| Literature DB >> 23577174 |
Zhongqin Yang1, Bihe Hu, Yuhui Zhang, Qingming Luo, Hui Gong.
Abstract
Fluorescent proteins serve as important biomarkers for visualizing both subcellular organelles in living cells and structural and functional details in large-volume tissues or organs. However, current techniques for plastic embedding are limited in their ability to preserve fluorescence while remaining suitable for micro-optical sectioning tomography of large-volume samples. In this study, we quantitatively evaluated the fluorescence preservation and penetration time of several commonly used resins in a Thy1-eYFP-H transgenic whole mouse brain, including glycol methacrylate (GMA), LR White, hydroxypropyl methacrylate (HPMA) and Unicryl. We found that HMPA embedding doubled the eYFP fluorescence intensity but required long durations of incubation for whole brain penetration. GMA, Unicryl and LR White each penetrated the brain rapidly but also led to variable quenching of eYFP fluorescence. Among the fast-penetrating resins, GMA preserved fluorescence better than LR White and Unicryl. We found that we could optimize the GMA formulation by reducing the polymerization temperature, removing 4-methoxyphenol and adjusting the pH of the resin solution to be alkaline. By optimizing the GMA formulation, we increased percentage of eYFP fluorescence preservation in GMA-embedded brains nearly two-fold. These results suggest that modified GMA is suitable for embedding large-volume tissues such as whole mouse brain and provide a novel approach for visualizing brain-wide networks.Entities:
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Year: 2013 PMID: 23577174 PMCID: PMC3618106 DOI: 10.1371/journal.pone.0060877
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Review on resins used for embedding samples expressing fluorescent protein.
| Resins | Samples | Fluorescence labeling | Fluorescence preservation | References |
| GMA | C.elegans | Citrine & tdEos | 70% |
|
| LR White | mouse brain section | YFP | — |
|
| culture cells | GFP & YFP | — |
| |
| Zebrafish head | GFP | — |
| |
| LR Gold | C.elegans | GFP & mRFP | — |
|
| Lowicryl | culture cells & yeast | GFP & mCherry | — |
|
| Zebrafish embryos | GFP | — |
| |
| JB-4 | Zebrafish embryos | GFP | — |
|
Comparison of fluorescence preservation and penetration ability of four resins.
| Resins | pH | Fluorescence preservation of neurons | Time for penetration of a whole mouse brain |
| HPMA | 7.12 | 210% | >2 weeks |
| GMA | 6.0 | 69.98% | 3 days |
| Unicryl | 5.12 | 51.54% | 2 days |
| LR White | 4.8 | 27.59% | 2 days |
the pH of four resins is tested with pH meter.
Fluorescence preservation of a neuron = fluorescence intensity of neuron after embedding/fluorescence intensity of neuron before embedding * 100%. For each resin, at least fluorescence preservation of 6 neurons are analyzed and then averaged.
Different formulation of GMA and its fluorescence preservation.
| Test factors | Group 1 | Group 2 | Group 3 | Group 4 | Group 5 | Group 6 |
| Polymerization temperature | 60°C | 55°C | 55°C | 55°C | 55°C | 55°C |
| Remove inhibitor MEHQ | NO | NO | YES | YES | YES | YES |
| Volume of Ethanolamine | 0 | 0 | 0 | 0.1‰ | 0.5‰ | 1‰ |
| Fluorescence preservation | 69.98% | 81.76% | 112.02% | 123.2% | 120.91% | — |
For each group, mean value of fluorescence preservation of 6 neurons is calculated.
Figure 1Fluorescence intensity of neurons is improved with optimized GMA resin.
Brain sections imaged with two-photon microscopy using the same parameter settings before (a, b) and after embedding (a 1, b 1). Scale bar, 20 µm. Each image is a max-projection of the image stacks of the brain slice (thickness: 20 µm).
Figure 2Morphology of pyramidal neurons (hippocampus) is well preserved after being embedded in optimized GMA resin.
A brain section from a Thy1-eYFP-H mouse imaged with two-photon microscopy before (a) and after embedding (b). (c) Merged images from (a) and (b). Scale bar, 20 µm. Each image is a max-projection of the image stacks of the brain slice (thickness: 60 µm).