AMPK mediates regulation of glomerular volume and podocyte survival

Khadija Banu1,2, Qisheng Lin1,3, John M Basgen4

  • 1Division of Nephrology, Department of Medicine, Icahn School of Medicine at Mount Sinai, New York, New York, USA.

JCI Insight
|September 2, 2021
PubMed

Insights

Shroom3 knockdown causes kidney injury but activates AMPK, which protects podocytes by reducing glomerular volume. This finding reveals AMPK

Area of Science:

  • Nephrology
  • Molecular Biology
  • Cell Biology

Background:

  • Shroom3 knockdown induces albuminuria and foot process effacement (FPE).
  • Podocyte Fyn inactivation is reported in minimal change disease (MCD).
  • Reduced glomerular volume may prevent podocytopenia progression.

Purpose of the Study:

  • To investigate the role of Shroom3 and Fyn in podocyte volume regulation.
  • To test the hypothesis that lower glomerular volume prevents podocytopenia.
  • To elucidate the mechanism of AMPK activation in podocyte injury.

Main Methods:

  • Utilized unilateral and 5/6th nephrectomy models in Shroom3-knockdown (KD) mice.
  • Analyzed podocyte volumes, glomerular hypertrophy, and protein content.
  • Investigated AMPK activation, LKB1 redistribution, and effects of AMPK inhibition/activation.
  • Examined glomerular transcriptomes from MCD and FSGS biopsies.

Main Results:

  • Shroom3 knockdown reduced podocyte volume and prevented hypertrophy after nephrectomy.
  • FYN knockdown mimicked Shroom3 knockdown effects on podocyte volume.
  • AMPK activation was observed downstream of Shroom3/Fyn, linked to LKB1 redistribution.
  • AMPK inhibition exacerbated podocytopenia, while activation restricted glomerular volume and progression to FSGS.
  • MCD biopsies showed Fyn inactivation and AMPK activation compared to FSGS.

Conclusions:

  • AMPK plays a crucial role in regulating glomerular volume and podocyte survival.
  • AMPK activation adaptively reduces glomerular volume to prevent podocytopenia during podocyte injury.
  • This study highlights a potential therapeutic target for glomerular diseases.

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