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Clarifying CLARITY: Quantitative Optimization of the Diffusion Based Delipidation Protocol for Genetically Labeled Tissue

机译:澄清清晰度:基于遗传的组织的基于扩散的脱脂方案的定量优化

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摘要

Tissue clarification has been recently proposed to allow deep tissue imaging without light scattering. The clarification parameters are somewhat arbitrary and dependent on tissue type, source and dimension: every laboratory has its own protocol, but a quantitative approach to determine the optimum clearing time is still lacking. Since the use of transgenic mouse lines that express fluorescent proteins to visualize specific cell populations is widespread, a quantitative approach to determine the optimum clearing time for genetically labeled neurons from thick murine brain slices using CLARITY2 is described. In particular, as the main objective of the delipidation treatment is to clarify tissues, while limiting loss of fluorescent signal, the “goodness” of clarification was evaluated by considering the bulk tissue clarification index (BTCi) and the fraction of the fluorescent marker retained in the slice as easily quantifiable macroscale parameters. Here we describe the approach, illustrating an example of how it can be used to determine the optimum clearing time for 1 mm-thick cerebellar slice from transgenic L7GFP mice, in which Purkinje neurons express the GFP (green fluorescent protein) tag. To validate the method, we evaluated confocal stacks of our samples using standard image processing indices (i.e., the mean pixel intensity of neurons and the contrast-to-noise ratio) as figures of merit for image quality. The results show that detergent-based delipidation for more than 5 days does not increase tissue clarity but the fraction of GFP in the tissue continues to diminish. The optimum clearing time for 1 mm-thick slices was thus identified as 5 days, which is the best compromise between the increase in light penetration depth due to removal of lipids and a decrease in fluorescent signal as a consequence of protein loss: further clearing does not improve tissue transparency, but only leads to more protein removal or degradation. The rigorous quantitative approach described can be generalized to any clarification method to identify the moment when the clearing process should be terminated to avoid useless protein loss.
机译:最近提出了组织澄清以允许没有光散射的深层组织成像。澄清参数在一定程度上是任意的,并取决于组织的类型,来源和尺寸:每个实验室都有自己的协议,但是仍然缺乏确定最佳清除时间的定量方法。由于表达荧光蛋白的转基因小鼠品系广泛用于可视化特定细胞群,因此,本文描述了一种定量方法,该方法使用CLARITY2从厚的鼠脑切片中确定遗传标记的神经元的最佳清除时间。尤其是,由于脱脂治疗的主要目的是澄清组织,同时限制荧光信号的损失,因此通过考虑大块组织澄清指数(BTCi)和保留在其中的荧光标记物的分数来评估澄清的“良好性”。切片作为易于量化的宏参数。在这里,我们描述该方法,并举例说明如何将其用于确定转基因L7GFP小鼠的1毫米厚小脑切片的最佳清除时间,其中浦肯野神经元表达GFP(绿色荧光蛋白)标签。为了验证该方法,我们使用标准图像处理指标(即神经元的平均像素强度和对比度-噪声比)作为图像质量的评价指标评估了样品的共聚焦叠层。结果表明,基于洗涤剂的脱脂超过5天不会增加组织的透明度,但组织中GFP的比例会继续减少。因此,将厚度为1毫米的切片的最佳清除时间确定为5天,这是由于去除脂质而增加的光穿透深度与由于蛋白质损失而导致的荧光信号减少之间的最佳折衷:进一步清除不能改善组织的透明度,而只能导致更多的蛋白质去除或降解。可以将所描述的严格的定量方法推广到任何澄清方法,以识别清除过程应终止的时刻,以避免无用的蛋白质损失。

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