Leibniz Institute of Photonic Technology and Member of Leibniz Research Alliance "Health Technologies", Albert-Einstein-Strasse 9, 07745 Jena, Germany.
National Institute of Optics, National Research Council (CNR-INO), Largo E. Fermi 6, 50125 Florence, Italy.
Anal Chem. 2022 Jan 25;94(3):1575-1584. doi: 10.1021/acs.analchem.1c03348. Epub 2022 Jan 11.
Tissue cross-linking represents an important and often used technique to enhance the mechanical properties of biomaterials. For the first time, we investigated biochemical and structural properties of genipin (GE) cross-linked equine pericardium (EP) using optical imaging techniques in tandem with quantitative atomic force microscopy (AFM). EP was cross-linked with GE at 37 °C, and its biochemical and biomechanical properties were observed at various time points up to 24 h. GE cross-linked EP was monitored by the normalized ratio between its second-harmonic generation (SHG) and two-photon autofluorescence emissions and remained unchanged for untreated EP; however, a decreasing ratio due to depleted SHG and elevated autofluorescence and a fluorescence band at 625 nm were found for GE cross-linked EP. The mean autofluorescence lifetime of GE cross-linked EP also decreased. The biochemical signature of GE cross-linker and shift in collagen bands were detected and quantified using shifted excitation Raman difference spectroscopy as an innovative approach for tackling artifacts with high fluorescence backgrounds. AFM images indicated a higher and increasing Young's modulus correlated with cross-linking, as well as collagen structural changes in GE cross-linked EP, qualitatively explaining the observed decrease in the second-harmonic signal. In conclusion, we obtained detailed information about the biochemical, structural, and biomechanical effects of GE cross-linked EP using a unique combination of optical and force microscopy techniques in a nondestructive and label-free manner.
组织交联是一种重要且常用的技术,用于增强生物材料的机械性能。我们首次使用光学成像技术与定量原子力显微镜(AFM)联用,研究了京尼平(GE)交联马的心包膜(EP)的生化和结构特性。EP 在 37°C 下与 GE 交联,并在 24 小时内的各个时间点观察其生化和生物力学特性。通过其二次谐波产生(SHG)和双光子自发荧光发射之间的归一化比值监测 GE 交联的 EP,对于未处理的 EP 保持不变;然而,对于 GE 交联的 EP,发现由于 SHG 耗尽和自发荧光升高以及 625nm 处荧光带导致比值降低。GE 交联 EP 的平均自发荧光寿命也降低了。使用移位激发拉曼差光谱作为一种解决具有高荧光背景的伪影的创新方法,检测和定量了 GE 交联剂的生化特征和胶原带的移位。AFM 图像表明杨氏模量较高且呈上升趋势,与交联相关,以及 GE 交联 EP 中的胶原结构变化,定性解释了观察到的二次谐波信号的下降。总之,我们使用独特的光学和力显微镜技术组合,以非破坏性和无标记的方式,获得了关于 GE 交联 EP 的生化、结构和生物力学影响的详细信息。