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Published on: December 11, 2020
p66Shc-mediated hydrogen peroxide production impairs nephrogenesis causing reduction of number of glomeruli
Bradley Miller1, Oleg Palygin2, Ashraf El-Meanawy1
1Department of Medicine, Medical College of Wisconsin, Milwaukee, WI 53226, USA.
Insights
Abnormal p66Shc signaling disrupts kidney development by increasing reactive oxygen species (ROS) production, leading to reduced nephron numbers and impaired renal function. This highlights p66Shc
Area of Science:
- Molecular Biology
- Nephrology
- Oxidative Stress Research
Background:
- Adaptor protein p66Shc, encoded by the Shc1 gene, is implicated in oxidative stress-related diseases.
- p66Shc's role in disease pathogenesis involves phosphorylation at Serine 36 (Ser36) and mitochondrial translocation.
- Abnormal p66Shc-mediated reactive oxygen species (ROS) production is hypothesized to impact nephrogenesis.
Purpose of the Study:
- To investigate the role of abnormal p66Shc signaling in nephron development during nephrogenesis.
- To test the hypothesis that p66Shc-mediated ROS production is critical for normal kidney development.
Main Methods:
- Generation of p66Shc-Del mutant rats lacking regulatory Ser36.
- Measurement of hydrogen peroxide (H2O2) renal production using enzymatic microelectrode biosensors.
- Quantification of nephron numbers via acid maceration in p66Shc-Del rats.
Main Results:
- p66Shc-Del rats exhibited increased renal H2O2 production compared to wild-type rats.
- A significant reduction in glomerular number was observed in adult p66Shc-Del rats.
- p66Shc-Del rats showed reduced renal function and impaired kidney development.
Conclusions:
- Irregular p66Shc signaling and subsequent H2O2 production critically regulate nephrogenesis.
- Abnormal p66Shc signaling negatively impacts kidney development and function.
- Reduced nephron number due to aberrant p66Shc signaling increases susceptibility to kidney disease and hypertension.
Aims:
Adaptor protein p66Shc, encoded by Shc1 gene, contributes to the pathogenesis of oxidative stress-related diseases. p66Shc ability to promote oxidative stress-related diseases requires phosphorylation of serine 36 residue (Ser36) and depends on translocation of p66Shc to the mitochondria. We tested the hypothesis that abnormal p66Shc-mediated reactive oxygen species (ROS) production could be critically involved in nephrons development during nephrogenesis.
Main Methods:
We have generated unique mutant rats (termed p66Shc-Del), which express endogenous p66Shc with a 9-amino acid deletion, and lack regulatory Ser36. H2O2 renal production was measured by enzymatic microelectrode biosensors. Nephron numbers in 3-5 weeks old p66Shc-Del rats were quantified using the acid maceration method.
Key Findings:
p66Shc-Del rats, as wild type salt sensitive rats, display increased mean arterial blood pressure following chronic exposure to a high salt diet. In contrast to wild type rats, p66Shc-Del rats display increased H2O2 renal production and are characterized by a reduction in renal function. The number of glomeruli is significantly reduced in adult p66Shc-Del rats.
Significance:
Since low nephron number is an established risk factor for kidney disease and hypertension in humans and rodents, our data suggest that H2O2 renal production, caused by irregular signaling of p66Shc, could be critical in regulating nephrogenesis and that abnormal p66Shc signaling negatively impacts kidney development and renal function by increasing susceptibility to diabetic nephropathy and hypertension-induced nephropathy.
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