DocumentCode
2836180
Title
Second order hyperpolarizability of the collagen triple helix: Measurement and determination of its physical origin
Author
Deniset-Besseau, A. ; Duboisset, J. ; Loison, C. ; Hache, F. ; Benichou, E. ; Brevet, P.F. ; Schanne-Klein, U.C.
Author_Institution
Lab. d´´Opt. et Biosci., Ecole Polytech., Palaiseau, France
fYear
2009
fDate
14-19 June 2009
Firstpage
1
Lastpage
1
Abstract
Collagen is the major protein of the extracellular matrix and plays a central role in the formation of fibrillar and microfibrillar networks, basement membranes, as well as other structures of the connective tissue. As a fundamental brick of the architecture of tissues, it guarantees organs functioning and is crucial in the adaptative response to various tissue injuries. This protein is characterized by triple helical domains and possesses remarkable non linear optical properties. Indeed, collagen fibers exhibit efficient Second Harmonic Generation (SHG) in tissues and SHG microscopy has proved to be a valuable technique to probe the three-dimensional architecture of fibrillar collagen in native and biomimetic tissues and to assess the progression of fibrotic pathologies. However, the nonlinear optical response of fibrillar collagen is not fully characterized yet and quantitative data are required to further process SHG images. We therefore performed Hyper-Rayleigh Scattering (HRS) experiments in order to measure quantitatively the nonlinear optical response of the collagen molecule, and to get insight into the physical origin of high SHG signals observed for fibrillar collagen in tissues.
Keywords
Rayleigh scattering; bio-optics; biological tissues; biomembranes; cellular biophysics; molecular biophysics; optical harmonic generation; proteins; SHG microscopy; [(Pro-Pro-Gly)10]3; amino-acid sequence; biological organs; biomimetic tissues; collagen molecule; collagen triple helix; collagen-like short model peptide; depolarization ratio; extracellular matrix; fibrillar network; harmonophores; hyper-Rayleigh scattering; internal reference method; membranes; microfibrillar network; nonlinear optical response; polarization-resolved experiments; protein; rat-tail type I collagen; second harmonic generation; second order hyperpolarizability; three-dimensional architecture; Biomedical optical imaging; Biomembranes; Connective tissue; Extracellular; Fiber nonlinear optics; Injuries; Nonlinear optics; Optical harmonic generation; Optical scattering; Proteins;
fLanguage
English
Publisher
ieee
Conference_Titel
Lasers and Electro-Optics 2009 and the European Quantum Electronics Conference. CLEO Europe - EQEC 2009. European Conference on
Conference_Location
Munich
Print_ISBN
978-1-4244-4079-5
Electronic_ISBN
978-1-4244-4080-1
Type
conf
DOI
10.1109/CLEOE-EQEC.2009.5194760
Filename
5194760
Link To Document