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Updated: Feb 27, 2026

Flow Cytometric Analysis of Biomarkers for Detecting Human Sperm Functional Defects
Published on: April 21, 2022
Effectiveness of human spermatozoa biomarkers as indicators of structural damage during cryopreservation
María José Gómez-Torres1, Llanos Medrano2, Alejandro Romero3
1Departamento de Biotecnología, Universidad de Alicante, Spain; Cátedra Human Fertility, Universidad de Alicante, Spain.
Abstract:
Human spermatozoa cryopreservation techniques are used to maintain and protect male fertility in cases such as infertility and malignancy treatments. However, during cryopreservation, the spermatozoa's metabolic rate is reduced and they undergo dramatic functional and structural changes owing to exposure to cryoprotectants and freezing-thawing procedures. While the effects of cryopreservation on cells are documented, to date the induced cryodamage on structural and/or functional sperm biomarkers is not well established at multivariate scale. To address this question, we performed basic sperm analysis, sperm DNA fragmentation assessment, spontaneous acrosome reaction measurement, and cytoskeleton evaluation after thawing samples from subjects with normal and low-quality semen. A cryodamage rate was used to determine the effects of the freeze-thaw process on spermatozoa. In addition, a Principal Component Analysis (PCA) was used for data reduction and to evaluate sperm-specific patterns during the cryopreservation process. We found that the vitality, progressive motility and sperm count from low-quality samples after cryopreservation show higher damage rates (≥40%) than in normal sperm samples. However, cytoskeleton, DNA, tail and mid-piece and acrosome display the highest cryodamage rates (∼50-99%) and are equally susceptible to cryopreservation-induced damage in both low- and normal-quality semen samples. Overall, the evaluation of these parameters provides meaningful information about different aspects of sperm functionality after cryopreservation.
Insights
Cryopreservation significantly damages sperm, especially low-quality samples. Structural biomarkers like cytoskeleton and DNA show high cryodamage rates in all sperm, regardless of initial quality.
Area of Science:
- Reproductive Biology
- Cryobiology
- Spermatozoa Analysis
Background:
- Sperm cryopreservation is vital for male fertility preservation.
- Cryopreservation induces structural and functional changes in spermatozoa.
- Quantifying cryodamage across multiple sperm biomarkers requires further investigation.
Purpose of the Study:
- To evaluate cryodamage in human spermatozoa using multiple functional and structural biomarkers.
- To assess the impact of cryopreservation on sperm vitality, motility, DNA integrity, acrosome reaction, and cytoskeleton.
- To compare cryodamage rates between normal and low-quality semen samples.
Main Methods:
- Basic sperm analysis (vitality, motility, count).
- Sperm DNA fragmentation assessment.
- Spontaneous acrosome reaction measurement.
- Cytoskeleton evaluation.
- Principal Component Analysis (PCA) for data analysis.
Main Results:
- Low-quality sperm samples exhibited higher damage rates (≥40%) in vitality, motility, and count post-cryopreservation.
- Cytoskeleton, DNA, tail/mid-piece, and acrosome showed high cryodamage rates (∼50-99%) in both normal and low-quality samples.
- Structural biomarkers were highly susceptible to cryopreservation-induced damage.
Conclusions:
- Cryopreservation induces significant damage to human spermatozoa.
- Structural sperm biomarkers are crucial for assessing cryopreservation effectiveness.
- Multivariate analysis of sperm parameters provides comprehensive insights into cryodamage.

