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Published in: Reproductive Biology and Endocrinology 1/2018

Open Access 01-12-2018 | Research

Three-dimensional evaluation of murine ovarian follicles using a modified CUBIC tissue clearing method

Authors: Kyosuke Kagami, Yohei Shinmyo, Masanori Ono, Hiroshi Kawasaki, Hiroshi Fujiwara

Published in: Reproductive Biology and Endocrinology | Issue 1/2018

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Abstract

Background

Recently, we demonstrated the three-dimensional (3D) localization of murine trophoblast giant cells in the pregnant uterus using a modified Clear Unobstructed Brain Imaging Cocktails and Computational analysis (CUBIC) tissue-clearing method and hybrid construct consisting of the cytomegalovirus enhancer fused to the chicken beta-actin promoter (CAG) conjugated enhanced green fluorescent protein (EGFP) transgenic mice. In this study, we applied this method to obtain a transparent whole-image of the ovary and observed the 3D localization of individual oocytes in the developing follicles.

Methods

Ovarian samples were obtained from EGFP transgenic mice and subjected to nuclear staining with propidium iodide (PI) and CUBIC treatment. The detection of double fluorescence signals (green and red) and subsequent reconstruction of 3D images of the whole ovary were performed by light-sheet microscopy and computer programs, respectively.

Results

The ovary became transparent using the CUBIC method and each nucleus of the follicle component cells was uniformly fluoro-stained by PI perfusion. In contrast, EGFP signals were strong in oocytes, whereas those of surrounding granulosa cells were faint. These signal differences in EGFP expression among oocytes, granulosa cells, and theca-interstitial cells produce well-contrasted images of the growing follicles, providing clear information of the 3D localization of individual oocytes.

Conclusion

These results indicate that this procedure is one of the effective approaches to analyze the 3D structure of follicles in the whole ovary.
Appendix
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Literature
1.
go back to reference Strauss JF, William CJ. The ovarian life cycle. In: Strauss JF, Barbieri RL, editors. Yen & Jaffe's reproductive endocrinology: physiology, pathophysiology, and clinical management. 7th ed. Philadelphia: Elsevier Sounders; 2014. p. 157–92.CrossRef Strauss JF, William CJ. The ovarian life cycle. In: Strauss JF, Barbieri RL, editors. Yen & Jaffe's reproductive endocrinology: physiology, pathophysiology, and clinical management. 7th ed. Philadelphia: Elsevier Sounders; 2014. p. 157–92.CrossRef
2.
go back to reference Komatsu K, Masubuchi S. Observation of the dynamics of follicular development in the ovary. Reprod Med Biol. 2017;16:21–7.CrossRefPubMed Komatsu K, Masubuchi S. Observation of the dynamics of follicular development in the ovary. Reprod Med Biol. 2017;16:21–7.CrossRefPubMed
3.
go back to reference Takemori K, Okamura H, Kanzaki H, Koshida M, Konishi I. Scanning electron microscopy study on corrosion cast of rat uterine vasculature during the first half of pregnancy. J Anat. 1984;138:163–73.PubMedPubMedCentral Takemori K, Okamura H, Kanzaki H, Koshida M, Konishi I. Scanning electron microscopy study on corrosion cast of rat uterine vasculature during the first half of pregnancy. J Anat. 1984;138:163–73.PubMedPubMedCentral
4.
go back to reference Gundersen HJ, Bagger P, Bendtsen TF, Evans SM, Korbo L, Marcussen N, Moller A, Nielsen K, Nyengaard JR, Pakkenberg B, et al. The new stereological tools: disector, fractionator, nucleator and point sampled intercepts and their use in pathological research and diagnosis. APMIS. 1988;96:857–81.CrossRefPubMed Gundersen HJ, Bagger P, Bendtsen TF, Evans SM, Korbo L, Marcussen N, Moller A, Nielsen K, Nyengaard JR, Pakkenberg B, et al. The new stereological tools: disector, fractionator, nucleator and point sampled intercepts and their use in pathological research and diagnosis. APMIS. 1988;96:857–81.CrossRefPubMed
5.
go back to reference Gundersen HJ, Bendtsen TF, Korbo L, Marcussen N, Moller A, Nielsen K, Nyengaard JR, Pakkenberg B, Sorensen FB, Vesterby A, et al. Some new, simple and efficient stereological methods and their use in pathological research and diagnosis. APMIS. 1988;96:379–94.CrossRefPubMed Gundersen HJ, Bendtsen TF, Korbo L, Marcussen N, Moller A, Nielsen K, Nyengaard JR, Pakkenberg B, Sorensen FB, Vesterby A, et al. Some new, simple and efficient stereological methods and their use in pathological research and diagnosis. APMIS. 1988;96:379–94.CrossRefPubMed
6.
go back to reference Mayhew TM. The new stereological methods for interpreting functional morphology from slices of cells and organs. Exp Physiol. 1991;76:639–65.CrossRefPubMed Mayhew TM. The new stereological methods for interpreting functional morphology from slices of cells and organs. Exp Physiol. 1991;76:639–65.CrossRefPubMed
8.
go back to reference Hama H, Kurokawa H, Kawano H, Ando R, Shimogori T, Noda H, Fukami K, Sakaue-Sawano A, Miyawaki A. Scale: a chemical approach for fluorescence imaging and reconstruction of transparent mouse brain. Nat Neurosci. 2011;14:1481–8.CrossRefPubMed Hama H, Kurokawa H, Kawano H, Ando R, Shimogori T, Noda H, Fukami K, Sakaue-Sawano A, Miyawaki A. Scale: a chemical approach for fluorescence imaging and reconstruction of transparent mouse brain. Nat Neurosci. 2011;14:1481–8.CrossRefPubMed
9.
go back to reference Ke MT, Fujimoto S, Imai T. SeeDB: a simple and morphology-preserving optical clearing agent for neuronal circuit reconstruction. Nat Neurosci. 2013;16:1154–61.CrossRefPubMed Ke MT, Fujimoto S, Imai T. SeeDB: a simple and morphology-preserving optical clearing agent for neuronal circuit reconstruction. Nat Neurosci. 2013;16:1154–61.CrossRefPubMed
10.
go back to reference Chung K, Wallace J, Kim SY, Kalyanasundaram S, Andalman AS, Davidson TJ, Mirzabekov JJ, Zalocusky KA, Mattis J, Denisin AK, et al. Structural and molecular interrogation of intact biological systems. Nature. 2013;497:332–7.CrossRefPubMedPubMedCentral Chung K, Wallace J, Kim SY, Kalyanasundaram S, Andalman AS, Davidson TJ, Mirzabekov JJ, Zalocusky KA, Mattis J, Denisin AK, et al. Structural and molecular interrogation of intact biological systems. Nature. 2013;497:332–7.CrossRefPubMedPubMedCentral
11.
go back to reference Erturk A, Becker K, Jahrling N, Mauch CP, Hojer CD, Egen JG, Hellal F, Bradke F, Sheng M, Dodt HU. Three-dimensional imaging of solvent-cleared organs using 3DISCO. Nat Protoc. 2012;7:1983–95.CrossRefPubMed Erturk A, Becker K, Jahrling N, Mauch CP, Hojer CD, Egen JG, Hellal F, Bradke F, Sheng M, Dodt HU. Three-dimensional imaging of solvent-cleared organs using 3DISCO. Nat Protoc. 2012;7:1983–95.CrossRefPubMed
12.
go back to reference Susaki EA, Tainaka K, Perrin D, Kishino F, Tawara T, Watanabe TM, Yokoyama C, Onoe H, Eguchi M, Yamaguchi S, et al. Whole-brain imaging with single-cell resolution using chemical cocktails and computational analysis. Cell. 2014;157:726–39.CrossRefPubMed Susaki EA, Tainaka K, Perrin D, Kishino F, Tawara T, Watanabe TM, Yokoyama C, Onoe H, Eguchi M, Yamaguchi S, et al. Whole-brain imaging with single-cell resolution using chemical cocktails and computational analysis. Cell. 2014;157:726–39.CrossRefPubMed
13.
go back to reference Malki S, Tharp ME, Bortvin A. A Whole-mount approach for accurate quantitative and spatial assessment of fetal oocyte dynamics in mice. Biol Reprod. 2015;93:113.CrossRefPubMed Malki S, Tharp ME, Bortvin A. A Whole-mount approach for accurate quantitative and spatial assessment of fetal oocyte dynamics in mice. Biol Reprod. 2015;93:113.CrossRefPubMed
14.
go back to reference Kagami K, Shinmyo Y, Ono M, Kawasaki H, Fujiwara H. Three-dimensional visualization of intrauterine conceptus through the uterine wall by tissue clearing method. Sci Rep. 2017;7:5964.CrossRefPubMedPubMedCentral Kagami K, Shinmyo Y, Ono M, Kawasaki H, Fujiwara H. Three-dimensional visualization of intrauterine conceptus through the uterine wall by tissue clearing method. Sci Rep. 2017;7:5964.CrossRefPubMedPubMedCentral
15.
go back to reference Okabe M, Ikawa M, Kominami K, Nakanishi T, Nishimune Y. ‘Green mice’ as a source of ubiquitous green cells. FEBS Lett. 1997;407:313–9.CrossRefPubMed Okabe M, Ikawa M, Kominami K, Nakanishi T, Nishimune Y. ‘Green mice’ as a source of ubiquitous green cells. FEBS Lett. 1997;407:313–9.CrossRefPubMed
16.
go back to reference Lee E, Kim HJ, Sun W. See-through Technology for Biological Tissue: 3-dimensional visualization of macromolecules. Int Neurourol J. 2016;20(Suppl 1):15–22.CrossRef Lee E, Kim HJ, Sun W. See-through Technology for Biological Tissue: 3-dimensional visualization of macromolecules. Int Neurourol J. 2016;20(Suppl 1):15–22.CrossRef
17.
go back to reference Tainaka K, Kubota SI, Suyama TQ, Susaki EA, Perrin D, Ukai-Tadenuma M, Ukai H, Ueda HR. Whole-body imaging with single-cell resolution by tissue decolorization. Cell. 2014;159:911–24.CrossRefPubMed Tainaka K, Kubota SI, Suyama TQ, Susaki EA, Perrin D, Ukai-Tadenuma M, Ukai H, Ueda HR. Whole-body imaging with single-cell resolution by tissue decolorization. Cell. 2014;159:911–24.CrossRefPubMed
Metadata
Title
Three-dimensional evaluation of murine ovarian follicles using a modified CUBIC tissue clearing method
Authors
Kyosuke Kagami
Yohei Shinmyo
Masanori Ono
Hiroshi Kawasaki
Hiroshi Fujiwara
Publication date
01-12-2018
Publisher
BioMed Central
Published in
Reproductive Biology and Endocrinology / Issue 1/2018
Electronic ISSN: 1477-7827
DOI
https://doi.org/10.1186/s12958-018-0381-7

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