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Recombinant α- β- and γ-Synucleins Stimulate Protein Phosphatase 2A Catalytic Subunit Activity in Cell Free Assays
Published on: August 13, 2017
Protein phosphatase 2A as a new target for downregulating osteoclastogenesis and alleviating titanium
Liangliang Wang1, Xiaobin Guo1, Wei Zhou1
1Department of Orthopaedics, The First Affiliated Hospital of Soochow University, Suzhou 215006, China.
Abstract:
Receptor activator of nuclear factor-кB ligand (RANKL)-induced osteoclastogenesis is believed to play a critical role in osteolytic diseases including peri-prosthetic osteolysis (PPO), the primary reason for implant failure and revision surgery. In this study, we observed that protein phosphatase 2A (PP2A), a major serine-threonine phosphatase, was highly expressed in human periprosthetic interface membranes with aseptic loosening and in a murine osteolysis model induced by titanium particle irritation. PP2A inhibition effectively alleviated titanium particle-induced bone destruction at osteolytic sites. In addition, PP2A downregulation significantly decreased osteoclast numbers and RANKL expression, compared with in animals treated with only titanium. Mechanistically, a PP2A selective inhibitor or PP2A siRNA suppressed osteoclastogenesis and alleviated osteoclastic resorption by inhibiting the RANKL-induced nuclear factor-кB and c-Jun N-terminal kinase signaling pathways. Downstream NFATc1 and c-Fos expression were also substantially suppressed by PP2A inhibition or knockdown. Our findings support the importance of PP2A during osteoclastogenesis, identifying PP2A as a novel target for treating particle-induced or other osteoclast-mediated bone resorption diseases.
Statement Of Significance:
Excessive osteoclast activation disrupts bone homeostasis and leads to osteoclast-mediated bone resorption diseases, such as peri-prosthetic osteolysis, regarded as the primary reason for implant failure and revision surgery. Here, we firstly demonstrated protein phosphatase 2A (PP2A), a major serine-threonine phosphatase, was highly expressed in human periprosthetic interface membranes with aseptic loosening and murine osteolysis model. Moreover, PP2A inhibition effectively alleviated titanium particle-induced bone destruction and decreased osteoclast numbers. Meanwhile, a PP2A selective inhibitor or PP2A siRNA suppressed osteoclastogenesis and alleviated osteoclastic resorption by inhibiting the nuclear factor-кB and c-Jun N-terminal kinase signaling pathways. Thus, PP2A is involved in osteoclastogenesis and could be a promising target for regulating bone homeostasis and osteolytic responses.
Insights
Protein phosphatase 2A (PP2A) is highly expressed in osteolysis and drives bone destruction. Inhibiting PP2A reduces osteoclast formation and RANKL expression, offering a new therapeutic target for bone resorption diseases.
Area of Science:
- Biochemistry
- Cell Biology
- Orthopedics
Background:
- Osteoclast-mediated bone resorption, particularly peri-prosthetic osteolysis (PPO), is a major cause of implant failure.
- Receptor activator of nuclear factor-κB ligand (RANKL)-induced osteoclastogenesis is critical in PPO.
Purpose of the Study:
- To investigate the role of protein phosphatase 2A (PP2A) in osteoclastogenesis and PPO.
- To evaluate PP2A as a potential therapeutic target for osteolytic diseases.
Main Methods:
- Analysis of PP2A expression in human periprosthetic tissues and a murine osteolysis model.
- Administration of a PP2A selective inhibitor or PP2A siRNA in a titanium particle-induced osteolysis model.
- Assessment of osteoclast numbers, bone destruction, RANKL expression, and key signaling pathways (NF-κB, JNK, NFATc1, c-Fos).
Main Results:
- PP2A was highly expressed in human PPO tissues and the murine model.
- PP2A inhibition significantly reduced titanium particle-induced bone destruction and osteoclast numbers.
- PP2A suppression inhibited osteoclastogenesis by downregulating RANKL and blocking NF-κB and JNK signaling pathways.
Conclusions:
- PP2A plays a crucial role in RANKL-induced osteoclastogenesis.
- PP2A is a promising therapeutic target for treating particle-induced osteolysis and other osteoclast-mediated bone resorption diseases.
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