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Published February 8, 2019 | Version v1
Journal article

Increased myocardial 18F-FDG uptake as a marker of Doxorubicin-induced oxidative stress

  • 1. University of Genoa. Nuclear Medicine, Department of Health Sciences (DISSAL) (Italy)
  • 2. IRCCS Ospedale Policlinico San Martino. Nuclear Medicine (Italy)
  • 3. Istituto Giannina Gaslini. Laboratory of Experimental Therapy in Oncology (Italy)
  • 4. IRCCS Ospedale Policlinico San Martino. Cell Biology Unit (Italy)
  • 5. IRCCS Ospedale Policlinico San Martino. Animal Facility (Italy)
  • 6. University of Genoa. Department of Experimental Medicine (Italy)
  • 7. University of Genoa. Department of Internal Medicine & Centre of Excellence for Biomedical Research (Italy)
  • 8. IRCCS Ospedale Policlinico San Martino. Cardiovascular Disease Unit (Italy)
  • 9. CNR Institute of Molecular Bioimaging and Physiology (Italy)

Description

Background

: Oxidative stress and its interference on myocardial metabolism play a major role in Doxorubicin (DXR) cardiotoxic cascade.

Methods

: Mice models of neuroblastoma (NB) were treated with 5 mg DXR/kg, either free (Free-DXR) or encapsulated in untargeted (SL[DXR]) or in NB-targeting Stealth Liposomes (pep-SL[DXR] and TP-pep-SL[DXR]). Control mice received saline. FDG-PET was performed at baseline (PET1) and 7 days after therapy (PET2). At PET2 Troponin-I and NT-proBNP were assessed. Explanted hearts underwent biochemical, histological, and immunohistochemical analyses. Finally, FDG uptake and glucose consumption were simultaneously measured in cultured H9c2 in the presence/absence of Free-DXR (1 μM).

Results

: Free-DXR significantly enhanced the myocardial oxidative stress. Myocardial-SUV remained relatively stable in controls and mice treated with liposomal formulations, while it significantly increased at PET2 with respect to baseline in Free-DXR. At this timepoint, myocardial-SUV was directly correlated with both myocardial redox stress and hexose-6-phosphate-dehydrogenase (H6PD) enzymatic activity, which selectively sustain cellular anti-oxidant mechanisms. Intriguingly, in vitro, Free-DXR selectively increased FDG extraction fraction without altering the corresponding value for glucose.

Conclusion

: The direct correlation between cardiac FDG uptake and oxidative stress indexes supports the potential role of FDG-PET as an early biomarker of DXR oxidative damage.

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Nuclear Cardiology (Online)
Journal Volume
27
Journal Issue
6
Journal Page Range
p. 2183-2194
ISSN
1532-6551

Optional Information

Copyright
Copyright (c) 2019 © American Society of Nuclear Cardiology 2019