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Proton-activated chloride channel increases endplate porosity and pain in a mouse spine degeneration model
Peng Xue, Weixin Zhang, Mengxi Shen, Junhua Yang, Jiachen Chu, Shenyu Wang, Mei Wan, Junying Zheng, Zhaozhu Qiu, Xu Cao
Peng Xue, Weixin Zhang, Mengxi Shen, Junhua Yang, Jiachen Chu, Shenyu Wang, Mei Wan, Junying Zheng, Zhaozhu Qiu, Xu Cao
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Research Article Bone biology Cell biology

Proton-activated chloride channel increases endplate porosity and pain in a mouse spine degeneration model

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Abstract

Chronic low back pain (LBP) can severely affect daily physical activity. Aberrant osteoclast-mediated resorption leads to porous endplates, which allow the sensory innervation that causes LBP. Here, we report that expression of the proton-activated chloride (PAC) channel was induced during osteoclast differentiation in the porous endplates via a RANKL/NFATc1 signaling pathway. Extracellular acidosis evoked robust PAC currents in osteoclasts. An acidic environment of porous endplates and elevated PAC activation–enhanced osteoclast fusion provoked LBP. Furthermore, we found that genetic knockout of the PAC gene Pacc1 significantly reduced endplate porosity and spinal pain in a mouse LBP model, but it did not affect bone development or homeostasis of bone mass in adult mice. Moreover, both the osteoclast bone-resorptive compartment environment and PAC traffic from the plasma membrane to endosomes to form an intracellular organelle Cl channel had a low pH of approximately 5.0. The low pH environment activated the PAC channel to increase sialyltransferase St3gal1 expression and sialylation of TLR2 in the initiation of osteoclast fusion. Aberrant osteoclast-mediated resorption is also found in most skeletal disorders, including osteoarthritis, ankylosing spondylitis, rheumatoid arthritis, heterotopic ossification, and enthesopathy. Thus, elevated Pacc1 expression and PAC activity could be a potential therapeutic target for the treatment of LBP and osteoclast-associated pain.

Authors

Peng Xue, Weixin Zhang, Mengxi Shen, Junhua Yang, Jiachen Chu, Shenyu Wang, Mei Wan, Junying Zheng, Zhaozhu Qiu, Xu Cao

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Figure 7

PAC mediates osteoclast fusion through sialyltransferase St3gal1-induced sialylation of TLR2.

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PAC mediates osteoclast fusion through sialyltransferase St3gal1-induced...
(A) Representative image and quantitative analysis of Western blot for St3gal1 protein expression relative to β-actin in BMMs isolated from Pacc1+/+ and Pacc1–/– mice, at pH 6.8 or pH 7.4. (B) Statistical analysis of St3gal1 protein expression in each group, relative to the Pacc1+/+ pH 7.4 group (n = 4). (C and D) TRAP staining of cells isolated from Pacc1+/+ and Pacc1–/– mice; cells were cultured in neural or acidic medium for 3 days with RANKL stimulation and control or St3gal1 siRNA interference (n = 3). Scale bar: 50 μm. (E) The acidosis environment in the LSI model could acidify the intracellular pH level in osteoclasts through a synergetic function of PAC on the membrane. The translational expression of St3gal1 is regulated by PAC under the low-pH condition. PAC on the membrane of the endosome is responsible for maintaining the posttranslational sialylation of TLR2, which is mediated by St3gal1 for osteoclast fusion. (B and D) *P < 0.05, ***P < 0.005, and ****P < 0.001. Significance was determined by 1-way ANOVA (B) and 2-way ANOVA (D). Data are presented as the mean ± SD.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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