Rothstein Emily C, Nauman Michael, Chesnick Scott, Balaban Robert S
Laboratory of Cardiac Energetics, National Heart, Lung and Blood Institute, National Institutes of Health, Department of Human Health Services, Bethesda, MD 20892, USA.
J Microsc. 2006 Apr;222(Pt 1):58-64. doi: 10.1111/j.1365-2818.2006.01570.x.
Two-photon excitation fluorescence microscopy and backscattered-second harmonic generation microscopy permit the investigation of the subcellular events within living animals but numerous aspects of these experiments need to be optimized to overcome the traditional microscope geometry, motion and optical coupling to the subject. This report describes a stable system for supporting a living instrumented mouse or rabbit during endogenous reduced nicotinamide adenine dinucleotide and exogenous dye two-photon excitation fluorescence microscopy measurements, and backscattered-second harmonic generation microscopy measurements. The system was a modified inverted LSM510 microscope (Carl Zeiss, Inc., Thornwood, NY, U.S.A.) with a rotating periscope that converted the inverted scope to an upright format, with the objective located approximately, 15 cm from the centre of the microscope base, allowing easy placement of an instrumented animal. An Olympus 20x water immersion objective was optically coupled to the tissue, without a cover glass, via a saline bath or custom hydrated transparent gel. The instrumented animals were held on a specially designed holder that poised the animal under the objective as well as permitted different ventilation schemes to minimize motion. Using this approach, quality images were routinely collected in living animals from both the peripheral and body cavity organs. The remaining most significant issue for physiological studies using this approach is motion on the micrometre scale. Several strategies for motion compensation are described and discussed.
双光子激发荧光显微镜和背向散射二次谐波产生显微镜能够对活体动物体内的亚细胞事件进行研究,但这些实验的诸多方面需要进行优化,以克服传统显微镜的几何结构、运动以及与实验对象的光学耦合问题。本报告描述了一种稳定的系统,用于在进行内源性还原型烟酰胺腺嘌呤二核苷酸和外源性染料双光子激发荧光显微镜测量以及背向散射二次谐波产生显微镜测量期间,支撑装有仪器的活体小鼠或兔子。该系统是一台经过改装的倒置LSM510显微镜(美国纽约州索恩伍德市卡尔蔡司公司),带有一个旋转潜望镜,可将倒置显微镜转换为直立形式,物镜距离显微镜基座中心约15厘米,便于放置装有仪器的动物。通过盐浴或定制的水合透明凝胶,将奥林巴斯20倍水浸物镜在不使用盖玻片的情况下与组织进行光学耦合。装有仪器的动物被放置在一个专门设计的支架上,该支架将动物置于物镜下方,并允许采用不同的通气方案以尽量减少运动。使用这种方法,常规地从活体动物的外周和体腔器官收集到了高质量的图像。使用这种方法进行生理学研究时,剩下的最显著问题是微米级别的运动。文中描述并讨论了几种运动补偿策略。