Inhibition to DRP1 translocation can mitigate p38 MAPK-signaling pathway activation in GMC induced by hyperglycemia

LieMei Zhang1, Ling Ji, XiaoHong Tang

  • 1a Division of Nephrology , West China Hospital of Sichuan University , Chengdu , Sichuan , China.

Renal Failure
|April 11, 2015
PubMed

Insights

Dynamin-related protein 1 (DRP1) overexpression accelerates diabetic nephropathy (DN) progression by damaging glomerular mesangial cells. Inhibiting DRP1 may offer a therapeutic strategy for early DN intervention.

Area of Science:

  • Nephrology
  • Mitochondrial Biology
  • Diabetic Complications

Background:

  • Diabetic nephropathy (DN) is a severe diabetes complication with unknown causes and few treatments.
  • Dynamin-related protein 1 (DRP1) influences mitochondrial dynamics and disease pathogenesis.
  • The role of DRP1 in DN development is currently unclear.

Purpose of the Study:

  • To investigate the impact of DRP1 on the early stages of diabetic nephropathy (DN).
  • To explore the functional role of DRP1 in high glucose-induced glomerular mesangial cell (GMC) damage.

Main Methods:

  • Cultured glomerular mesangial cells (GMCs) in high glucose (HG) and normal glucose (NG) conditions.
  • Assessed ultra-microstructural changes, collagen IV and phosph-p38 expression, ROS production, and mitochondrial function.
  • Utilized a mitochondrial division inhibitor (Midivi-1) to evaluate DRP1's effects.

Main Results:

  • DRP1 expression significantly increased in HG-cultured GMCs, correlating with DN.
  • DRP1 overexpression exacerbated extracellular matrix accumulation and mitochondrial division in GMCs.
  • Overexpression of DRP1 promoted p38 activation, ROS accumulation, mitochondrial dysfunction, and collagen IV synthesis, effects reversed by Midivi-1.

Conclusions:

  • DRP1 overexpression accelerates pathological changes in glomerular mesangial cells under high glucose conditions.
  • DRP1 plays a detrimental role in the early pathogenesis of diabetic nephropathy.
  • Further research is needed to elucidate the precise mechanisms underlying DRP1's destructive function in DN.

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