[13] Leccia, E., Gourrier, A., Doucet, J., Briki, F. (2010) Hard-alpha keratin degradation inside a tissue under high flux X-ray synchrotron micro-beam: A multi-scale time-resolved study, J. Struct. Biol. 170,69-75.
Abstract:
X-rays
interact strongly with biological organisms. Synchrotron radiation
sources deliver very intense X-ray photon fluxes within micro-
or
submicro cross-section beams, resulting in doses larger than the MGy.
The relevance of synchrotron radiation analyses of biological
materials is therefore questionable since such doses, million
times higher than the ones used in radiotherapy, can cause huge damages
in tissues, with regard to not only DNA, but also proteic and
lipid organizations. Very few data concerning the effect of
very high X-ray doses in tissues are available in the
literature.
We present here an analysis of the structural phenomena which occurwhen
the model tissue ofhumanhair is irradiated by a synchrotron X-ray
micro-beam. The choice of hair is supported by its
hierarchical
and partially ordered keratin structure which can be analysed inside
the tissue by X-ray diffraction. To assess the damages caused by hard
X-ray micro-beams (1 lm2 cross-section), short exposure time
scattering SAXS/WAXS patterns have been recorded at
beamline ID13
(ESRF) after various irradiation times. Various modifications of the
scattering patterns are observed, they provide fine insight of
the
radiation damages at various hierarchical levels and also unexpectedly
provide information about the stability of the various hierarchical
structural levels. It appears that the molecular level, i.e. the alpha
helices which are stabilized by hydrogen bonds and the alpha-helical
coiled coils which are stabilized by hydrophobic interactions,
is
more sensitive to radiation than the
supramolecular architecture
of the keratin filament and the filament packing within the keratin
associated proteins matrix, which is stabilized by disulphide
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