Advances in the detection methods for assessing the viability of cryopreserved samples
doi: 10.1515/fzm-2025-0012
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Abstract: Since the beginning of the 21st century, modern medical technology has advanced rapidly, and the cryomedicine has also seen significant progress. Notable developments include the application of cryomedicine in assisted reproduction and the cryopreservation of sperm, eggs and embryos, as well as the preservation of skin, fingers, and other isolated tissues. However, cryopreservation of large and complex tissues or organs remains highly challenging. In addition to the damage caused by the freezing and rewarming processes and the inherent complexity of tissues and organs, there is an urgent need to address issues related to damage detection and the investigation of injury mechanisms. It provides a retrospective analysis of existing methods for assessing tissue and organ viability. Although current techniques can detect damage to some extent, they tend to be relatively simple, time-consuming, and limited in their ability to provide timely and comprehensive assessments of viability. By summarizing and evaluating these approaches, our study aims to contribute to the improvement of viability detection methods and to promote further development in this critical area.
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Key words:
- cryomedicine /
- rewarming /
- tissues and organs /
- viability /
- detection
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Table 1. The differences between various apoptosis detection assay methods
Detection method Detection object Time-consuming Applicable scenarios Annexin V/PI Early apoptotic cells and late apoptotic cells 2-4 h Flow cytometry-based apoptosis staging; drug screening & apoptosis mechanism studies TUNEL Apoptotic cells 6-24 h Histopathological analysis; in vivo/in vitro apoptosis detection Detection of caspase-3 viability Early apoptotic cells 1-2 h Early apoptosis event studies; apoptotic signaling pathway validation Lactate dehydrogenase (LDH) release assay Cell membrane damage 2-4 h High-throughput cytotoxicity testing Table 2. The differences between various cell viability assays methods
Detection method Detection object Time-consuming Applicable scenarios MTT Metabolic activity of living cells 4-6 h High-throughput drug screening; cell proliferation & cytotoxicity studies Neutral red uptake assay Lysosomal activity & membrane integrity of living cells 3-4 h Cytotoxicity assessment (chemical/environmental toxins); long-term culture viability monitoring Western blot assay for β-actin protein Cytoskeletal protein expression (internal reference) 12-24 h Cell structural integrity evaluation; experimental normalization control Calcein-AM cell viability assay Esterase activity in viable cells 30 min-1 h Real-time live-cell imaging; rapid viability assessment MTT, 3-(4, 5-dimethylthiazol-2-yl)-2, 5-diphenyltetrazolium bromide. -
[1] Wang PT, He L Q, Shu Z Q, et al. Advances in cellular cryobiology. Med J of Qilu, 2005; 20(1): 1-4. (Chinese) [2] Dou M J, Zhang MK, Rao W, et al. Human cryopreservation - the road to future 'immortality'? Science(Shanghai), 2017; 69(6): 4-8. (Chinese) [3] Han H X, Xu Y, Liu B L. Advances in cryopreservation of tissues and organs. J Vac Sci Technol A, 2022; 42(1): 1-13. (Chinese) [4] Sliwka L, Wiktorska K, Suchocki P, et al. The comparison of MTT and CVS assays for the assessment of anticancer agent interactions. PLoS One, 2016; 11(5): e0155772. doi: 10.1371/journal.pone.0155772 [5] Li J H, Lu H Y, Zhang J, et al. Comprehensive approach to assessment of liver viability during normothermic machine perfusion. J Clin Transl Hepatol, 2023; 11(2): 466-479. [6] Yersiz H, Lee C, Kaldas F M, et al. Assessment of hepatic steatosis by transplant surgeon and expert pathologist: a prospective, double-blind evaluation of 201 donor livers. Liver Transpl, 2013; 19(4): 437-449. doi: 10.1002/lt.23615 [7] Xiao Z H, Wang Y, Li L L, et al. The effect of a novel vitrification method in human ovarian tissue cryopreservation. Journal of Practical Obstetrics and Gynecology, 2013; 29(12): 928-931. (Chinese) [8] Khan U, Koivukoski S, Valkonen M, et al. The effect of neural network architecture on virtual H & E staining: Systematic assessment of histological feasibility. Patterns (N Y), 2023; 4(5): 100725. doi: 10.1016/j.patter.2023.100725 [9] Wei H G, Xu B, Wu R Z. Caspase and facial nerve injury. J Oral Maxil Surg, 2002; 12(1): 47-50. (Chinese) [10] Jing G Q, Zuo J, Fang Q, et al. Erbin protects against sepsis-associated encephalopathy by attenuating microglia pyroptosis via IRE1alpha/Xbp1s-Ca(2+) axis. J Neuroinflammation, 2022; 19(1): 237. doi: 10.1186/s12974-022-02598-5 [11] Verzola D, Gandolfo M T, Salvatore F, et al. Testosterone promotes apoptotic damage in human renal tubular cells. Kidney Int, 2004; 65(4): 1252-1261. doi: 10.1111/j.1523-1755.2004.00497.x [12] Tao D D, Leng Y, Qin J C, et al. Analysis of cell cycle specific apoptosis by FTTC-Annexin V/PI. Chin Lab Medi, 2002; 25(2): 78-81. (Chinese) [13] Moore C L, Savenka A V, Basnakian A G. TUNEL assay: a powerful tool for kidney injury evaluation. Int J Mol Sci, 2021; 22(1): 412. doi: 10.3390/ijms22010412 [14] Istifli E S, Ila H B. Cytotoxicity-definition, identification, and cytotoxic Compounds. London: IntechOpen, 2019. [15] Li L, Yang Y H, Wang S H, et al. Comparison of cellular activity detection methods. Journal of Biology, 2011; 28(1): 87-90, 93. (Chinese) [16] Kumar P, Nagarajan A, Uchil P D. Analysis of cell viability by the lactate dehydrogenase assay. Cold Spring Harb Protoc, 2018(6): 465-469. doi: 10.1101/pdb.prot095497 [17] Jurisic V, Radenkovic S, Konjevic G. The actual role of LDH as tumor marker, biochemical and clinical aspects. Adv Exp Med Biol, 2015; 867: 115-124. doi: 10.1007/978-94-017-7215-0_8 [18] Watson C J E, Kosmoliaptsis V, Pley C, et al. Observations on the ex situ perfusion of livers for transplantation. Am J Transplant, 2018; 18(8): 2005-2020. doi: 10.1111/ajt.14687 [19] Yang H, Wang C T, Wu Y M, et al. Relationship of cell properties, states and number with optic density number in MTT colorimetric assay. Progress in Veterinary Medicine, 2002; 23(5): 49-51. (Chinese) [20] Repetto G, del Peso A, Zurita J L, et al. Neutral red uptake assay for the estimation of cell viability/cytotoxicity. Nat Protoc, 2008; 3(7): 11251131. doi: 10.1038/nprot.2008.75 [21] Gomez-Gutierrez J G, Bhutiani N, McNally M W, et al. The neutral red assay can be used to evaluate cell viability during autophagy or in an acidic microenvironment in vitro. Biotech Histochem, 2021; 96(4): 302310. doi: 10.1080/10520295.2020.1802065 [22] Tang J J, Yue H, Yang F L, et al. The establishment of a fluorescence quantitative PCR method for mouse β-actin mRNA. China Animal Husbandry & Veterinary Medicine, 2011; 38(7): 127-130. (Chinese) [23] Chen Y T, Sang Y S. Establishment of potato virus detection by RT-PCR. Modern Agricultural Science and Technology, 2011; 2011(21): 1517. (Chinese) [24] Feng X T, Xiong Y Z, Qian H, et al. Selection of reference genes for gene expression studies in porcine skeletal muscle using SYBR green qPCR. J Biotechnol, 2010; 150(3): 288-293. doi: 10.1016/j.jbiotec.2010.09.949 [25] Glare E M, Divjak M, Bailey M J, et al. beta-Actin and GAPDH housekeeping gene expression in asthmatic airways is variable and not suitable for normalising mRNA levels. Thorax, 2002; 57(9): 765-770. doi: 10.1136/thorax.57.9.765 [26] Bas A, Forsberg G, Hammarstrom S, et al. Utility of the housekeeping genes 18S rRNA, beta-actin and glyceraldehyde-3-phosphate-dehydrogenase for normalization in real-time quantitative reverse transcriptase-polymerase chain reaction analysis of gene expression in human T lymphocytes. Scand J Immunol, 2004; 59(6): 566-573. doi: 10.1111/j.0300-9475.2004.01440.x [27] Bastings L, Liebenthron J, Westphal J R, et al. Efficacy of ovarian tissue cryopreservation in a major European center. J Assist Reprod Genet, 2014; 31(8): 1003-1012. doi: 10.1007/s10815-014-0239-7 [28] Bunel V, Ouedraogo M, Nguyen A T, et al. Methods applied to the in vitro primary toxicology testing of natural products: state of the art, strengths, and limits. Planta Med, 2014; 80(14): 1210-1226. doi: 10.1055/s-0033-1360273 [29] Fan F, Wood K V. Bioluminescent assays for high-throughput screening. Assay Drug Dev Technol, 2007; 5(1): 127-136. doi: 10.1089/adt.2006.053 [30] Gerritse R, Beerendonk C C M, Westphal J R, et al. Glucose/lactate metabolism of cryopreserved intact bovine ovaries as a novel quantitative marker to assess tissue cryodamage. Reprod Biomed Online, 2011; 23(6): 755-764. doi: 10.1016/j.rbmo.2011.08.008 -

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