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Updated: Jul 7, 2026

Pharmacologic Induction of Epidermal Melanin and Protection Against Sunburn in a Humanized Mouse Model
Published on: September 7, 2013
A biomimetic approach to shielding from ionizing radiation: The case of melanized fungi
Thomas Vasileiou1, Leopold Summerer1
1ESA - Advanced Concepts Team, European Space Research and Technology Centre (ESTEC), NL-2200AG Noordwijk, Netherlands.
Abstract:
Melanized fungi have been shown to thrive in environments with high radionuclide concentrations, which led to the association of the pigment melanin with the protection against ionizing radiation. Several hypotheses regarding the function of melanin have been proposed. Yet, the exact mechanism behind the protective property of melanin is unclear and poorly explored. A better understanding of the mechanisms that are involved in increasing the tolerance of the organisms to ionizing radiation could lead to technology transfer to human-related applications. Effective protection from radiation is essential for human space flight in general and human missions beyond Low Earth Orbit specifically. In this paper, we follow a biomimetic approach: we test two of current hypotheses and discuss how they could be applied to radiation shield designs. First we focus on the interaction of melanin with high energy electrons, which has been suspected to reduce the kinetic energy of the electrons through a cascade of collisions, thus providing physical shielding. Second, we investigate if the spatial arrangement of melanin, organized as a thin film or a collection of hollow micro-spheres, affects its shielding properties. To this end, we measured experimentally and by numerical simulations the attenuation of β-radiation as pass through solutions and suspensions of melanin and contrasted the values to the ones of cellulose, a substance with similar elemental composition. Further, we investigate the spatial arrangement hypothesis using Monte Carlo simulations. In agreement with the simulations, our experiments indicated that melanin does not provide improved shielding in comparison to cellulose from β-radiation. However, our simulations suggest a substantial effect of the spatial arrangement on the shielding performance of melanin, a pathway that could be transferred to the design of composite radiation shields.
Insights
Melanin
Area of Science:
- Biophysics
- Radiation Biology
- Materials Science
Background:
- Melanized fungi tolerate high radionuclide concentrations, suggesting melanin protects against ionizing radiation.
- Understanding melanin's radiation protection mechanisms is crucial for human spaceflight and medical applications.
- Current hypotheses on melanin's protective properties remain largely unexplored.
Purpose of the Study:
- To investigate the biomimetic potential of melanin for radiation shielding.
- To test hypotheses regarding melanin's interaction with high-energy electrons and its spatial arrangement.
- To explore melanin's application in designing advanced radiation shields.
Main Methods:
- Experimental measurement of beta-radiation attenuation through melanin solutions and suspensions.
- Numerical simulations using Monte Carlo methods to model radiation interaction.
- Comparison of melanin's shielding properties with cellulose, a material with similar elemental composition.
Main Results:
- Experimental results showed melanin did not offer superior beta-radiation shielding compared to cellulose.
- Simulations indicated that the spatial arrangement of melanin significantly impacts its shielding performance.
- Melanin's interaction with high-energy electrons did not provide a cascade effect for substantial energy reduction.
Conclusions:
- Melanin itself does not inherently provide enhanced radiation shielding over similar materials like cellulose.
- The spatial organization of melanin is a critical factor influencing its potential as a radiation shielding material.
- Further research into melanin's structural properties could inform the development of novel composite radiation shields.

