Department of Cell Biology, Radboud Institute for Molecular Life Sciences, Radboud University Medical Centre, Nijmegen, Netherlands.
Laboratory for Optics & Biosciences École Polytechnique, CNRS, INSERM, Paris, France.
Elife. 2022 Feb 15;11:e63776. doi: 10.7554/eLife.63776.
Three-photon excitation has recently been demonstrated as an effective method to perform intravital microscopy in deep, previously inaccessible regions of the mouse brain. The applicability of 3-photon excitation for deep imaging of other, more heterogeneous tissue types has been much less explored. In this work, we analyze the benefit of high-pulse-energy 1 MHz pulse-repetition-rate infrared excitation near 1300 and 1700 nm for in-depth imaging of tumorous and bone tissue. We show that this excitation regime provides a more than 2-fold increased imaging depth in tumor and bone tissue compared to the illumination conditions commonly used in 2-photon excitation, due to improved excitation confinement and reduced scattering. We also show that simultaneous 3- and 4-photon processes can be effectively induced with a single laser line, enabling the combined detection of blue to far-red fluorescence together with second and third harmonic generation without chromatic aberration, at excitation intensities compatible with live tissue imaging. Finally, we analyze photoperturbation thresholds in this excitation regime and derive setpoints for safe cell imaging. Together, these results indicate that infrared high-pulse-energy low-repetition-rate excitation opens novel perspectives for intravital deep-tissue microscopy of multiple parameters in strongly scattering tissues and organs.
三光子激发最近已被证明是一种有效的方法,可以在小鼠大脑中以前无法到达的深层区域进行活体显微镜检查。三光子激发对其他更异质组织类型的深层成像的适用性尚未得到广泛探索。在这项工作中,我们分析了在 1300nm 和 1700nm 附近的高脉冲能量 1MHz 脉冲重复率红外激发对肿瘤和骨组织的深层成像的益处。我们表明,与 2 光子激发中常用的照明条件相比,这种激发方案在肿瘤和骨组织中提供了超过 2 倍的成像深度增加,这是由于改进的激发限制和减少的散射。我们还表明,可以使用单个激光线有效地诱导同时的三光子和四光子过程,从而能够在不产生色差的情况下,结合第二和第三谐波产生,一起检测从蓝色到远红色的荧光,而激发强度与活体组织成像兼容。最后,我们在该激发方案中分析光致微扰阈值,并得出安全细胞成像的设定点。总之,这些结果表明,红外高脉冲能量低重复率激发为在强散射组织和器官中对多个参数进行活体深层组织显微镜检查开辟了新的前景。