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B T Storey

Publications and source records attributed to B T Storey.

134 records · Page 8Linked to original sources

Spontaneous lipid peroxidation and production of hydrogen peroxide and superoxide in human spermatozoa. Superoxide dismutase as major enzyme protectant against oxygen toxicity.

Spontaneous lipid peroxidation in washed human spermatozoa was induced by aerobic incubation at 32 C and measured by malonaldehyde production; loss of motility during the incubation was determined simultaneously. Malonaldehyde production at the point of complete loss of motility, defined as the lipoperoxidative lethal endpoint (LLE), was 0.10 +/- 0.03 nmol/10(8) cells (mean +/- SD, n = 40), and was independent of the time to complete loss of motility. Human spermatozoa produced both H2O2 and O2-. during aerobic incubation. Inhibition of superoxide dismutase in these cells with KCN showed that all the H2O2 production is due to action of the dismutase. The superoxide dismutase activity of individual human sperm samples varied between 1 and 10 U/10(8) cells, variations between samples from a single donor being nearly as great as those between different donors. The time to complete motility loss (tL) showed equal variation of 1 to 10 hours among samples. The rate of spontaneous lipid peroxidation, calculated as LLE/tL, for a given sperm sample and the superoxide dismutase activity of the same sample, determined prior to aerobic incubation, gave a good linear correlation (r = 0.97). Glutathione reductase, glutathione peroxidase, and glutathione were found to be present in human spermatozoa, but showed little variation among samples. These results suggest that superoxide dismutase plays the major role in protecting human spermatozoa against lipid peroxidation. In addition, the superoxide dismutase activity of a fresh sperm sample appears to be a good predictor of the lifetime (up to the complete loss of motility) of that particular sample, and so may prove useful in semen analysis.

Humans↗

Ethanol accelerates acrosomal loss in human spermatozoa.

The effects of ethanol on the loss of the human sperm acrosome, as determined by the chlortetracycline fluorescence assay and by indirect immunofluorescence assay, were assessed over 6 hours during incubation at 37 C in BWW medium containing 0 to 250 mM ethanol. Both assays gave the same results. At the end of 6 hours, 48 +/- 6% acrosomal loss was found in samples in 250 mM ethanol compared with 4 +/- 1% in the absence of ethanol. After 0.25 hour, the first time point chosen for sampling, the spermatozoa in 250 mM ethanol showed 23 +/- 3% loss of acrosomes compared with less than 1% in the absence of ethanol. Ultrastructural studies revealed that the ethanol-treated spermatozoa showed complete acrosomal loss as well as loss of the equatorial segment. No examples of the vesiculation characteristic of the physiologic acrosome reaction were found in the 150 cells examined. Calcium is required for the ethanol-mediated acrosomal loss: omission of Ca2+, addition of 2 mM EGTA, or 0.2 mM verapamil blocked the effect. Ethanol induced a dose-dependent efflux of cholesterol from human spermatozoa, but the ethanol-induced acceleration of acrosomal loss occurred to the same extent in the presence of cholesterol microdispersions that prevented this efflux. The loss of the equatorial segment, which is necessary for egg penetration, during ethanol-induced acrosomal loss would explain the known effect of ethanol in inhibiting, rather than enhancing, the penetration of zona-free hamster eggs by human spermatozoa.

Acetaldehyde↗

Dialysis addition of trehalose/glycerol cryoprotectant allows recovery of cryopreserved mouse spermatozoa with satisfactory fertilizing ability as assessed by yield of live young.

Mouse sperm cryopreservation provides a means for storing the genetic information in genetically modified mice (mutants, transgenics, and "knockouts") in a cost- and space-effective manner. Sperm from this species are highly sensitive to cryodamage, which has impeded their cryopreservation in the past. The cryoprotectant used in this study was 6% glycerol (0.65 M) plus 7.5% trehalose (0.22 M), which was added to a concentrated suspension of sperm from B6SJLF1/J mice in bicarbonate-free buffer by dialysis to minimize osmotic stress on the cells. Sperm suspensions were frozen in 0.25 mL straws and stored in liquid N2. Eggs were obtained from B6SJLF1/J superovulated females. For in vitro fertilization (IVF), 15-25 microL of sperm suspension post-thaw from one straw was added directly to each of three 1.5 mL drops of fertilization medium containing 30 eggs each, for 3 replicates per experiment. The fertilized eggs were scored for blastocyst formation, after which 12 blastocysts from each drop were implanted into pseudopregnant CD-1 females. The number of live pups were then scored at birth. Ten experiments yielded 21.7 +/- 1.4 (SD) blastocysts per 30 eggs inseminated (72%) and 7.3 +/- 0.4 (SD) live pups per 12 blastocysts implanted (61%). The overall yield of live pups was 44 per 100 eggs inseminated (44%). This yield should be satisfactory for maintaining a mouse strain through sperm cryostorage, with restart of the strain through IVF and embryo transfer. The method should also provide improvement in human sperm cryopreservation, as human sperm are less sensitive to cryodamage than are mouse sperm.

Animals↗

Evidence for increased lipid peroxidative damage and loss of superoxide dismutase activity as a mode of sublethal cryodamage to human sperm during cryopreservation.

Cryopreservation of human sperm, now generally required in donor insemination programs, adversely affects the sperm in terms of standard sperm evaluation parameters and fertilizing ability. The freeze-thaw process appears to produce sublethal damage that appears only after a delay. The authors hypothesized that cryopreservation enhanced peroxidation of sperm membrane lipids, based on previous studies of sperm lipid peroxidation, which showed that the effects of peroxidative damage became evident only after a delay, depending on the peroxidation rate. The effect of cryopreservation on the phospholipid content, the composition of the acyl moieties of the phospholipids, and the activities of the peroxidation protective enzymes, superoxide dismutase (SOD) and glutathione peroxidase plus reductase, in human sperm were examined to test the hypothesis. Parallel determinations were made of the percent motility, the average path velocity of the motile cells, and the time to loss of motility under specified aerobic incubation conditions, which gives a good estimate of the lipid peroxidation rate. The phospholipid content decreases after cryopreservation, with loss of phosphatidylcholine and phosphatidylethanolamine being the more pronounced. Polyunsaturated acyl moieties were also preferentially lost. This loss pattern is observed also from lipid peroxidation. The activities of glutathione peroxidase plus reductase remained unchanged. The sperm SOD activities varied widely between samples before cryopreservation. In all samples there was a decline in SOD activity after freeze-thaw, but the extent of the decline was also widely variable. The time to loss of motility declined in parallel with SOD activity, and a strong correlation (R2 greater than 0.9) between SOD activity and time to loss of motility was found for all samples, before and after freeze-thaw. The authors conclude that cryopreservation does enhance lipid peroxidation in human sperm, as hypothesized, and that this enhancement is mediated at least in part by the loss of SOD activity occurring during the process.

Adult↗

Mechanism of superoxide dismutase loss from human sperm cells during cryopreservation.

Earlier studies on human sperm cryodamage have shown that plasma membrane stress is the primary process and that phospholipid peroxidation in cryopreserved samples is not inhibited by addition of antioxidants. One consistent effect of cryopreservation is loss of enzymatic activity of the peroxidation defense enzyme, superoxide dismutase (SOD). To clarify this aspect of the freeze-thaw process and to develop a more complete resolution of the reactions leading to cryodamage, we sought to identify which of the two most probable mechanisms, loss of enzyme protein from the cells of denaturation of the protein, operates. If the first operates, cellular enzymatic activity and enzyme protein as identified by immunocytochemistry should give a linear correlation. If the second operates, there should be no correlation. In this study, five individual samples were analyzed before and after cryopreservation for immunoreactive Cu/Zn SOD and cell intactness by flow cytometry, for SOD enzymatic activity by a highly sensitive fluorimetric method, and for motility characteristics by Hamilton-Thorn motility analyzer. Fresh samples were obtained by the "swim-up" method and had > 95% intact cells with > 78% motile cells. After freeze-thaw, about half the cells were intact. SOD enzymatic activity was determined on Triton X-100 cell extracts, a method that removes all enzymatic activity from the cell structure, and compared with immunoreactive SOD in the cells as determined by indirect immunofluorescence mean intensities. Residual immunofluorescence was observed in the cells after Triton X-100 treatment; if this was taken into account, a close linear correlation between SOD enzyme activity and SOD immunoreactivity was obtained (r = 0.90; P = 0.00014). There was no correlation between SOD enzyme activity ratios for cryopreserved and fresh cells and fraction of intact cells after freeze-thaw. We conclude that loss of SOD protein from the subset of cells undergoing acute membrane damage is the most probable primary mechanism of SOD enzymatic activity loss from the sample and that resistance to cryodamage and SOD activity in any given cell are quite independent of one another.

Adult↗

Evidence that membrane stress contributes more than lipid peroxidation to sublethal cryodamage in cryopreserved human sperm: glycerol and other polyols as sole cryoprotectant.

One effect of cryopreservation on human sperm is sublethal cryodamage, in which cell viability post-thaw is lost more rapidly at later times than in fresh cells. We hypothesized two modes of sublethal cryodamage: one is peroxidation-related involving plasma membrane damage due to lipid peroxidation; the other is membrane stress-related involving membrane embrittlement during phase transitions occurring during freeze-thaw. If the peroxidation-related mode contributed substantially to sublethal cryodamage, the hypothesis predicts that lipid peroxidation inhibitors should reduce this damage. To test this prediction, we examined the effect of the lipid peroxidation inhibitors, hypotaurine, bovine serum albumin (BSA), and alpha-tocopherol (Vit. E) on the time to loss of motility (TLM), taken as a measure of cell viability over time, for sperm samples cryopreserved in glycerol plus egg yolk medium. These agents had no effect on TLM of these samples, indicating that this mode contributes little to sublethal cryodamage. If the membrane stress-related mode contributed, the hypothesis predicts rapid recovery of motility in the presence of egg yolk plus glycerol, but slow recovery in the presence of glycerol alone. It also predicts that an appropriate polyol may be both necessary and sufficient for cryopreservation. In the presence of egg yolk plus glycerol, motility recovery was complete within 5 minutes, but the percent motile cells then decreased linearly with time. With glycerol alone in the range 3-12%, at 5 minutes post-thaw the percent motile cells was 5-10%, but by 40 minutes post-thaw had risen to 60-80%, approaching that in the fresh sample, and was maintained up to 4 hours. In the absence of glycerol, the percentage of motile cells post-thaw was nil and remained nil up to 4 hours. The polyols, erythritol, ribitol, and sorbitol had similar effects to that of glycerol, but the recovery of motility was not as complete. These results indicate that the membrane stress-related mode contributes substantially to sublethal cryodamage. They also indicate that glycerol and other polyols can function alone as cryoprotectants, but that recovery of motility is slow in these systems.

Adult↗