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S1P regulates intervertebral disc aging by mediating endoplasmic reticulum–mitochondrial calcium ion homeostasis
Bingjie Zheng, Xuyang Zhang, Xiangxi Kong, Jie Li, Bao Huang, Hui Li, Zhongyin Ji, Xiaoan Wei, Siyue Tao, Zhi Shan, Zemin Ling, Junhui Liu, Jian Chen, Fengdong Zhao
Bingjie Zheng, Xuyang Zhang, Xiangxi Kong, Jie Li, Bao Huang, Hui Li, Zhongyin Ji, Xiaoan Wei, Siyue Tao, Zhi Shan, Zemin Ling, Junhui Liu, Jian Chen, Fengdong Zhao
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Research Article Aging Bone biology

S1P regulates intervertebral disc aging by mediating endoplasmic reticulum–mitochondrial calcium ion homeostasis

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Abstract

As the aging process progresses, age-related intervertebral disc degeneration (IVDD) is becoming an emerging public health issue. Site-1 protease (S1P) has recently been found to be associated with abnormal spinal development in patients with mutations and has multiple biological functions. Here, we discovered a reduction of S1P in degenerated and aging intervertebral discs, primarily regulated by DNA methylation. Furthermore, through drug treatment and siRNA-mediated S1P knockdown, nucleus pulposus cells were more prone to exhibit degenerative and aging phenotypes. Conditional KO of S1P in mice resulted in spinal developmental abnormalities and premature aging. Mechanistically, S1P deficiency impeded COP II–mediated transport vesicle formation, which leads to protein retention in the endoplasmic reticulum (ER) and subsequently ER distension. ER distension increased the contact between the ER and mitochondria, disrupting ER-to-mitochondria calcium flow and resulting in mitochondrial dysfunction and energy metabolism disturbance. Finally, using 2-APB to inhibit calcium ion channels and the senolytic drug dasatinib and quercetin (D + Q) partially rescued the aging and degenerative phenotypes caused by S1P deficiency. In conclusion, our findings suggest that S1P is a critical factor in causing IVDD in the process of aging and highlight the potential of targeting S1P as a therapeutic approach for age-related IVDD.

Authors

Bingjie Zheng, Xuyang Zhang, Xiangxi Kong, Jie Li, Bao Huang, Hui Li, Zhongyin Ji, Xiaoan Wei, Siyue Tao, Zhi Shan, Zemin Ling, Junhui Liu, Jian Chen, Fengdong Zhao

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Figure 2

The expression of S1P is regulated by DNA methylation.

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The expression of S1P is regulated by DNA methylation.
(A) Immunoblots s...
(A) Immunoblots show methyltransferase expression in human NP cells after H2O2 treatment, along with quantification (n = 3 per group; *P < 0.05, ***P < 0.001 compared with NC). (B) MSP was performed on NP cells treated with H2O2 (100 μM) and rescued with 5-AZA (0.2 μM), indicating methylated (M) and unmethylated (U) forms of S1P. (C) BSP sequencing detected the S1P promoter region, with highlighted CpG islands in red. Unmethylated and methylated CpG sites are represented by white and black circles, respectively, for cells treated with H2O2 and rescued with 5-AZA. Different rows represent 10 bacterial monoclonals selected for sequencing in each group. (D) qPCR analysis of S1P expression in NP cells treated with H2O2 and rescued with varying 5-AZA concentrations (n = 6; ***P < 0.001 compared with negative treatment group). (E) Protein levels and quantification of S1P, Col2, SOX9, ADAMTS5, and MMP13 in NP cells treated with H2O2 and rescued with 5-AZA (n = 3; *P < 0.05, ***P < 0.001 compared with NC; #P < 0.05, ##P < 0.01, ###P < 0.001 vs. H2O2 group). (F) Western blot analysis of S1P protein expression following H2O2 treatment, with DNMT1, DNMT3a, and DNMT3b knocked down by siRNA along with quantification (n = 3; *P < 0.05, **P < 0.01 compared with NC; ###P < 0.001 compared with H2O2). Results are expressed as means ± SD, analyzed by Student’s t test (A) or 1-way ANOVA (D–F), followed by Tukey’s post hoc test.

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