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Glucose dialysate induces mitochondrial DNA damage in peritoneal mesothelial cells

Yoshitaka Ishibashi1, Tokuichiro Sugimoto, Yasuko Ichikawa

  • 1Division of Nephrology and Endocrinology, University of Tokyo School of Medicine, Japan. YI431204@aol.com

Abstract

Insights

High glucose in peritoneal dialysis fluid damages peritoneal mesothelial cells (PMCs) by causing oxidative mitochondrial DNA damage. This study investigated PMC damage in continuous ambulatory peritoneal dialysis (CAPD) patients and confirmed glucose overload accelerates this damage in vitro.

Area of Science:

  • Nephrology
  • Cell Biology
  • Biochemistry

Background:

  • Peritoneal mesothelial cells (PMCs) are damaged in patients undergoing long-term continuous ambulatory peritoneal dialysis (CAPD).
  • The exact mechanism of PMC damage in CAPD is not fully understood.
  • High glucose concentrations may lead to toxic radical generation and mitochondrial DNA damage in PMCs.

Purpose of the Study:

  • To investigate damage to PMCs in long-term CAPD patients.
  • To determine if glucose overload accelerates PMC damage in vitro.

Main Methods:

  • Descriptive clinical and in vitro study involving peritoneal tissue and dialysate samples from CAPD patients and controls.
  • In vitro incubation of primary PMCs with varying glucose and mannitol concentrations.
  • Assessment of oxidative DNA damage using anti-8-hydroxy-2'-deoxyguanosine (8-OH-dG) antibody.
  • Analysis of cellular ATP content, mitochondrial membrane potential, and reactive oxygen species (ROS) generation.

Main Results:

  • Long-term CAPD patients showed significant 8-OH-dG staining in PMCs, indicating oxidative DNA damage.
  • In vitro, high glucose concentrations led to increased 8-OH-dG staining, mitochondrial swelling, and ROS production.
  • Mitochondrial localization of 8-OH-dG and alterations in cellular energy and ROS levels were observed.

Conclusions:

  • High-glucose peritoneal dialysate likely promotes oxidative mitochondrial DNA damage in PMCs.
  • These findings highlight a potential mechanism for PMC injury in CAPD patients.
  • Further research may explore strategies to mitigate glucose-induced PMC damage.

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