Laboratory for Optics and Biosciences, Ecole polytechnique, CNRS, INSERM, Université Paris-Saclay, 91128, Palaiseau cedex, France.
L'Oréal Research and Innovation, 93600, Aulnay sous Bois, France.
Sci Rep. 2017 Jun 19;7(1):3792. doi: 10.1038/s41598-017-03359-8.
Two-photon imaging of endogenous fluorescence can provide physiological and metabolic information from intact tissues. However, simultaneous imaging of multiple intrinsic fluorophores, such as nicotinamide adenine dinucleotide(phosphate) (NAD(P)H), flavin adenine dinucleotide (FAD) and retinoids in living systems is generally hampered by sequential multi-wavelength excitation resulting in motion artifacts. Here, we report on efficient and simultaneous multicolor two-photon excitation of endogenous fluorophores with absorption spectra spanning the 750-1040 nm range, using wavelength mixing. By using two synchronized pulse trains at 760 and 1041 nm, an additional equivalent two-photon excitation wavelength at 879 nm is generated, and achieves simultaneous excitation of blue, green and red intrinsic fluorophores. This method permits an efficient simultaneous imaging of the metabolic coenzymes NADH and FAD to be implemented with perfect image co-registration, overcoming the difficulties associated with differences in absorption spectra and disparity in concentration. We demonstrate ratiometric redox imaging free of motion artifacts and simultaneous two-photon fluorescence lifetime imaging (FLIM) of NADH and FAD in living tissues. The lifetime gradients of NADH and FAD associated with different cellular metabolic and differentiation states in reconstructed human skin and in the germline of live C. Elegans are thus simultaneously measured. Finally, we present multicolor imaging of endogenous fluorophores and second harmonic generation (SHG) signals during the early stages of Zebrafish embryo development, evidencing fluorescence spectral changes associated with development.
双光子激发内源荧光可以提供完整组织的生理和代谢信息。然而,在活系统中同时成像多个内源性荧光团,如烟酰胺腺嘌呤二核苷酸(磷酸)(NAD(P)H)、黄素腺嘌呤二核苷酸(FAD)和类视黄醇,通常受到顺序多波长激发的限制,导致运动伪影。在这里,我们报告了使用波长混合,通过双光子激发来有效且同时激发吸收光谱跨越 750-1040nm 范围的内源性荧光团,从而实现多色激发。通过使用 760nm 和 1041nm 两个同步脉冲序列,在 879nm 处产生等效的双光子激发波长,从而实现对蓝、绿和红内源荧光团的同时激发。该方法允许对代谢辅酶 NADH 和 FAD 进行高效的同时成像,实现完美的图像配准,克服了吸收光谱差异和浓度差异带来的困难。我们证明了无运动伪影的比率型氧化还原成像和 NADH 和 FAD 的同时双光子荧光寿命成像(FLIM),同时测量了重建的人类皮肤和活体秀丽隐杆线虫生殖系中不同细胞代谢和分化状态相关的 NADH 和 FAD 的寿命梯度。最后,我们在斑马鱼胚胎发育的早期阶段展示了内源性荧光团和二次谐波产生(SHG)信号的多色成像,证明了与发育相关的荧光光谱变化。