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GDF15 induces excessive activation of osteoclasts within the vertebral endplates leading to early endplate degeneration
Xiaoqun Li, Jinhui Wu, Qingjie Kong, Miao Hu, Yuhong Li, Ziheng Wei, Heng Jiang, Xuhui Zhou, Jun Ma
Xiaoqun Li, Jinhui Wu, Qingjie Kong, Miao Hu, Yuhong Li, Ziheng Wei, Heng Jiang, Xuhui Zhou, Jun Ma
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Research Article Aging Bone biology

GDF15 induces excessive activation of osteoclasts within the vertebral endplates leading to early endplate degeneration

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Abstract

Modic type 1 and 2 changes (MC-1 and MC-2) are highly prevalent in individuals with chronic low back pain, yet the cellular and molecular mechanisms underlying vertebral endplate degeneration remain poorly defined. Here, we report that osteoclastogenesis is markedly elevated in MC-1 and MC-2 lesions compared with MC-3 lesions, suggesting an active role for osteoclasts in the early stages of degeneration. Using a lumbar spine instability (LSI) mouse model, we demonstrate enhanced osteoclast activity in degenerating endplates. RNA sequencing of mononuclear cells isolated from the endplate and adjacent subchondral bone identified Gdf15 as a potential upstream regulator of this process. Conditional knockout of Gdf15 in monocytes reduced osteoclast formation, aberrant CD31hiEmcnhi angiogenesis, and pain-associated neurogenesis, ultimately mitigating endplate degeneration and mechanical allodynia. Mechanistically, GDF15 promoted the fusion of preosteoclasts by modulating the expression of Rho family small GTPases. In a humanized GDF15 knockin mouse model, therapeutic neutralization of GDF15 led to a reduction in osteoclast burden, improved endplate structure, and attenuated pain behavior. Together, these findings uncover a previously unrecognized role for GDF15 in driving osteoclast-mediated endplate degeneration and highlight its potential as a therapeutic target for the treatment of endplate-related chronic low back pain.

Authors

Xiaoqun Li, Jinhui Wu, Qingjie Kong, Miao Hu, Yuhong Li, Ziheng Wei, Heng Jiang, Xuhui Zhou, Jun Ma

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Figure 7

GDF15 regulates preosteoclast fusion by modulating the expression of small rho GTPases.

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GDF15 regulates preosteoclast fusion by modulating the expression of sma...
(A) Representative TRAP staining images of bone marrow–derived mononuclear cells (BMMs) from Gdf15fl/fl and Gdf15 cKO mice after 3 days of RANKL induction, highlighting mononuclear TRAP+ osteoclast precursors. Scale bar: 50 μm. (B) Quantitative analysis of mononuclear TRAP+ cells. (C) Representative TRAP staining of BMMs after 6 days of RANKL induction, indicating mature multinucleated osteoclasts. Scale bar: 50 μm. (D) Quantification of multinucleated TRAP+ cells. (E) Representative images of F-actin ring staining in osteoclasts on day 6 after RANKL induction. Scale bar: 50 μm. (F) Quantification of F-actin ring area. (G) Schematic illustration of the preosteoclast membrane fusion assay using dual-fluorescence labeling (PKH26/PKH67). (H) Representative fluorescence images of fused BMMs at day 3. Scale bar: 100 μm. (I) Quantification of membrane merge rate. (J) Relative mRNA expression of Rho family GTPases Rac1, Cdc42, and Pak under Gdf15-knockout conditions. (K) Relative mRNA expression of Rac1, Cdc42, and Pak following GDF15 overexpression. Data are presented as mean ± SD. Statistical analysis was performed using 2-tailed Student’s t tests. **P < 0.01, ***P < 0.001.

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