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Updated: Oct 9, 2025

Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
Hyperphosphatemia-induced degradation of transcription factor EB exacerbates vascular calcification
1Department of Physiology, National Defense Medical College, Japan.
Insights
Chronic kidney disease (CKD) and hyperphosphatemia cause vascular calcification (VC) by disrupting the transcription factor EB (TFEB) pathway in vascular smooth muscle cells (VSMCs), leading to TFEB degradation.
Area of Science:
- Nephrology
- Vascular Biology
- Cell Biology
Background:
- Vascular calcification (VC) is a predictor of mortality in chronic kidney disease (CKD) and is linked to hyperphosphatemia.
- Dysregulation of the autophagy-lysosomal pathway in vascular smooth muscle cells (VSMCs) contributes to hyperphosphatemia-dependent VC.
- The precise mechanisms of lysosomal dysfunction in VC remain unclear.
Purpose of the Study:
- To investigate the role of Transcription Factor EB (TFEB) dysfunction in the progression of vascular calcification (VC) under hyperphosphatemia.
- To elucidate the mechanism by which TFEB is affected in hyperphosphatemia-induced VC.
Main Methods:
- Ex vivo and in vitro studies using mouse aorta, rat VSMCs, and human aortic smooth muscle cells exposed to inorganic phosphate (Pi).
- TFEB knockdown using small interfering RNA and assessment of VC.
- In vivo CKD model in rats induced by adenine diet, followed by observation of VC and TFEB expression.
- Analysis of TFEB ubiquitination and solubility in VSMCs under hyperphosphatemia.
Main Results:
- Inorganic phosphate (Pi) induced VC and decreased TFEB protein levels in VSMCs.
- TFEB knockdown or lysosomal inhibition exacerbated Pi-induced VC.
- In a CKD rat model, VC onset correlated with decreased aortic TFEB expression, which recovered upon adenine cessation.
- Hyperphosphatemia led to TFEB insolubilization and degradation via the ubiquitin-proteasome system in VSMCs.
Conclusions:
- Hyperphosphatemia drives vascular calcification (VC) by causing TFEB downregulation in VSMCs.
- TFEB degradation through the ubiquitin-proteasome pathway is a key mechanism in hyperphosphatemia-induced VC.
- This study reveals a novel pathway for VC pathogenesis in CKD and hyperphosphatemia.
Aims:
Chronic kidney disease (CKD) and subsequent hyperphosphatemia causes vascular calcification (VC), a strong predictor of mortality. Dysregulation of the autophagy-lysosomal pathway in vascular smooth muscle cells (VSMCs) mediates hyperphosphatemia-dependent VC. However, the process through which lysosomes become dysfunctional remains unknown. Transcription factor EB (TFEB) is a master regulator of lysosome biogenesis. The present study examined the hypothesis that TFEB dysfunction causes VC progression.
Methods And Results:
Inorganic phosphate (Pi) dose-dependently promoted VC in mouse aorta ex vivo, in rat VSMCs in vitro, and in human aortic smooth muscle cells in vitro, all accompanied by a decrease in TFEB protein. Lysosomal inhibitors or TFEB knockdown using small interfering RNA exacerbated Pi-induced VC in VSMCs. Conversely, TFEB downregulation was not observed in the hypercalcemia-sensitive VC model induced by excessive vitamin D dosages. Feeding rats an adenine-containing diet caused CKD and hyperphosphatemia. VC occurred in the adenine-fed rat aorta and regressed after adenine cessation. In this CKD model, aortic TFEB expression decreased at VC onset but recovered to average levels during recovery from VC after adenine cessation. The calcified area of the CKD rat aorta exhibited lysosomal damage and enhanced TFEB ubiquitination. Hyperphosphatemia in vitro increased insoluble TFEB and decreased soluble TFEB in VSMCs, both of which were abrogated by the proteasome inhibitor, MG-132.
Conclusion:
Hyperphosphatemia caused VC via TFEB downregulation in VSMCs. Under hyperphosphatemia, TFEB was insolubilized and degraded via the ubiquitin-proteasome system. Our results suggest a new mechanism for the pathogenesis of VC under CKD and hyperphosphatemia.
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