To identify molecular targets and pathways regulated by RIP1 in chondrocytes.
- To evaluate the therapeutic potential of RIP1 inhibition in OA models.
Main Methods:
- Analysis of human OA cartilage and experimental OA rat models.
- Assessment of RIP1 expression and localization in chondrocytes.
- Evaluation of RIP1 overexpression and inhibition effects on cartilage structure and function.
- Identification of downstream targets of RIP1 signaling.
Main Results:
- RIP1 is upregulated in human and experimental OA cartilage.
- RIP1 overexpression induces cartilage defects and pain in rats via chondrocyte necroptosis.
- RIP1 inhibition with necrostatin-1 protects against cartilage degradation and pain.
- Bone morphogenetic protein 7 (BMP7) is identified as a novel downstream mediator of RIP1-induced necroptosis.
Conclusions:
- RIP1 plays a critical role in OA pathogenesis by promoting chondrocyte necroptosis and disrupting ECM homeostasis.
- The RIP1-BMP7 axis represents a novel mechanism in OA development.
- Targeting RIP1 or BMP7 offers a potential therapeutic strategy for osteoarthritis.
More Related Videos
Related Concept Videos
Regulation of the Unfolded Protein Response
NF-κB-dependent Signaling Pathway
NF-κB-dependent Signaling Mechanism
The...
The JAK-STAT Signaling Pathway

