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Activation of Nuclear Factor Erythroid 2-Related Factor 2 Transcriptionally Upregulates Ectonucleotide
Ida Tomomi1, Hiroyuki Kanzaki1, Miho Shimoyama1
1Department of Orthodontics, School of Dental Medicine, Tsurumi University, Yokohama 230-8501, Kanagawa, Japan.
Abstract:
Calcification plays a key role in biological processes, and breakdown of the regulatory mechanism results in a pathological state such as ectopic calcification. We hypothesized that ENPP1, the enzyme that produces the calcification inhibitor pyrophosphate, is transcriptionally regulated by Nrf2, and that Nrf2 activation augments ENPP1 expression to inhibit ectopic calcification. Cell culture experiments were performed using mouse osteoblastic cell line MC3T3-E1. Nrf2 was activated by 5-aminolevulinic acid and sodium ferrous citrate. Nrf2 overexpression was induced by the transient transfection of an Nrf2 expression plasmid. ENPP1 expression was monitored by real-time RT-PCR. Because the promoter region of ENPP1 contains several Nrf2-binding sites, chromatin immunoprecipitation using an anti-Nrf2 antibody followed by real-time PCR (ChIP-qPCR) was performed. The relationship between Nrf2 activation and osteoblastic differentiation was examined by alkaline phosphatase (ALP) and Alizarin red staining. We used mice with a hypomorphic mutation in ENPP1 (ttw mice) to analyze whether Nrf2 activation inhibits ectopic calcification. Nrf2 and Nrf2 overexpression augmented ENPP1 expression and inhibited osteoblastic differentiation, as indicated by ALP expression and calcium deposits. ChIP-qPCR showed that some putative Nrf2-binding sites in the ENPP1 promoter region were bound by Nrf2. Nrf2 activation inhibited ectopic calcification in mice. ENPP1 gene expression was transcriptionally regulated by Nrf2, and Nrf2 activation augmented ENPP1 expression, leading to the attenuation of osteoblastic differentiation and ectopic calcification in vitro and in vivo. Nrf2 activation has a therapeutic potential for preventing ectopic calcification.
Insights
Nuclear factor erythroid 2-related factor 2 (Nrf2) activation boosts ENPP1 expression, inhibiting pathological calcification. This discovery offers potential therapeutic strategies for preventing ectopic calcification.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- Calcification is crucial in biological processes, but its dysregulation leads to pathological conditions like ectopic calcification.
- Ectopic calcification, a disease state, arises from the breakdown of regulatory mechanisms controlling calcification.
- Pyrophosphate, a calcification inhibitor, is produced by the enzyme ENPP1.
Purpose of the Study:
- To investigate if Nrf2 transcriptionally regulates ENPP1 expression.
- To determine if Nrf2 activation enhances ENPP1 expression to prevent ectopic calcification.
- To explore the therapeutic potential of Nrf2 activation in managing ectopic calcification.
Main Methods:
- Cell culture experiments using mouse osteoblastic MC3T3-E1 cells.
- Nrf2 activation via 5-aminolevulinic acid and sodium ferrous citrate; Nrf2 overexpression through plasmid transfection.
- ENPP1 expression analysis via real-time RT-PCR; Nrf2 binding to the ENPP1 promoter confirmed by ChIP-qPCR.
Main Results:
- Nrf2 activation and overexpression increased ENPP1 expression and inhibited osteoblastic differentiation and calcification in vitro.
- ChIP-qPCR confirmed Nrf2 binding to putative sites within the ENPP1 promoter region.
- Nrf2 activation demonstrated efficacy in inhibiting ectopic calcification in vivo using ttw mice.
Conclusions:
- ENPP1 gene expression is transcriptionally controlled by Nrf2.
- Nrf2 activation upregulates ENPP1, attenuating osteoblastic differentiation and ectopic calcification.
- Nrf2 activation presents a promising therapeutic avenue for preventing ectopic calcification.
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