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Glutathione limits RUNX2 oxidation and degradation to regulate bone formation
Guoli Hu, Yilin Yu, Deepika Sharma, Shondra M. Pruett-Miller, Yinshi Ren, Guo-Fang Zhang, Courtney M. Karner
Guoli Hu, Yilin Yu, Deepika Sharma, Shondra M. Pruett-Miller, Yinshi Ren, Guo-Fang Zhang, Courtney M. Karner
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Research Article Bone biology

Glutathione limits RUNX2 oxidation and degradation to regulate bone formation

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Abstract

Reactive oxygen species (ROS) are natural products of mitochondrial oxidative metabolism and oxidative protein folding. ROS levels must be well controlled, since elevated ROS has been shown to have deleterious effects on osteoblasts. Moreover, excessive ROS is thought to underlie many of the skeletal phenotypes associated with aging and sex steroid deficiency in mice and humans. The mechanisms by which osteoblasts regulate ROS and how ROS inhibits osteoblasts are not well understood. Here, we demonstrate that de novo glutathione (GSH) biosynthesis is essential in neutralizing ROS and establish a proosteogenic reduction and oxidation reaction (REDOX) environment. Using a multifaceted approach, we demonstrate that reducing GSH biosynthesis led to acute degradation of RUNX2, impaired osteoblast differentiation, and reduced bone formation. Conversely, reducing ROS using catalase enhanced RUNX2 stability and promoted osteoblast differentiation and bone formation when GSH biosynthesis was limited. Highlighting the therapeutic implications of these findings, in utero antioxidant therapy stabilized RUNX2 and improved bone development in the Runx2+/– haplo-insufficient mouse model of human cleidocranial dysplasia. Thus, our data establish RUNX2 as a molecular sensor of the osteoblast REDOX environment and mechanistically clarify how ROS negatively impacts osteoblast differentiation and bone formation.

Authors

Guoli Hu, Yilin Yu, Deepika Sharma, Shondra M. Pruett-Miller, Yinshi Ren, Guo-Fang Zhang, Courtney M. Karner

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Figure 3

Glutamine metabolism is essential for maintaining GSH concentration to stabilize RUNX2.

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Glutamine metabolism is essential for maintaining GSH concentration to s...
(A) Fractional contribution of [U-13C]glutamine to GSH in naive and differentiated calvarial cells (n = 3). (B–D) Effect of GLS inhibition using BPTES on the contribution of [U-13C]glutamine to GSH (B), intracellular GSH levels (C), and ROS levels (D) in calvarial cells (n = 3-4). (E) Effect of BPTES and MEE-GSH treatment on biotinylated-dimedone incorporation into immunoprecipitated FLAG-RUNX2 in HEK293 cells (n = 3). (F) Western blot analysis of the effect of MG132 on RUNX2 expression in calvarial cells treated with BPTES for up to 48 hours (n = 3). (G and H) Western blot analysis of the effect of BPTES and MEE-GSH on RUNX2 degradation (n = 3). Quantification of 3 independent experiments is shown in H. (I) Western blot analysis of GLS, PRDX1-SO3, PRDX1, and RUNX2 in bone extracts isolated from Sp7Cre;Glsfl/+ (WT) and Sp7Cre;Glsfl/fl (GLSKO) mice (n = 4). PRDX1-SO3 was normalized to total PRDX1; all other proteins were normalized to ACTB. (J) Representative μCT images of distal femurs from WT and GLSKO mice (n = 11). BV/TV is listed below each image. Data are shown as mean ± SD. *P < 0.05, **P < 0.01, ***P < 0.001. #P < 0.05, comparison between group BPTES and BPTES+GSH. Two-tailed Student’s unpaired t test (A–D and H) and 2-tailed Student’s paired t test (I and J) were used.

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