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Published on: February 9, 2021
Light-cycle disruption promotes renal calcium oxalate crystal deposition via the NR1D1-IRS1-FOXO1 axis
Shunyu Gao1, Ke Huang1, Sicheng Wan1
1Department of Urology, Institute of Urology, West China Hospital, Sichuan University, No. 37, Guoxue Alley, Chengdu 610041, Sichuan, China.
Abstract:
Calcium oxalate (CaOx) kidney stone disease is common and highly recurrent, but the upstream mechanisms that predispose renal tubules to crystal deposition remain unclear. This study investigated whether disruption of environmental light-dark cycles promotes CaOx crystal deposition through NR1D1-dependent metabolic and redox regulation. Mouse models of light-cycle disruption were established with or without glyoxylate-induced hyperoxaluria, and NR1D1-deficient mice were used for in vivo validation. Oxalate-injured HK-2 cells were used for pharmacological and genetic experiments. Transcriptomics, histology, biochemical assays, ROS and mitochondrial membrane potential analyses, crystal adhesion assays, ChIP-qPCR, and dual-luciferase reporter assays were performed. Disrupted lighting conditions promoted renal CaOx crystal deposition and further exacerbated glyoxylate-induced crystal accumulation, accompanied by tubular injury, oxidative stress, reduced antioxidant capacity, and altered circulating insulin and melatonin levels. NR1D1 expression was suppressed, whereas IRS1 signaling and crystal adhesion-related proteins were increased. SR9009 treatment and NR1D1 overexpression alleviated oxalate-induced mitochondrial dysfunction, ROS accumulation, and crystal adhesion, whereas NR1D1 deficiency aggravated renal injury in vivo. Mechanistically, NR1D1 directly bound the IRS1 promoter and repressed IRS1 transcription, thereby preserving FOXO1/GPX4-mediated antioxidant defense. These findings identify an NR1D1-IRS1-FOXO1/GPX4 axis linking light-cycle disruption and circadian-associated dysregulation to oxidative tubular injury and CaOx crystal deposition.
Insights
Disrupting light-dark cycles promotes calcium oxalate kidney stones by suppressing NR1D1, a protein crucial for regulating metabolism and antioxidant defense, leading to kidney injury.
Area of Science:
- Circadian biology
- Nephrology
- Molecular medicine
Background:
- Calcium oxalate (CaOx) kidney stone disease is common and recurrent, with unclear mechanisms driving renal tubule crystal deposition.
- Disruption of environmental light-dark cycles is a potential, yet understudied, factor in kidney stone formation.
Purpose of the Study:
- To investigate if disrupted light-dark cycles promote CaOx crystal deposition via NR1D1-dependent metabolic and redox regulation.
- To elucidate the molecular mechanisms linking circadian disruption to kidney stone formation.
Main Methods:
- Utilized mouse models with disrupted light-dark cycles and glyoxylate-induced hyperoxaluria.
- Employed NR1D1-deficient mice and oxalate-injured HK-2 cells for in vivo and in vitro validation.
- Conducted transcriptomics, histology, biochemical assays, ROS analysis, and ChIP-qPCR.
Main Results:
- Disrupted lighting promoted renal CaOx crystal deposition, tubular injury, and oxidative stress.
- Suppressed NR1D1 expression correlated with increased IRS1 signaling and crystal adhesion.
- NR1D1 activation alleviated oxalate-induced damage, while NR1D1 deficiency worsened kidney injury.
Conclusions:
- Light-cycle disruption promotes CaOx crystal deposition and kidney injury through NR1D1 suppression.
- An NR1D1-IRS1-FOXO1/GPX4 axis links circadian disruption to oxidative tubular injury and kidney stone formation.
- Targeting this axis may offer therapeutic strategies for recurrent kidney stones.
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