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Evaluation of Intracellular Location of Reactive Oxygen Species in Solea Senegalensis Spermatozoa
Published on: March 11, 2018
Oxidative damage to rhesus macaque spermatozoa results in mitotic arrest and transcript abundance changes in early
Victoria Burruel1, Katie L Klooster, James Chitwood
1Department of Anatomy, Physiology, and Cell Biology, School of Veterinary Medicine, University of California Davis, Davis, California.
Abstract:
Our objective was to determine whether oxidative damage of rhesus macaque sperm induced by reactive oxygen species (ROS) in vitro would affect embryo development following intracytoplasmic sperm injection (ICSI) of metaphase II (MII) oocytes. Fresh rhesus macaque spermatozoa were treated with ROS as follows: 1 mM xanthine and 0.1 U/ml xanthine oxidase (XXO) at 37°C and 5% CO₂ in air for 2.25 h. Sperm were then assessed for motility, viability, and lipid peroxidation. Motile ROS-treated and control sperm were used for ICSI of MII oocytes. Embryo culture was evaluated for 3 days for development to the eight-cell stage. Embryos were fixed and stained for signs of cytoplasmic and nuclear abnormalities. Gene expression was analyzed by RNA-Seq in two-cell embryos from control and treated groups. Exposure of sperm to XXO resulted in increased lipid peroxidation and decreased sperm motility. ICSI of MII oocytes with motile sperm induced similar rates of fertilization and cleavage between treatments. Development to four- and eight-cell stage was significantly lower for embryos generated with ROS-treated sperm than for controls. All embryos produced from ROS-treated sperm demonstrated permanent embryonic arrest and varying degrees of degeneration and nuclear fragmentation, changes that are suggestive of prolonged senescence or apoptotic cell death. RNA-Seq analysis of two-cell embryos showed changes in transcript abundance resulting from sperm treatment with ROS. Differentially expressed genes were enriched for processes associated with cytoskeletal organization, cell adhesion, and protein phosphorylation. ROS-induced damage to sperm adversely affects embryo development by contributing to mitotic arrest after ICSI of MII rhesus oocytes. Changes in transcript abundance in embryos destined for mitotic arrest is evident at the two-cell stage of development.
Insights
Reactive oxygen species (ROS) damage rhesus macaque sperm, impairing embryo development after intracytoplasmic sperm injection (ICSI). ROS-treated sperm led to lower embryo development and increased abnormalities, indicating ROS-induced sperm damage negatively impacts early embryonic stages.
Area of Science:
- Reproductive Biology
- Spermatozoa Research
- Embryology
Background:
- Oxidative stress from reactive oxygen species (ROS) can impact sperm quality.
- Understanding the effects of ROS-induced sperm damage on subsequent embryo development is crucial for reproductive technologies.
Purpose of the Study:
- To investigate the impact of in vitro reactive oxygen species (ROS) induced oxidative damage in rhesus macaque sperm on embryo development following intracytoplasmic sperm injection (ICSI).
Main Methods:
- Rhesus macaque spermatozoa were exposed to ROS (xanthine/xanthine oxidase).
- Sperm motility, viability, and lipid peroxidation were assessed.
- Intracytoplasmic sperm injection (ICSI) was performed using treated and control sperm.
- Embryo development, morphology, and gene expression (RNA-Seq) were analyzed.
Main Results:
- ROS exposure decreased sperm motility and increased lipid peroxidation.
- Fertilization and cleavage rates were similar, but development to the four- and eight-cell stages was significantly reduced in the ROS-treated group.
- Embryos from ROS-treated sperm showed permanent arrest, degeneration, and nuclear fragmentation.
- RNA-Seq revealed differential gene expression in two-cell embryos, enriched in cytoskeletal organization, cell adhesion, and protein phosphorylation pathways.
Conclusions:
- ROS-induced damage to rhesus macaque sperm adversely affects embryo development post-ICSI.
- Sperm oxidative damage contributes to mitotic arrest and embryonic abnormalities.
- Gene expression changes in early-stage embryos indicate molecular alterations resulting from ROS-induced sperm damage.

