Oxidative stress is known to have a major impact on human sperm function and, as a result, there is a need to develop sensitive methods for measuring reactive oxygen species (ROS) generation by these cells. A variety of techniques have been developed for this purpose including chemiluminescence (luminol and lucigenin), flow cytometry (MitoSOX Red, dihydroethidium, 4,5-diaminofluorescein diacetate and 2',7'-dichlorodihydrofluorescein diacetate) and spectrophotometry (nitroblue tetrazolium). The relative sensitivity of these assays and their comparative ability to detect ROS generated in different subcellular compartments of human spermatozoa, have not previously been investigated. To address this issue, we have compared the performance of these assays when ROS generation was triggered with a variety of reagents including 2-hydroxyestradiol, menadione, 4-hydroxynonenal and arachidonic acid. The results revealed that menadione predominantly induced release of ROS into the extracellular space where these metabolites could be readily detected by luminol-peroxidase and, to a lesser extent, 2',7'-dichlorodihydrofluorescein. However, such sensitivity to extracellular ROS meant that these assays were particularly vulnerable to interference by leucocytes. The remaining reagents predominantly elicited ROS generation by the sperm mitochondria and could be optimally detected by MitoSOX Red and DHE. Examination of spontaneous ROS generation by defective human spermatozoa revealed that MitoSOX Red was the most effective indicator of oxidative stress, thereby emphasizing the general importance of mitochondrial dysregulation in the aetiology of defective sperm function.
CRISPs are a group of 3 proteins found in mammals (4 in the mouse) which show a strong expression bias in the male reproductive organs. Whilst the function of most CRISPs are yet to be elucidated, mouse CRISP2 is a known regulator of the ion channel, ryanodine receptor. CRISP4 is most abundantly produced by the principal cells of the epididymis and are secreted into the lumen, where they adhere to sperm during epididymal transit. In this study we examined the role of CRISP4 ion channel regulation in mouse spermatozoa through cell assays and mouse models. The identification of the Transient Receptor Potential (TRP) ion channel, TRPM8 to interact with CRISP4 was confirmed using stably-transfected CHO cell lines. Production of CRISP4 KO mouse model, whilst males are fertile, they exhibit a subtle infertility phenotype characterized by a reduced ability to capacitate and undergo the acrosome reaction. This data is further emphasized by the ability of TRPM8 agonists, icillin and menthol, to inhibit the acrosome reaction in mouse spermatozoa that could be prevented by the addition of recombinant CRISP4 crisp domain. Corresponding to these data, CRISP4 is localized to the tail and head of mouse spermatozoa. In conclusion, we have demonstrated that CRISP4 is a regulator of TRPM8 in mouse spermatozoa, and due to its expression and localization pattern is an important protein in sperm epididymal maturation.
Reactive oxygen species (ROS) are traditionally considered detrimental by-products of cellular metabolism. However, ROS have conflicting roles in human spermatozoa, either as a functional mediator of sperm capacitation or generating a state of oxidative stress that is associated with male infertility. Using the probe MitoSOX Red, we have shown that defective human spermatozoa generate mitochondrial ROS in manner that was negatively correlated with motility (R2 = 0.8048). Previous research has shown higher levels of polyunsaturated fatty acids (PUFAs) in defective spermatozoa. However, the addition of PUFA to normal human spermatozoa results in increased mitochondrial ROS production (P < 0.001) and lipid peroxidation (P < 0.001) determined by MitoSOX Red and BODIPY C11 assays, as a consequence human spermatozoa also exhibited decreased sperm motility (P < 0.001). Ongoing research is currently evaluating the relationship between cellular levels of PUFAs in human spermatozoa and mitochondrial ROS generation and decreased sperm motility. This research demonstrates that mitochondrial ROS generation in human spermatozoa may have significant consequences for their function and we propose that elevated PUFA content may be a primary cause of increased oxidative stress and therefore male infertility.
CONTEXT:Oxidative stress in the male germ line has been associated with poor fertility, impaired embryonic development, miscarriage, and childhood disease. Such stress is known to be associated with the peroxidation of unsaturated fatty acids in the sperm plasma membrane and oxidative DNA damage to both the nuclear and mitochondrial genomes. However, the source of the free radicals responsible for such damage is still unresolved.OBJECTIVE:The objective of this study was to chemically validate the use of dihydroethidium (DHE) as a probe for detecting the generation of superoxide anion by human spermatozoa and to examine the relationship between this activity and defective sperm function.METHOD:DHE and SYTOX green were used in conjunction with flow cytometry and HPLC to investigate superoxide generation by human spermatozoa. Cause and effect relationships were established using menadione to artificially drive superoxide production by these cells.RESULTS:HPLC, mass spectrometry, nuclear magnetic resonance (NMR) spectroscopy, and spectrofluorometry were used to demonstrate that human spermatozoa generate the superoxide-specific product, 2-hydroxyethidium, from DHE. Spontaneous superoxide production by human spermatozoa was found to originate from a nonmitochondrial source and was inversely correlated with sperm motility. A causative relationship between superoxide generation and sperm function was demonstrated when the pharmacological stimulation of this activity with menadione was shown to result in both severe motility loss and DNA damage.CONCLUSIONS:These studies validate a methodology for investigating the origins of oxidative stress in the male germ line and demonstrate, for the first time, the significance of superoxide generation by human spermatozoa in the etiology of this condition.