Melanin and Neuromelanin Fluorescence Studies Focusing on Parkinson's Disease and Its Inherent Risk for Melanoma

Dieter Leupold1,2, Lukasz Szyc3, Goran Stankovic4

  • 1LTB Lasertechnik Berlin GmbH, 12489 Berlin, Germany. dieter.leupold@ltb-berlin.de.

Cells
|June 19, 2019
PubMed

Insights

This study found no spectral differences in melanin or neuromelanin between Parkinson's disease patients and controls. However, nonlinear spectroscopy shows promise for early melanoma detection in Parkinson's patients.

Area of Science:

  • Neuroscience
  • Dermatology
  • Biophysics

Background:

  • Parkinson's disease (PD) and melanoma share an increased risk association.
  • Hypotheses suggest shared pathways involving melanin and neuromelanin.

Purpose of the Study:

  • To investigate the link between PD and melanoma using nonlinear spectroscopy.
  • To analyze fluorescence spectra of cutaneous melanin and postmortem neuromelanin in PD patients and controls.

Main Methods:

  • Utilized stepwise two-photon excitation nonlinear spectroscopy.
  • Characterized fluorescence spectra of cutaneous pigmentation and postmortem neuromelanin.
  • Compared spectral data between Parkinson's disease patients and control groups.

Main Results:

  • No spectral differences were found in cutaneous melanin or neuromelanin between PD patients and controls.
  • Parkinson's disease does not appear to alter neuromelanin configuration.
  • Nonlinear spectroscopy successfully identified malignant transformations in PD patients, similar to controls.

Conclusions:

  • The link between PD and melanoma may involve non-pigmentary pathways.
  • Nonlinear spectroscopy is a promising tool for melanoma screening in PD patients.
  • The melanocortin-1-receptor gene remains a potential link between PD and melanoma.

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