Wright A J, Poland S P, Girkin J M, Freudiger C W, Evans C L, Xie X S
Institute of Photonics, SUPA, University of Strathclyde, 106 Rottenrow, Glasgow,G4 0NW, Scotland.
Opt Express. 2007 Dec 24;15(26):18209-19. doi: 10.1364/oe.15.018209.
We report the use of adaptive optics with coherent anti-Stokes Raman scattering (CARS) microscopy for label-free deep tissue imaging based on molecular vibrational spectroscopy. The setup employs a deformable membrane mirror and a random search optimization algorithm to improve signal intensity and image quality at large sample depths. We demonstrate the ability to correct for both system and sample-induced aberrations in test samples as well as in muscle tissue in order to enhance the CARS signal. The combined system and sample-induced aberration correction increased the signal by an average factor of approximately 3x for the test samples at a depth of 700 microm and approximately 6x for muscle tissue at a depth of 260 microm. The enhanced signal and higher penetration depth offered by adaptive optics will augment CARS microscopy as an in vivo and in situ biomedical imaging modality.
我们报道了将自适应光学与相干反斯托克斯拉曼散射(CARS)显微镜相结合,用于基于分子振动光谱的无标记深层组织成像。该装置采用可变形膜镜和随机搜索优化算法,以提高大样本深度下的信号强度和图像质量。我们展示了校正测试样本以及肌肉组织中系统和样本引起的像差的能力,以增强CARS信号。对于深度为700微米的测试样本,系统和样本引起的像差校正相结合使信号平均增强约3倍;对于深度为260微米的肌肉组织,信号增强约6倍。自适应光学提供的增强信号和更高的穿透深度将增强CARS显微镜作为一种体内和原位生物医学成像方式的能力。