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Updated: Jun 21, 2026

Flow Cytometric Analysis of Biomarkers for Detecting Human Sperm Functional Defects
Published on: April 21, 2022
On the possible origins of DNA damage in human spermatozoa
1ARC Centre of Excellence in Biotechnology and Development and Discipline of Biological Sciences, University of Newcastle, Callaghan, NSW, Australia. john.aitken@newcastle.edu.au
Abstract:
DNA damage in the male germ line has been linked with a variety of adverse clinical outcomes including impaired fertility, an increased incidence of miscarriage and an enhanced risk of disease in the offspring. The origins of this DNA damage could, in principle, involve: (i) abortive apoptosis initiated post meiotically when the ability to drive this process to completion is in decline (ii) unresolved strand breaks created during spermiogenesis to relieve the torsional stresses associated with chromatin remodelling and (iii) oxidative stress. In this article, we present a two-step hypothesis for the origins of DNA damage in human spermatozoa that highlights the significance of oxidative stress acting on vulnerable, poorly protaminated cells generated as a result of defective spermiogenesis. We further propose that these defective cells are characterized by several hallmarks of 'dysmaturity' including the retention of excess residual cytoplasm, persistent nuclear histones, poor zona binding and disrupted chaperone content. The oxidative stress experienced by these cells may originate from infiltrating leukocytes or, possibly, the entry of spermatozoa into an apoptosis-like cascade characterized by the mitochondrial generation of reactive oxygen species. This oxidative stress may be exacerbated by a decline in local antioxidant protection, particularly during epididymal maturation. Finally, if oxidative stress is a major cause of sperm DNA damage then antioxidants should have an important therapeutic role to play in the clinical management of male infertility. Carefully controlled studies are now needed to critically examine this possibility.
Insights
Oxidative stress damages sperm DNA in infertile men, particularly in immature sperm cells. Antioxidants may help treat male infertility by protecting sperm from this damage.
Area of Science:
- Reproductive Biology
- Spermatogenesis
- Male Infertility
Background:
- Sperm DNA damage is linked to poor fertility, miscarriage, and offspring health issues.
- Potential causes include abortive apoptosis, unresolved DNA breaks from chromatin remodeling, and oxidative stress.
Purpose of the Study:
- To propose a two-step hypothesis for the origins of DNA damage in human spermatozoa.
- To highlight the role of oxidative stress on immature sperm cells resulting from defective spermiogenesis.
Main Methods:
- Review and hypothesis formulation based on existing literature.
- Identification of 'dysmaturity' hallmarks in defective spermatozoa (e.g., residual cytoplasm, histone retention).
Main Results:
- Hypothesizes that oxidative stress targets vulnerable, poorly protaminated sperm cells with 'dysmaturity' features.
- Suggests oxidative stress sources include leukocytes or apoptosis-like cascades generating reactive oxygen species.
- Proposes that reduced antioxidant protection during epididymal maturation exacerbates oxidative stress.
Conclusions:
- Oxidative stress is a significant contributor to sperm DNA damage.
- Antioxidants may play a crucial therapeutic role in managing male infertility.
- Further controlled studies are needed to validate the therapeutic potential of antioxidants.
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