Preservation of protein fractions and hormones of placental blood serum after freeze-drying

Authors

Keywords:

placental blood serum, freezing, freeze-drying, protein fractions, hormones

Abstract

The preservation of placental blood serum (PBS) following freeze-drying was studied, factoring in the course of pregnancy in parturient women. Placental blood was obtained from women with a physiological pregnancy, premature births, and concomitant autoimmune thyroiditis or hypertension. Serum was obtained by separating the supernatant after centrifugation of placental blood. After freeze-drying, the concentration of total protein and the ratio of protein fractions in the PBS were determined by the biuret method, and the levels of prolactin, human chorionic gonadotropin (hCG), alpha-fetoprotein (AFP), cortisol and somatotropin (STH) were measured by the enzyme-linked immunosorbent assay. It was found that the composition of the PBS depended on the course of pregnancy. Extragenital pathology is accompanied by a redistribution of protein fractions and changes in prolactin, AFP, STH and hCG levels. After freeze-drying the PBS from healthy parturients, the studied parameters did not differ from those in native serum, whereas in cases of complicated pregnancy, changes in the ratio of protein fractions were observed.

Probl Cryobiol Cryomed. 2026;36(1):58—65

Author Biographies

Mariia V. Shevchenko, Institute for Problems of Cryobiology and Cryomedicine of the National Academy of Sciences of Ukraine, Kharkiv, Ukraine

Department of Cold Adaptation

Anastasiia A. Skoryk, Institute for Problems of Cryobiology and Cryomedicine of the National Academy of Sciences of Ukraine, Kharkiv, Ukraine

Department of Cold Adaptation

Dmytro O. Salnykov, Institute for Problems of Cryobiology and Cryomedicine of the National Academy of Sciences of Ukraine, Kharkiv, Ukraine

Department of Cold Adaptation

Olga L. Gorina, Institute for Problems of Cryobiology and Cryomedicine of the National Academy of Sciences of Ukraine, Kharkiv, Ukraine

Department of Cold Adaptation

Olga S. Prokopiuk, Institute for Problems of Cryobiology and Cryomedicine of the National Academy of Sciences of Ukraine, Kharkiv, Ukraine

Department of Cold Adaptation

References

Barrett KE, Brooks H, Boitano S, Barman SM. Ganong's review of medical physiology, 23rd Edition. New York: McGraw-Hill Medical; 2010. 726 р.

Bhatnagar BS, Bogner RH, Pikal MJ. Protein stability during freezing: separation of stresses and mechanisms of protein stabilization. Pharm Dev Technol. 2007; 12(5): 505-23. CrossRef

Bolelli G, Muti P, Micheli A, et al. Validity for epidemiological studies of long-term cryoconservation of steroid and protein hormones in serum and plasma. Cancer Epidemiol Biomarkers Prev. 1995 ; 4(5): 509-13. PubMed

Cho S, Durfee K. Levels of alpha fetoprotein in cord blood from newborns between 35 to 42 weeks of gestation 254. Pediatr Res. 1998; 43(Suppl 4): 46. CrossRef

Donaldson C, Armitage WJ, Laundy V, et al. Impact of obstetric factors on cord blood donation for transplantation. Br J Haematol. 1999; 106(1): 128-32. CrossRef

Eisenhauer I, April M, Rizzo J, et al. Seasonal association with hypothermia in combat trauma. Military Medicine. 2024; 189(9-10): 2004-8. CrossRef

Furuhashi N, Fukaya T, Kono H, et al. Cord serum growth hormone in the human fetus. Sex difference and a negative correlation with birth weight. Gynecol Obstet Invest. 1983; 16(2): 119-24. CrossRef

Hill M, Pařízek A, Kancheva R, et al. Steroid metabolome in plasma from the umbilical artery, umbilical vein, maternal cubital vein and in amniotic fluid in normal and preterm labor. J Steroid Biochem Mol Biol. 2010; 121: 594-610. CrossRef

Holl K, Lundin E, Kaasila M, et al. Effect of long-term storage on hormone measurements in samples from pregnant women: the experience of the Finnish Maternity Cohort. Acta Oncol. 2008; 47(3): 406-12. CrossRef

Ireland S, Endacott R, Cameron P, Fitzgerald M, Paul E. The incidence and significance of accidental hypothermia in major trauma - a prospective observational study. Resuscitation. 2011; 82(3): 300-6. CrossRef

Jang CH, Lee H, Kim M, Kim G. Effect of polycaprolactone / collagen / hUCS microfiber nerve conduit on facial nerve regeneration. Int J Biol Macromol. 2016; 93(Pt B): 1575-82. CrossRef

Khosravi J, Diamandi A, Bodani U, Khaja N, Krishna RG. Pitfalls of immunoassay and sample for IGF-I: comparison of different assay methodologies using various fresh and stored serum samples. Clin Biochem. 2005; 38(7): 659-66. CrossRef

Kim HW, Lee HS, Kang JM, Bae SH. Dual effects of human placenta-derived neural cells on neuroprotection and the inhibition of neuroinflammation in a rodent model of Parkinson's disease. Cell Transplant. 2018; 27(5): 814-30. CrossRef

Kranz A, Wagner DC, Kamprad M, Scholz M. Transplantation of placenta-derived mesenchymal stromal cells upon experimental stroke in rats. Brain Res. 2010; 22(1315): 128-36. CrossRef

Kulubya ES, Clark K, Hao D, Lazar S. The unique properties of placental mesenchymal stromal cells: a novel source of therapy for congenital and acquired spinal cord injury. [Internet]. 2021 Oct 22 [cited 2025 July 21]; 10(11): 2837. Available from: https://www.mdpi.com/2073-4409/10/11/2837 CrossRef

Lee JM, Jung J, Lee HJ, Jeong SJ. Comparison of immunomodulatory effects of placenta mesenchymal stem cells with bone marrow and adipose mesenchymal stem cells. Int Immunopharmacol. 2012; 13(2): 219-24. CrossRef

Maharajan N, Cho GW, Choi JH, Jang CH. Regenerative therapy using umbilical cord serum. In Vivo. 2021; 35(2): 699-705. CrossRef

Masse J, Summers A, Cherian G, Forest JC. Transportation of maternal serum specimens for screening for chromosomal aneuploidies: Effect of seasonal variation, distance, and freezing on the stability of the biological markers. Clin Biochem. 2000; 33: 273-7. CrossRef

Moghassemi S, Nikanfar S, Dadashzadeh A, et al. The revolutionary role of placental derivatives in biomedical research. Bioact Mater. 2025; 49: 456-85. CrossRef

Nguyen PH, Nguyen VT, Chu TT, et al. Factors affecting human umbilical cord blood quality before cryopreservation: the importance of birth weight and gestational age. Biopreserv Biobank. 2020; 18(1): 18-24. CrossRef

Passipieri JA, Kasai-Brunswick TH, Suhett G. Improvement of cardiac function by placenta-derived mesenchymal stem cells does not require permanent engraftment and is independent of the insulin signaling pathway. Stem Cell Research and Therapy. [Internet]. 2014 Aug 21 [cited 2025 May 4]; 5: 102. Available from: https://link.springer.com/article/10.1186/scrt490 CrossRef

Prokopyuk VYu, Karpenko VG, Shevchenko MV, et al. Еxperience in clinical application of cryopreserved placental derivatives: cells, tissue, membranes, extract, and cord blood serum. Innov Biosyst Bioeng. 2020; 4(3):168-76. CrossRef

Romanov YA, Vtorushina VV, Dugina TN, Romanov AY, Petrova NV. Human umbilical cord blood serum/plasma: cytokine profile and prospective application in regenerative medicine. Bull Exp Biol Med. 2019; 168(1): 173-7. CrossRef

Ross AB, Barman M, Hartvigsson O, et al. Umbilical cord blood metabolome differs in relation to delivery mode, birth order and sex, maternal diet and possibly future allergy development in rural children. PLoS ONE [Internet]. 2021 Jan 25 [cited 2025 May 24]; 16(1): e0242978. Available from: https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0242978 CrossRef

Schauer SG, April MD, Fisher AD, et al. Hypothermia in the combat trauma population. Prehosp Emerg Care. 2023; 27(7): 934-40. CrossRef

Shapira I, Fainstein N, Tsirlin M, Stav I. Placental stromal cell therapy for experimental autoimmune encephalomyelitis: the role of route of cell delivery. Stem Cells Transl Med. 2017; 6(4): 1286-94. CrossRef

Silini AR, Cargnoni A, Magatti M, Pianta S, Parolini O. The long path of human placenta and its derivatives in regenerative medicine. Front Bioeng Biotechnol. [Internet]. 2015 Oct 19 [cited 2025 May 21]; 3:162. Available from: https://www.frontiersin.org/journals/bioengineering-and-biotechnology/articles/10.3389/fbioe.2015.00162/full CrossRef

Skoryk AA, Hoidina VS, Salnykov DO, et al. Determination of phase transition temperatures in placental blood serum for cryopreservation. Cryobiology. [Internet]. 2024 Dec [cited 2025 Apr 12]; 105135. Available from: https://www.sciencedirect.com/science/article/abs/pii/S0011224024002906 CrossRef

Tsuei BJ, Kearney PA. Hypothermia in the trauma patient. Injury. 2004; 35(1): 7-15. doi: 10.1016 / s0020-1383(03)00309-7 CrossRef

Wade CE, Salinas J, Eastridge BJ, McManus JG, Holcomb JB. Admission hypo- or hyperthermia and survival after trauma in civilian and military environments. Int J Emerg Med. [Internet]. 2011 June 23 [cited 2025 July 18]; 4(1):35. 21699695. Available from: https://link.springer.com/article/10.1186/1865-1380-4-35 CrossRef

Wang HE, Callaway CW, Peitzman AB, Tisherman SA. Admission hypothermia and outcome after major trauma. Crit Care med. 2005; 33(6): 1296-301. CrossRef

Wu Y, Wu M, Zhang Y, et al. Lyophilization is suitable for storage and shipment of fresh tissue samples without altering RNA and protein levels stored at room temperature. Amino Acids. 2012; 43(3): 1383-8. CrossRef

Yuen BH, Mincey EK. Human chorionic gonadotropin, prolactin, estriol, and dehydroepiandrosterone sulfate concentrations in cord blood of premature and term newborn infants: relationship to the sex of the neonate. Am J Obstet Gynecol. 1987; 156(2): 396-400. CrossRef

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Published

2026-05-24

How to Cite

Shevchenko, M., Skoryk, A., Salnykov, D., Gorina, O., Ivanov, Y., Lazurenko, V., & Prokopiuk, O. (2026). Preservation of protein fractions and hormones of placental blood serum after freeze-drying. Problems of Cryobiology and Cryomedicine, 36(1), 58–65. Retrieved from https://cryo.org.ua/journal/index.php/probl-cryobiol-cryomed/article/view/2185

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Section

Cryomedicine, Clinical and Experimental Transplantology