Optimized Method for the Use of Polyethylene Glycol as Embedding Medium for Histological Studies

Stanislav A. Antonov , Tatyana A. Kurbatova , Irina V. Makarova , Vasily N. Sukhorukov

Morphology ›› 2025, Vol. 163 ›› Issue (1) : 59 -70.

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Morphology ›› 2025, Vol. 163 ›› Issue (1) : 59 -70. DOI: 10.17816/morph.639964
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Optimized Method for the Use of Polyethylene Glycol as Embedding Medium for Histological Studies

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Abstract

BACKGROUND: Polyethylene glycol (PEG) is a water-soluble polymer that can be used as tissue embedding medium for obtaining histological sections. It has been previously reported, that PEG provides good preservation of tissue morphological characteristics comparable to that of epoxy resins, and the resulting slices can be used for immunohistochemical studies. Several methods of using PEG in histological studies have been described in literature, but they are disorganized and generally difficult to reproduce.

AIM: To evaluate tissue morphological characteristics and immunoreactivity in histological sections embedded in PEG.

METHODS: We investigated the possibility and results of transferring collectible (archived) samples of murine (Mus musculus) and weatherfish (Misgurnus fossilis) embryos through PEG 1000 and PEG 1500, as well as the peculiarities of sectioning, sample spreading, mounting on slides, and staining.

RESULTS: We compared the morphological characteristics of histological sections transferred through and embedded in PEG and paraffin wax. The advantages and disadvantages of using PEG for histological embedding were characterized. Immunohistochemical staining of sections using specific antibodies combined with chromogenic and fluorescent detection systems was performed.

CONCLUSION: It has been demonstrated that PEG provides preservation of structural features of cells and intercellular substance, also having a sparing effect on protein epitopes in tissues.

Keywords

polyethylene glycol / histological technique / microtomy

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Stanislav A. Antonov, Tatyana A. Kurbatova, Irina V. Makarova, Vasily N. Sukhorukov. Optimized Method for the Use of Polyethylene Glycol as Embedding Medium for Histological Studies. Morphology, 2025, 163(1): 59-70 DOI:10.17816/morph.639964

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References

[1]

van der Lem T, de Bakker M, Keuck G, Richardson MK. Wilhelm His Sr. and the development of paraffin embedding. Pathologie. 2021;42(suppl 1):55–61. doi: 10.1007/s00292-021-00947-4

[2]

Nuovo GJ. In situ molecular pathology and co-expression analyses. 2nd ed. Academic Press; 2020.

[3]

Miles AE, Linder JE. Polyethylene glycols as histological embedding media: with a note on the dimensional change of tissue during embedding in various media. J R Microsc Soc. 1952;72(4):199–213. doi: 10.1111/j.1365-2818.1952.tb02336.x

[4]

Wang Z, Zhang S, Pu Y, et al. Accuracy of cone-beam computed tomography for the evaluation of mandible invasion by oral squamous cell carcinoma. BMC Oral Health. 2021;21(1):226. doi: 10.1186/s12903-021-01567-3

[5]

Vaganova AN. Histotechnical solutions to improve the quality of nucleic acid preparations from paraffin blocks. Genes and cells. 2014;9(2):96–101.

[6]

Uhlén M, Fagerberg L, Hallström BM, et al. Proteomics. Tissue-based map of the human proteome. Science. 2015;347(6220):1260419. doi: 10.1126/science.1260419

[7]

Bard JB, Ross AS. Improved method for making high-affinity sections of soft tissue embedded in polyethylene glycol (PEG): its use in screening monoclonal antibodies. J Histochem Cytochem. 1986;34(9):1237–1241. doi: 10.1177/34.9.3734422

[8]

Wolosewick JJ. The application of polyethylene glycol (PEG) to electron microscopy. J Cell Biol. 1980;86(2):675–761. doi: 10.1083/jcb.86.2.675

[9]

Klosen P, Maessen X, van den Bosch de Aguilar P. PEG embedding for immunocytochemistry: application to the analysis of immunoreactivity loss during histological processing. J Histochem Cytochem. 1993;41(3):455–463. doi: 10.1177/41.3.8429209

[10]

Smithson KG, MacVicar BA, Hatton GI. Polyethylene glycol embedding: a technique compatible with immunocytochemistry, enzyme histochemistry, histofluorescence and intracellular staining. J Neurosci Methods. 1983;7(1):27–41. doi: 10.1016/0165-0270(83)90016-X

[11]

Miles AE, Linder JE. Polyethylene glycols as histological embedding media: with a note on the dimensional change of tissue during embedding in various media. J R Microsc Soc. 1952;72(4):199–213. doi: 10.1111/j.1365-2818.1952.tb02336.x

[12]

Gao KX, Godkin JD. A new method for transfer of polyethylene glycol-embedded tissue sections to silanated slides for immunocytochemistry. J Histochem Cytochem. 1991;39(4):537–540. doi: 10.1177/39.4.2005376

[13]

Clayton DF, Alvarez-Buylla A. In situ hybridization using PEG-embedded tissue and riboprobes: increased cellular detail coupled with high sensitivity. J Histochem Cytochem. 1989;37(3):389–393. doi: 10.1177/37.3.2918223

[14]

Antonov SA, Novosadova EV, Kobylansky AG, et al. A hybrid detection method based on peroxidase-mediated signal amplification and click chemistry for highly sensitive background-free immunofluorescent staining. J Histochem Cytochem. 2019;67(10):771–782. doi: 10.1369/0022155419864113

[15]

Asik K, Rao JL, Kirn JR. A method for exploring adult neurogenesis in the songbird brain. Cold Spring Harb Protoc. 2014;2014(12):1259–1266. doi: 10.1101/pdb.prot084590

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