Bullard Meghan R, Cervantes Juan Carlos Martinez, Quaicoe Norisha B, Jin Amanda, Adams Danya A, Lin Jessica M, Iliadis Elena, Seidler Tess M, Cervantes-Sandoval Isaac, He Hai-Yan
Department of Biology, Georgetown University, Washington, DC 20057.
bioRxiv. 2024 May 12:2024.05.11.593228. doi: 10.1101/2024.05.11.593228.
Protein retention expansion microscopy (ExM) retains genetically encoded fluorescent proteins or antibody-conjugated fluorescent probes in fixed tissue and isotropically expands the tissue through a swellable polymer network to allow nanoscale (<70 nm) resolution on diffraction-limited confocal microscopes. Despite numerous advantages ExM brings to biological studies, the full protocol is time-consuming and can take multiple days to complete. Here, we adapted the ExM protocol to the vibratome-sectioned brain tissue of tadpoles and implemented a microwave-assisted protocol to reduce the workflow from days to hours. In addition to the significantly accelerated processing time, our microwave-assisted ExM (ExM) protocol maintains the superior resolution and signal-to-noise ratio of the original ExM protocol. Furthermore, the ExM protocol yields higher magnitude of expansion, suggesting that in addition to accelerating the process through increased diffusion rate of reagents, microwave radiation may also facilitate the expansion process. To demonstrate the applicability of this method to other specimens and protocols, we adapted the microwave-accelerated protocol to whole mount adult brain tissue of fruit flies, and successfully reduced the total processing time of a widely-used IHC-ExM protocol from 6 days to 2 days. Our results demonstrate that with appropriate adjustment of the microwave parameters (wattage, pulse duration, interval, and number of cycles), this protocol can be readily adapted to different model organisms and tissue types to greatly increase the efficiency of ExM experiments.
蛋白质保留扩展显微镜技术(ExM)可将基因编码的荧光蛋白或抗体偶联的荧光探针保留在固定组织中,并通过可膨胀的聚合物网络对组织进行各向同性扩展,从而在衍射极限共聚焦显微镜上实现纳米级(<70 nm)分辨率。尽管ExM给生物学研究带来了诸多优势,但其完整流程耗时较长,可能需要数天才能完成。在此,我们将ExM流程应用于蝌蚪的振动切片脑组织,并采用微波辅助流程将工作流程从数天缩短至数小时。除了显著加快处理时间外,我们的微波辅助ExM(μExM)流程还保持了原始ExM流程的卓越分辨率和信噪比。此外,μExM流程产生的扩展幅度更大,这表明除了通过提高试剂扩散速率加速过程外,微波辐射可能还促进了扩展过程。为了证明该方法对其他样本和流程的适用性,我们将微波加速流程应用于果蝇的全脑成年组织,并成功地将广泛使用的免疫组化 - ExM流程的总处理时间从6天缩短至2天。我们的结果表明,通过适当调整微波参数(功率、脉冲持续时间、间隔和循环次数),该流程可以很容易地适用于不同的模式生物和组织类型,从而大大提高ExM实验的效率。