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Updated: Jan 2, 2026

Author Spotlight: Exploring the Long-Term Health Impacts of Intracytoplasmic Sperm Injection on Offspring
Published on: May 17, 2024
Risks of genetic damage in offspring conceived using spermatozoa produced during chemotherapy or radiotherapy
1Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center, Houston, TX, USA.
Background:
Men who have just started cytotoxic therapy for cancer are uncertain and concerned about whether spermatozoa collected or pregnancies occurring during therapy might be transmitting genetic damage to offspring. There are no comprehensive guidelines on the risks of different doses of the various cytotoxic, and usually genotoxic, antineoplastic agents.
Objectives:
To develop a schema showing the risks of mutagenic damage when spermatozoa, exposed to various genotoxic agents during spermatogenesis, are collected or used to produce a pregnancy.
Materials And Methods:
A comprehensive literature review was performed updating the data on genetic and epigenetic effects of genotoxic agents on animal and human spermatozoa exposed during spermatogenic development.
Results:
Relevant data on human spermatozoa and offspring are extremely limited, but there are extensive genetic studies in experimental animals that define sensitivities for specific drugs and times. The animal data were extrapolated to humans based on the stage when the cells were exposed and the relative kinetics of spermatogenesis and were consistent with the limited human data. In humans, alkylating agents and radiation should already induce a high risk of mutations in spermatozoa produced within 1 or 2 weeks after initiation of therapy. Topoisomerase II inhibitors and possibly microtubule inhibitors produce the greatest risk at weeks 5-7 of therapy. Nucleoside analogs, antimetabolites, and bleomycin exert their mutagenic effects on spermatozoa collected at 7-10 weeks of therapy.
Discussion And Conclusions:
A schema showing the time from initiation of therapy at which specific antineoplastic agents can cause significant levels of genetic damage in conceptuses and live offspring was developed. The estimates and methods for computing the level of such risk from an individual patient's treatment regimen will enable patients and counselors to make informed decisions on the use of spermatozoa or continuation of a pregnancy.
Insights
Cancer patients undergoing cytotoxic therapy face concerns about genetic damage to offspring. This study provides a risk schema for mutagenic damage from antineoplastic agents during spermatogenesis, aiding informed reproductive decisions.
Area of Science:
- Reproductive toxicology
- Cancer therapy
- Genetics
Background:
- Men undergoing cytotoxic therapy worry about transmitting genetic damage to offspring via sperm.
- Lack of comprehensive guidelines exists for risks associated with various genotoxic antineoplastic agents.
Purpose of the Study:
- To develop a schema illustrating mutagenic risks to offspring from sperm exposed to genotoxic agents during spermatogenesis.
- To inform reproductive decisions for cancer patients undergoing therapy.
Main Methods:
- Comprehensive literature review on genetic and epigenetic effects of genotoxic agents on animal and human spermatozoa.
- Extrapolation of animal data to human risks based on spermatogenesis kinetics.
Main Results:
- Limited human data, extensive animal studies used for extrapolation.
- Alkylating agents and radiation pose high risk within 1-2 weeks of therapy.
- Topoisomerase II and microtubule inhibitors risk peaks at 5-7 weeks.
- Nucleoside analogs, antimetabolites, and bleomycin effects seen at 7-10 weeks.
Conclusions:
- A schema was developed to show timing of genetic damage risk from specific antineoplastic agents.
- This schema aids patients and counselors in making informed decisions regarding sperm use and pregnancy continuation.
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