Effects of acetaminophen on mitochondrial complex I activity in the rat liver and kidney: a PET study with

Hiroyuki Ohba1, Masakatsu Kanazawa1, Takeharu Kakiuchi1

  • 1Central Research Laboratory, Hamamatsu Photonics K.K., 5000 Hirakuchi, Hamamatsu, Shizuoka, 434-8601, Japan.

EJNMMI Research
|November 23, 2016
PubMed
Abstract

Insights

This study shows that 18F-BCPP-BF PET imaging can detect early liver and kidney damage from acetaminophen overdose by measuring mitochondrial complex I (MC-I) activity. This probe offers a way to quantitatively assess organ dysfunction in vivo.

Area of Science:

  • Biomedical imaging
  • Pharmacology
  • Toxicology

Background:

  • Acetaminophen overdose can cause liver and kidney damage.
  • Mitochondrial complex I (MC-I) is a potential biomarker for organ dysfunction.
  • 18F-BCPP-BF is a novel PET probe for MC-I imaging.

Purpose of the Study:

  • To evaluate 18F-BCPP-BF as a PET probe for detecting acetaminophen-induced liver and kidney dysfunction.
  • To assess the utility of MC-I activity as a biomarker for early organ damage.
  • To investigate the kinetic and distribution of 18F-BCPP-BF in rats.

Main Methods:

  • High-resolution animal PET imaging in rats.
  • Administration of acetaminophen at varying doses (100 or 300 mg/kg).
  • Assessment of 18F-BCPP-BF uptake in liver and kidney, with and without rotenone (MC-I inhibitor).
  • Measurement of biochemical parameters in plasma and urine.

Main Results:

  • Rotenone pre-administration confirmed 18F-BCPP-BF specificity for MC-I in liver and kidney.
  • Acetaminophen reduced 18F-BCPP-BF uptake dose-dependently in the liver (100 mg/kg) and kidney (300 mg/kg) within 2 hours.
  • Biochemical parameters were affected later (≥6 hours) at higher doses (300 mg/kg).

Conclusions:

  • 18F-BCPP-BF is a promising PET probe for quantitative imaging of hepatic and renal dysfunction.
  • MC-I activity can serve as an early biomarker for acetaminophen-induced organ damage.
  • PET imaging with 18F-BCPP-BF allows for in vivo assessment of early-stage organ dysfunction.

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