Free radicals and low-level photon emission in human pathogenesis: state of the art

Roeland Van Wijk1, Eduard P A Van Wijk, Fred A C Wiegant

  • 1International Institute of Biophysics, Neuss, Germany. roeland_van_wijk@meluna.nl

Insights

Oxidative stress contributes to chronic diseases by overwhelming cellular defenses, leading to protein misfolding. Ultraweak photon emission offers a non-invasive method to monitor this oxidative status and its relation to disease.

Area of Science:

  • Biochemistry and Molecular Biology
  • Cellular Biology
  • Medical Research

Background:

  • Oxidative stress, driven by reactive oxygen species (ROS), impairs cellular defense systems, leading to protein misassembly and aggregation.
  • Insufficient cellular defenses (antioxidative systems, repair mechanisms, chaperone synthesis) are linked to chronic diseases.
  • Protein misfolding and aggregation are hallmarks of neurodegenerative disorders like Alzheimer's and Parkinson's diseases, as well as diabetes.

Purpose of the Study:

  • To review the fundamentals of free radical and antioxidant metabolism.
  • To explore the role of the protein quality control system in mitigating free radical damage and its connection to chronic diseases.
  • To introduce ultraweak luminescence as a marker for biological oxidant status and its application in human photon emission studies for chronic disease research.

Main Methods:

  • Review of existing literature on free radical metabolism, antioxidant systems, and protein quality control.
  • Examination of ultraweak luminescence as a technique for assessing oxidant status.
  • Analysis of research on human photon emission for non-invasive monitoring of oxidative status in relation to chronic diseases.

Main Results:

  • Excessive free radical production triggers compensatory mechanisms like heat shock proteins and chaperones.
  • Misfolded proteins and aggregates are characteristic of aging-related neurodegenerative diseases and diabetes.
  • Ultraweak photon emission, measured by sensitive photomultiplier tubes, shows promise for continuous, non-invasive monitoring of oxidative metabolism.

Conclusions:

  • Ultraweak photon emission provides a sensitive tool for assessing oxidant status.
  • Patterns and physical properties of ultraweak photon emission correlate with ROS-related damage and disease staging.
  • Human photon emission research offers a novel, non-invasive approach to understanding and monitoring chronic diseases linked to oxidative stress.

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